• Clarifying Defamation Against Master Peace Zeolites
    Dr. Ariyana Love (ND)
    Defamatory attacks are being waged against Master Peace, a company offering a new and effective zeolite supplement for detox.

    The defamatory content was posted by a woman named “Ria” to a Facebook page called “Ria No Moresilence”. The person running the page is an allopathic practitioner.


    You can see the Facebook page is connected to an online telehealth website called “Long Haulers” which is offering allopathic treatment for vaccine injured and “Covid long haulers”. Ria is a practitioner for Long Haulers.

    The website features Dr. Pierre Kory as the chief Medical Doctor their team is “working in collaboration with”.


    Ria appears to be attacking Master Peace which is a new company offering Clinoptilolite Zeolite infused with Marine Plasma nutrition.

    Ria has claimed that “Master Peace build the graphene oxide filaments".


    Ria goes on to attack the credibility of Master Peace leader, Caroline Mansfield.


    Next, the Long Hauler practitioner further claims that "Master Peace are the building blocks for nanotech and rubbery clots".

    She then references Ana Maria Mihalcea’s article entitled, “Zeolite Use In Nanotechnology Biosensor Applications, Enhancement Of Graphene Quantum Dots Capacity And Increase In Polymer Hydrogel Growth” which reveals a dark underbelly to modern health supplements.


    Ana Maria Mihalcea is not providing her readers with the complete picture of zeolites in her article. She’s using scare tactics to confuse her audience, which serves to deter them from trying more effective natural solutions for detox.

    Zeolites is one of the most effective heavy metal chelator that exist. That is, when this superior natural medicine is pure and unadulterated!

    Zeolites have long been used as a natural treatment to remove heavy radioactive metals from land, water and humans. If you knew that natural zeolites can effectively chelate heavy metals and other toxins, then you might reconsider using Ana Maria’s dangerous pharmaceutical EDTA Acid infusions.

    On the flip side, because natural zeolites are so effective at removing toxic metals from the human body, the market was flooded with contaminated zeolite products leading up to the Covid-19 vaccine democide.

    Already back in 2012, graphene oxide was being attached to the silicalite surface of zeolites, entraping GO nanosheets inside single crystals. In 2015, zeolite nanotechnology was already being tested for drug delivery.

    This patent indicates that aluminum is being mixed into zeolites. Another patent demonstrates that metallic “nanodots” of all kinds can be used in zeolite products.

    But what do these sinister patents have to do with Master Peace zeolites? The answer is absolutely nothing. Master Peace is a natural zeolite supplement that’s sourced from the sea. Master Peace zeolites are volcanic ash harvested from the sea floor bed which is structured and reduced by oxidation to a stabilized nanoparticle size. It’s known as oxygenated clinoptililite. There are no synthetic chemicals used in this process, so essentially, Master Peace is nano minerals, which is not to be confused with harmful nanotechnology.

    A 40-year veteran scientist, Dr. Robert Young, is doing the lab analysis for Master Peace. As the following study shows, the novel oxygenated clinoptilolite efficiently removes aluminum and graphene oxide.



    PLEASE READ: Oxygenated Zeolite (Clinoptilolite) Efficiently Removes Aluminum & Graphene Oxide


    Master Peace zeolites are then infused with sea plasma, which is another essential medicine beneficial for hydration and greater nutrient absorption. It’s a fascinating three-step process worth reading more about.

    So I wonder where Ria the allopathic practitioner got the idea that Master Peace supplement can build graphene oxide filaments and nanotech and promote the growth of rubbery clots? Is Dr. Pierre Kory aware of this defamation? Does Ana Maria have something to do with these false claims, I wonder?

    Listen to Dr. Robert Young on Master Peace and the hexagon via Human Consciousness Support (official channel).

    Follow me on Telegram @drloveariyana.

    Sign up and order Master Peace here



    https://open.substack.com/pub/drloveariyana/p/clarifying-defamation-against-master?r=29hg4d&utm_medium=ios
    Clarifying Defamation Against Master Peace Zeolites Dr. Ariyana Love (ND) Defamatory attacks are being waged against Master Peace, a company offering a new and effective zeolite supplement for detox. The defamatory content was posted by a woman named “Ria” to a Facebook page called “Ria No Moresilence”. The person running the page is an allopathic practitioner. You can see the Facebook page is connected to an online telehealth website called “Long Haulers” which is offering allopathic treatment for vaccine injured and “Covid long haulers”. Ria is a practitioner for Long Haulers. The website features Dr. Pierre Kory as the chief Medical Doctor their team is “working in collaboration with”. Ria appears to be attacking Master Peace which is a new company offering Clinoptilolite Zeolite infused with Marine Plasma nutrition. Ria has claimed that “Master Peace build the graphene oxide filaments". Ria goes on to attack the credibility of Master Peace leader, Caroline Mansfield. Next, the Long Hauler practitioner further claims that "Master Peace are the building blocks for nanotech and rubbery clots". She then references Ana Maria Mihalcea’s article entitled, “Zeolite Use In Nanotechnology Biosensor Applications, Enhancement Of Graphene Quantum Dots Capacity And Increase In Polymer Hydrogel Growth” which reveals a dark underbelly to modern health supplements. Ana Maria Mihalcea is not providing her readers with the complete picture of zeolites in her article. She’s using scare tactics to confuse her audience, which serves to deter them from trying more effective natural solutions for detox. Zeolites is one of the most effective heavy metal chelator that exist. That is, when this superior natural medicine is pure and unadulterated! Zeolites have long been used as a natural treatment to remove heavy radioactive metals from land, water and humans. If you knew that natural zeolites can effectively chelate heavy metals and other toxins, then you might reconsider using Ana Maria’s dangerous pharmaceutical EDTA Acid infusions. On the flip side, because natural zeolites are so effective at removing toxic metals from the human body, the market was flooded with contaminated zeolite products leading up to the Covid-19 vaccine democide. Already back in 2012, graphene oxide was being attached to the silicalite surface of zeolites, entraping GO nanosheets inside single crystals. In 2015, zeolite nanotechnology was already being tested for drug delivery. This patent indicates that aluminum is being mixed into zeolites. Another patent demonstrates that metallic “nanodots” of all kinds can be used in zeolite products. But what do these sinister patents have to do with Master Peace zeolites? The answer is absolutely nothing. Master Peace is a natural zeolite supplement that’s sourced from the sea. Master Peace zeolites are volcanic ash harvested from the sea floor bed which is structured and reduced by oxidation to a stabilized nanoparticle size. It’s known as oxygenated clinoptililite. There are no synthetic chemicals used in this process, so essentially, Master Peace is nano minerals, which is not to be confused with harmful nanotechnology. A 40-year veteran scientist, Dr. Robert Young, is doing the lab analysis for Master Peace. As the following study shows, the novel oxygenated clinoptilolite efficiently removes aluminum and graphene oxide. PLEASE READ: Oxygenated Zeolite (Clinoptilolite) Efficiently Removes Aluminum & Graphene Oxide Master Peace zeolites are then infused with sea plasma, which is another essential medicine beneficial for hydration and greater nutrient absorption. It’s a fascinating three-step process worth reading more about. So I wonder where Ria the allopathic practitioner got the idea that Master Peace supplement can build graphene oxide filaments and nanotech and promote the growth of rubbery clots? Is Dr. Pierre Kory aware of this defamation? Does Ana Maria have something to do with these false claims, I wonder? Listen to Dr. Robert Young on Master Peace and the hexagon via Human Consciousness Support (official channel). Follow me on Telegram @drloveariyana. Sign up and order Master Peace here https://open.substack.com/pub/drloveariyana/p/clarifying-defamation-against-master?r=29hg4d&utm_medium=ios
    OPEN.SUBSTACK.COM
    Clarifying Defamation Against Master Peace Zeolites
    Defamatory attacks are being waged against Master Peace, a company offering a new and effective zeolite supplement for detox. The defamatory content was posted by a woman named “Ria” to a Facebook page called “Ria No Moresilence”. The person running the page is an allopathic practitioner.
    0 Reacties 0 aandelen 12 Views
  • Employee Sues Hospital That Fired Her for Reporting COVID Vaccine Injuries to VAERS
    A physician’s assistant is suing a New York hospital system, alleging it violated the federal False Claims Act by failing to complete mandatory reporting to VAERS of injuries associated with the COVID-19 vaccine.

    deborah conrad, covid vaccines, vaers logo on tablet
    COVID

    by Brenda Baletti, Ph.D.
    May 22, 2024

    deborah conrad, covid vaccines, vaers logo on tablet
    A physician’s assistant is suing a New York hospital system, alleging it violated the federal False Claims Act by failing to complete mandatory reporting of injuries associated with the COVID-19 vaccine to the Vaccine Adverse Event Reporting System (VAERS).

    Deborah Conrad worked at United Memorial Medical Center, part of Rochester Regional Health (RRH), until October 2021, when she said she was fired for reporting vaccine-related adverse events.

    Conrad filed the lawsuit in May 2023, but the complaint wasn’t unsealed and made publicly available until February, TrialSiteNews reported last week.

    She is seeking job reinstatement and back pay for herself and civil penalties on behalf of the U.S. government.

    Most importantly, Conrad told The Defender, she hopes the lawsuit will lead to changes in how vaccine adverse events are reported.

    “How can anybody trust the vaccine program when medical professionals are not adhering to the reporting requirements of the one system we have in place that is meant to assure us that these things are safe?” she asked.

    “I want policy change. I don’t care about the money, the vindication. I want to be able to trust the health system,” Conrad said.

    Under the False Claims Act, whistleblowers can file a lawsuit on behalf of the federal government against an entity they allege profited from taxpayer funds by defrauding the government.

    False Claims Act cases are initially sealed while the government investigates the cases and determines whether it will intervene and take the case on itself, or allow the whistleblower to proceed with the action.

    The government decided not to intervene in the case. It is now unsealed and moving forward with Conrad as the “relator,” who gives evidence to the court on behalf of the U.S. government.

    She told The Defender the evidence she is submitting to the court is substantial — she meticulously saved every email, patient file and recorded conversations with supervisors and other hospital staff.

    United Memorial Medical Center, like all institutions in the U.S. that administered the COVID-19 vaccines, signed the Centers for Disease Control and Prevention’s (CDC) COVID-19 Vaccination Program Provider Agreement, according to the complaint.

    Hand in glove holding vaccine
    The Vaccine Safety Project

    Learn More

    The agreement stipulated that organizations providing the shots and received compensation for doing so from the federal government were required to “report moderate and adverse events following vaccination” to VAERS.

    By not doing so, Warner Mendenhall, the attorney representing Conrad, told The Defender, they were out of compliance with the agreement. And, he added, the agreement clearly stipulates that non-compliance violates the False Claims Act.

    The hospital not only failed to report cases, it blocked Conrad from submitting approximately 170 reports of serious adverse events to VAERS between May 27 and Oct. 6, 2021, Conrad said.

    The hospital system also failed to report over 12,000 adverse events, the complaint alleges.

    Mendenhall said they estimated that number based on the number of people vaccinated at one of the healthcare facilities or another nearby clinic who then presented at the hospital for treatment for an injury that was likely linked to the vaccine.

    The complaint contains several examples of such cases.

    On behalf of the U.S., Conrad is seeking damages that fall into what Mendenhall described as “three buckets.”

    First, he said, each entity was paid an administrative fee — approximately $40 — for each injection. The suit seeks a refund of that money to the government for the thousands of shots administered.

    Next, for every failure to report, there is a mandatory penalty of at least $20,000. For 12,000 cases, that would total more than $240,000,000.

    Finally, the “third bucket” of damages would be the cost of the treatment that people had to pay for their vaccine injuries. By failing to meet their obligations as a vaccine provider, he said the hospital failed to provide people with the proper necessary treatment they ought to be entitled to and those costs should be reimbursed.

    If Conrad prevails in court, the hospital will go bankrupt — but that isn’t the intent, Mendenhall said.

    “We don’t want to bankrupt community hospitals,” he said. “That’s not what we are about. We want them to do their job, to do what they are supposed to do and file the reports,” he said. “And we want Deb Conrad rehired to run the program.”

    Conrad is suing only one hospital system, but there are roughly 2,800 systems in the country, Mendenhall said. “As far as I know, not a single one of them met their obligations under the vaccination program participation agreement. And they all signed it.”

    The False Claims Act, “is a way for us as a people, if we want to hold these providers accountable for their wrongdoing, we actually can do it,” Mendenhall told Trial Site News. “There’s a very clear pathway here. It’s outlined here, and they all agreed to it.”

    Ray Flores, senior outside counsel for Children’s Health Defense, told The Defender the case represented a “bold effort to hold those who allegedly defrauded the people of the United States accountable.”

    In detailing the ways the hospital precluded providers from reporting to VAERS, “the allegations in the complaint solve part of the mystery of why only 1% of vaccine injuries are reported,” he said.

    Mendenhall also represents Pfizer whistleblower Brook Jackson, who sued the drugmaker under the False Claims Act.

    Do you have a news tip? We want to hear from you!

    Contact Us

    Conrad: ‘I kept getting gaslit and made fun of and told I was crazy’

    When the COVID-19 pandemic began, Conrad had been a physician assistant for nearly 20 years. She spent most of that time as a hospitalist, working in inpatient medicine and the intensive care unit in the same hospital.

    At United Memorial, she was director of Advanced Practice Providers, sat on the medical executive board, saw patients and was the first non-physician to receive the Physician Excellence award.

    When the COVID-19 vaccine came out, her whole life changed, Conrad said. As she had done throughout her career, she reported to the hospital the safety issues and new trends in illness that she was seeing, such as elderly vaccinated people hospitalized for COVID-19 or young people with blood clots.

    In researching whether providers in other places were witnessing the same issues, Conrad discovered VAERS — which she said she and her colleagues had never been told about, despite claims later made by the hospital — and began reporting cases.

    She volunteered to take on this reporting role for the hospital, reporting all of the adverse events that came into the facility.

    As the number of adverse events grew, the reporting became too onerous, so Conrad asked the hospital to develop a plan to efficiently complete the reports, to protect patients and to remain in compliance.

    Instead, the hospital informed her it would be auditing her work.

    The hospital accused Conrad of over-reporting and being “antivaxxy.” This was a problem, the hospital informed her in an email included in the complaint, because “we are very much advocating for patients to receive the vaccine.”

    She was forbidden from filing reports for any patient she was not directly caring for, even though her leadership role meant she oversaw all patients, Conrad said.

    If she had other concerns, they said she could register them in the hospital’s internal email system, “Safe Connect,” which she did. However, those reports weren’t going anywhere.

    Concerned the events weren’t being reported and that the hospital was out of compliance with the agreement it had signed, Conrad began reaching out to the CDC, the FDA, the New York State Department of Health and the hospital accreditation board.

    Rather than receiving support, Conrad said:

    “I kept getting gaslit and made fun of and told I was crazy.

    “Then I got called into a meeting and they threatened to report me to the state for spreading misinformation, saying that basically doing VAERS reports and talking to patients about their potential side effects is misinformation, and that I was spreading vaccine hesitancy, and that’s not allowed.

    “And they said if it continued they were going to report me to have basically my license taken away. Wow. So at that point, I knew I was in real trouble.”

    She contacted a lawyer and went public with her experience on The Highwire and in The New York Times. She also started a GoFundMe campaign, anticipating her possible firing.

    The hospital threatened to report her to the New York State Society of Physician Assistants for spreading vaccine misinformation. Just a few months earlier, the same organization had nominated Conrad for a seat on the New York State Office of Professional Medical Conduct.

    In what Conrad called “direct retaliation,” on Oct. 6, 2021, she was publicly surrounded at her workstation by human resources staff and escorted to a room where she was interrogated about her public comments.

    “They basically told me, are you going to leave quietly or are we going to walk you out?” she said.

    Conrad said the firing was very public and humiliating, which she thought was meant to scare others. “As a result of me being publicly fired, it’s my understanding that now no one [at the hospital] is reporting to VAERS,” she said.

    This article was funded by critical thinkers like you.

    The Defender is 100% reader-supported. No corporate sponsors. No paywalls. Our writers and editors rely on you to fund stories like this that mainstream media won’t write.

    Please Donate Today

    Providers aren’t trained to use VAERS

    The VAERS system is the primary public reporting system for flagging vaccine safety issues. For members of the public, it’s a voluntary system. However, healthcare professionals are required to report certain events.

    Yet, Conrad said, she never learned about VAERS in her medical training and the hospital never offered training for the system. She said they never mentioned the system to staff until she complained publicly.

    “We come out of school knowing every side effect for every drug known to man, because they have no liability shield, but we are never taught there could be anything wrong with vaccines,” she said.

    “We didn’t even know there’s a reporting system. Why is that? Why do we have a liability shield for vaccines if they’re so safe? Why would we need it when we don’t have it for drugs that we know are not always safe? None of it makes sense,” she added.

    Conrad said this “flawed” and “fraudulent” system is responsible for the rise in “vaccine hesitancy.” “They blame people like me for this hesitancy,” she said, “but they are the ones who created the issue by not enforcing” safety and injury reporting.

    Instead, she said, the public health agencies normalized previously unthinkable ideas, such as it’s normal for vaccines to make people sick, or that reused cloth masks would protect from infectious disease and much more.

    Healthcare is about safety, she said. “First, do no harm. That’s the oath I took when I graduated. But they’re using the doctors to harm patients unknowingly and not teaching them about the safety mechanisms we put in place.”

    Conrad said she hopes the lawsuit will help change that. Now that it is unsealed, she said, “We’re able to go back out there and start talking about things because the public cannot forget. We cannot forget what has been done. Otherwise it’ll happen again.”

    Mendenhall said he expects a response from the hospital system next week. He predicts they will submit a motion to dismiss, which he intends to contest.

    “This is the first case of its kind,” he said. “I predict we will succeed in defending any motion to dismiss because Deb did such a good job with the evidence and her story is very compelling.”


    Employee Sues Hospital That Fired Her for Reporting COVID Vaccine Injuries to VAERS • Children's Health Defense

    https://childrenshealthdefense.org/defender/deborah-conrad-sues-hospital-fired-reporting-covid-vaccine-injuries-vaers/
    Employee Sues Hospital That Fired Her for Reporting COVID Vaccine Injuries to VAERS A physician’s assistant is suing a New York hospital system, alleging it violated the federal False Claims Act by failing to complete mandatory reporting to VAERS of injuries associated with the COVID-19 vaccine. deborah conrad, covid vaccines, vaers logo on tablet COVID by Brenda Baletti, Ph.D. May 22, 2024 deborah conrad, covid vaccines, vaers logo on tablet A physician’s assistant is suing a New York hospital system, alleging it violated the federal False Claims Act by failing to complete mandatory reporting of injuries associated with the COVID-19 vaccine to the Vaccine Adverse Event Reporting System (VAERS). Deborah Conrad worked at United Memorial Medical Center, part of Rochester Regional Health (RRH), until October 2021, when she said she was fired for reporting vaccine-related adverse events. Conrad filed the lawsuit in May 2023, but the complaint wasn’t unsealed and made publicly available until February, TrialSiteNews reported last week. She is seeking job reinstatement and back pay for herself and civil penalties on behalf of the U.S. government. Most importantly, Conrad told The Defender, she hopes the lawsuit will lead to changes in how vaccine adverse events are reported. “How can anybody trust the vaccine program when medical professionals are not adhering to the reporting requirements of the one system we have in place that is meant to assure us that these things are safe?” she asked. “I want policy change. I don’t care about the money, the vindication. I want to be able to trust the health system,” Conrad said. Under the False Claims Act, whistleblowers can file a lawsuit on behalf of the federal government against an entity they allege profited from taxpayer funds by defrauding the government. False Claims Act cases are initially sealed while the government investigates the cases and determines whether it will intervene and take the case on itself, or allow the whistleblower to proceed with the action. The government decided not to intervene in the case. It is now unsealed and moving forward with Conrad as the “relator,” who gives evidence to the court on behalf of the U.S. government. She told The Defender the evidence she is submitting to the court is substantial — she meticulously saved every email, patient file and recorded conversations with supervisors and other hospital staff. United Memorial Medical Center, like all institutions in the U.S. that administered the COVID-19 vaccines, signed the Centers for Disease Control and Prevention’s (CDC) COVID-19 Vaccination Program Provider Agreement, according to the complaint. Hand in glove holding vaccine The Vaccine Safety Project Learn More The agreement stipulated that organizations providing the shots and received compensation for doing so from the federal government were required to “report moderate and adverse events following vaccination” to VAERS. By not doing so, Warner Mendenhall, the attorney representing Conrad, told The Defender, they were out of compliance with the agreement. And, he added, the agreement clearly stipulates that non-compliance violates the False Claims Act. The hospital not only failed to report cases, it blocked Conrad from submitting approximately 170 reports of serious adverse events to VAERS between May 27 and Oct. 6, 2021, Conrad said. The hospital system also failed to report over 12,000 adverse events, the complaint alleges. Mendenhall said they estimated that number based on the number of people vaccinated at one of the healthcare facilities or another nearby clinic who then presented at the hospital for treatment for an injury that was likely linked to the vaccine. The complaint contains several examples of such cases. On behalf of the U.S., Conrad is seeking damages that fall into what Mendenhall described as “three buckets.” First, he said, each entity was paid an administrative fee — approximately $40 — for each injection. The suit seeks a refund of that money to the government for the thousands of shots administered. Next, for every failure to report, there is a mandatory penalty of at least $20,000. For 12,000 cases, that would total more than $240,000,000. Finally, the “third bucket” of damages would be the cost of the treatment that people had to pay for their vaccine injuries. By failing to meet their obligations as a vaccine provider, he said the hospital failed to provide people with the proper necessary treatment they ought to be entitled to and those costs should be reimbursed. If Conrad prevails in court, the hospital will go bankrupt — but that isn’t the intent, Mendenhall said. “We don’t want to bankrupt community hospitals,” he said. “That’s not what we are about. We want them to do their job, to do what they are supposed to do and file the reports,” he said. “And we want Deb Conrad rehired to run the program.” Conrad is suing only one hospital system, but there are roughly 2,800 systems in the country, Mendenhall said. “As far as I know, not a single one of them met their obligations under the vaccination program participation agreement. And they all signed it.” The False Claims Act, “is a way for us as a people, if we want to hold these providers accountable for their wrongdoing, we actually can do it,” Mendenhall told Trial Site News. “There’s a very clear pathway here. It’s outlined here, and they all agreed to it.” Ray Flores, senior outside counsel for Children’s Health Defense, told The Defender the case represented a “bold effort to hold those who allegedly defrauded the people of the United States accountable.” In detailing the ways the hospital precluded providers from reporting to VAERS, “the allegations in the complaint solve part of the mystery of why only 1% of vaccine injuries are reported,” he said. Mendenhall also represents Pfizer whistleblower Brook Jackson, who sued the drugmaker under the False Claims Act. Do you have a news tip? We want to hear from you! Contact Us Conrad: ‘I kept getting gaslit and made fun of and told I was crazy’ When the COVID-19 pandemic began, Conrad had been a physician assistant for nearly 20 years. She spent most of that time as a hospitalist, working in inpatient medicine and the intensive care unit in the same hospital. At United Memorial, she was director of Advanced Practice Providers, sat on the medical executive board, saw patients and was the first non-physician to receive the Physician Excellence award. When the COVID-19 vaccine came out, her whole life changed, Conrad said. As she had done throughout her career, she reported to the hospital the safety issues and new trends in illness that she was seeing, such as elderly vaccinated people hospitalized for COVID-19 or young people with blood clots. In researching whether providers in other places were witnessing the same issues, Conrad discovered VAERS — which she said she and her colleagues had never been told about, despite claims later made by the hospital — and began reporting cases. She volunteered to take on this reporting role for the hospital, reporting all of the adverse events that came into the facility. As the number of adverse events grew, the reporting became too onerous, so Conrad asked the hospital to develop a plan to efficiently complete the reports, to protect patients and to remain in compliance. Instead, the hospital informed her it would be auditing her work. The hospital accused Conrad of over-reporting and being “antivaxxy.” This was a problem, the hospital informed her in an email included in the complaint, because “we are very much advocating for patients to receive the vaccine.” She was forbidden from filing reports for any patient she was not directly caring for, even though her leadership role meant she oversaw all patients, Conrad said. If she had other concerns, they said she could register them in the hospital’s internal email system, “Safe Connect,” which she did. However, those reports weren’t going anywhere. Concerned the events weren’t being reported and that the hospital was out of compliance with the agreement it had signed, Conrad began reaching out to the CDC, the FDA, the New York State Department of Health and the hospital accreditation board. Rather than receiving support, Conrad said: “I kept getting gaslit and made fun of and told I was crazy. “Then I got called into a meeting and they threatened to report me to the state for spreading misinformation, saying that basically doing VAERS reports and talking to patients about their potential side effects is misinformation, and that I was spreading vaccine hesitancy, and that’s not allowed. “And they said if it continued they were going to report me to have basically my license taken away. Wow. So at that point, I knew I was in real trouble.” She contacted a lawyer and went public with her experience on The Highwire and in The New York Times. She also started a GoFundMe campaign, anticipating her possible firing. The hospital threatened to report her to the New York State Society of Physician Assistants for spreading vaccine misinformation. Just a few months earlier, the same organization had nominated Conrad for a seat on the New York State Office of Professional Medical Conduct. In what Conrad called “direct retaliation,” on Oct. 6, 2021, she was publicly surrounded at her workstation by human resources staff and escorted to a room where she was interrogated about her public comments. “They basically told me, are you going to leave quietly or are we going to walk you out?” she said. Conrad said the firing was very public and humiliating, which she thought was meant to scare others. “As a result of me being publicly fired, it’s my understanding that now no one [at the hospital] is reporting to VAERS,” she said. This article was funded by critical thinkers like you. The Defender is 100% reader-supported. No corporate sponsors. No paywalls. Our writers and editors rely on you to fund stories like this that mainstream media won’t write. Please Donate Today Providers aren’t trained to use VAERS The VAERS system is the primary public reporting system for flagging vaccine safety issues. For members of the public, it’s a voluntary system. However, healthcare professionals are required to report certain events. Yet, Conrad said, she never learned about VAERS in her medical training and the hospital never offered training for the system. She said they never mentioned the system to staff until she complained publicly. “We come out of school knowing every side effect for every drug known to man, because they have no liability shield, but we are never taught there could be anything wrong with vaccines,” she said. “We didn’t even know there’s a reporting system. Why is that? Why do we have a liability shield for vaccines if they’re so safe? Why would we need it when we don’t have it for drugs that we know are not always safe? None of it makes sense,” she added. Conrad said this “flawed” and “fraudulent” system is responsible for the rise in “vaccine hesitancy.” “They blame people like me for this hesitancy,” she said, “but they are the ones who created the issue by not enforcing” safety and injury reporting. Instead, she said, the public health agencies normalized previously unthinkable ideas, such as it’s normal for vaccines to make people sick, or that reused cloth masks would protect from infectious disease and much more. Healthcare is about safety, she said. “First, do no harm. That’s the oath I took when I graduated. But they’re using the doctors to harm patients unknowingly and not teaching them about the safety mechanisms we put in place.” Conrad said she hopes the lawsuit will help change that. Now that it is unsealed, she said, “We’re able to go back out there and start talking about things because the public cannot forget. We cannot forget what has been done. Otherwise it’ll happen again.” Mendenhall said he expects a response from the hospital system next week. He predicts they will submit a motion to dismiss, which he intends to contest. “This is the first case of its kind,” he said. “I predict we will succeed in defending any motion to dismiss because Deb did such a good job with the evidence and her story is very compelling.” Employee Sues Hospital That Fired Her for Reporting COVID Vaccine Injuries to VAERS • Children's Health Defense https://childrenshealthdefense.org/defender/deborah-conrad-sues-hospital-fired-reporting-covid-vaccine-injuries-vaers/
    CHILDRENSHEALTHDEFENSE.ORG
    Employee Sues Hospital That Fired Her for Reporting COVID Vaccine Injuries to VAERS
    A physician’s assistant is suing a New York hospital system, alleging it violated the federal False Claims Act by failing to complete mandatory reporting to VAERS of injuries associated with the COVID-19 vaccine.
    0 Reacties 0 aandelen 32 Views
  • A better way to challenge scientific consensus
    Are COVID vaccines safe? I think not, but the "scientific consensus" is that they are. How can we definitively determine who is right? I suggest a way using science!

    Steve Kirsch
    David Douglass quote: Truth in science is always determined from observational facts.
    Executive summary

    In this article, I suggest a simple way to resolve scientific disagreements on important issues.

    The method is simple:

    The two parties mutually agree on a series of experiments to resolve the conflict.

    The experiments are designed so the results are reproducible, for example, by having several independent efforts doing the same thing.

    Win or lose, the “mainstream view” party (who should be led by a prominent scientist in the field being explored) agrees to write up the results of the experiment(s) and submit it to a prominent peer-reviewed technical journal.

    The “mainstream” party gets a large monetary award (a research grant) upon publication. The more prestigious the author, the higher the reward.

    We pay all costs in addition to the reward for people’s time and to fund the experiment(s).

    The idea is to make this “an offer that nobody can refuse.”

    For example…

    Suppose we want to prove whether vaccines cause autism.

    The two parties could agree on two experiments and how they are carried out such as:

    Gather data from a randomly selected list of parents of autistic kids which looks at the date the parents first noticed symptoms of ASD vs. the date of the most recent vaccination prior to the diagnosis.

    Gather the same data from doctors who treat autistic kids.

    The parties agree in advance what success (for each hypothesis) looks like.

    The parties agree that if both experiments agree with each other on deciding the question that they will publicly accept the result as scientific truth going forward, until such time as there is more persuasive data showing otherwise.

    If we set the reward at $1M and there are no takers, the question is resolved by default.

    Did the COVID vaccines save lives?

    This question is even easier to test. We pick hospitals at random and look at the vaccination rates of people hospitalized for COVID vs. the flu.

    This is a simple, fair test.

    Anyone rejecting attempts like this to expose the truth is not acting in good faith.

    Summary

    The problem with challenging scientific consensus is that the party with the mainstream beliefs simply ignores anyone who challenges them.

    So it’s up to the challengers to get their attention.

    By providing a large monetary incentive to create and execute a set of mutually agreeable scientific experiments to answer the question, we may be able to make progress on these intractable issues which have been unresolved for decades.

    What’s new here is large monetary incentives combined with a mutually agreeable set of experiments.

    This resolves the issue under investigation definitively.

    Either: 1) the mainstream party accepts and we do the experiments or 2) the mainstream party refuses to engage in which case it is a tacit admission of defeat.

    Either way, there is finally resolution on each issue explored.

    Let me know what you think of this idea in the comments.

    Share


    https://kirschsubstack.com/p/a-better-way-to-challenge-scientific
    A better way to challenge scientific consensus Are COVID vaccines safe? I think not, but the "scientific consensus" is that they are. How can we definitively determine who is right? I suggest a way using science! Steve Kirsch David Douglass quote: Truth in science is always determined from observational facts. Executive summary In this article, I suggest a simple way to resolve scientific disagreements on important issues. The method is simple: The two parties mutually agree on a series of experiments to resolve the conflict. The experiments are designed so the results are reproducible, for example, by having several independent efforts doing the same thing. Win or lose, the “mainstream view” party (who should be led by a prominent scientist in the field being explored) agrees to write up the results of the experiment(s) and submit it to a prominent peer-reviewed technical journal. The “mainstream” party gets a large monetary award (a research grant) upon publication. The more prestigious the author, the higher the reward. We pay all costs in addition to the reward for people’s time and to fund the experiment(s). The idea is to make this “an offer that nobody can refuse.” For example… Suppose we want to prove whether vaccines cause autism. The two parties could agree on two experiments and how they are carried out such as: Gather data from a randomly selected list of parents of autistic kids which looks at the date the parents first noticed symptoms of ASD vs. the date of the most recent vaccination prior to the diagnosis. Gather the same data from doctors who treat autistic kids. The parties agree in advance what success (for each hypothesis) looks like. The parties agree that if both experiments agree with each other on deciding the question that they will publicly accept the result as scientific truth going forward, until such time as there is more persuasive data showing otherwise. If we set the reward at $1M and there are no takers, the question is resolved by default. Did the COVID vaccines save lives? This question is even easier to test. We pick hospitals at random and look at the vaccination rates of people hospitalized for COVID vs. the flu. This is a simple, fair test. Anyone rejecting attempts like this to expose the truth is not acting in good faith. Summary The problem with challenging scientific consensus is that the party with the mainstream beliefs simply ignores anyone who challenges them. So it’s up to the challengers to get their attention. By providing a large monetary incentive to create and execute a set of mutually agreeable scientific experiments to answer the question, we may be able to make progress on these intractable issues which have been unresolved for decades. What’s new here is large monetary incentives combined with a mutually agreeable set of experiments. This resolves the issue under investigation definitively. Either: 1) the mainstream party accepts and we do the experiments or 2) the mainstream party refuses to engage in which case it is a tacit admission of defeat. Either way, there is finally resolution on each issue explored. Let me know what you think of this idea in the comments. Share https://kirschsubstack.com/p/a-better-way-to-challenge-scientific
    KIRSCHSUBSTACK.COM
    A better way to challenge scientific consensus
    Are COVID vaccines safe? I think not, but the "scientific consensus" is that they are. How can we definitively determine who is right? I suggest a way using science!
    0 Reacties 0 aandelen 34 Views
  • Etsy Profits Video Upgrade

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    Can Social Media Ads Make Your Etsy Store Profitable
    How To Leverage Social Media For Your Etsy Store
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    When is it a Good Idea to Sell New Items on Etsy


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    Etsy Profits Video Upgrade Whether you are an aspiring entrepreneur or a seasoned seller aiming to enhance your skills and increase your sales, this guide is tailored to serve as your pathway to success. Etsy provides a fantastic platform for individuals with creative talents to exhibit their skills, engage with customers, and establish a successful business. Succeeding in this marketplace demands some insider know-how, strategic thinking, and a dash of creativity. In this detailed guide, you will be guided through the crucial steps of setting up your Etsy shop and creating product listings that resonate with your target audience, ultimately boosting sales. Learn how to turn your passion into a successful business venture. As you navigate the realm of Etsy entrepreneurship, you will encounter both excitement and challenges. You will learn essential tools and knowledge needed to overcome obstacles and celebrate your accomplishments. Topics covered: 5 Do’s And Don’ts of Etsy Success 5 Reasons Why Etsy Is Great For Selling Your Creative Works 5 Strategies To Build Your Etsy Brand 5 Strategies To Drive More Traffic To Your Etsy Store 5 Ways To Create Killer Product Descriptions For Your Etsy Shop Can Social Media Ads Make Your Etsy Store Profitable How To Leverage Social Media For Your Etsy Store Photography Ideas For Your Etsy Store: 5 Tips From Professional Photographers The Power of SEO: How Can It Help Your Etsy Shop When is it a Good Idea to Sell New Items on Etsy You will get a ZIP (202MB) file
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  • THE ROAD LESS TRAVELED BY ACADEMY OF IDEAS
    https://www.bitchute.com/video/jSVMgxuM5auX/
    THE ROAD LESS TRAVELED BY ACADEMY OF IDEAS https://www.bitchute.com/video/jSVMgxuM5auX/
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  • YOU HAVE TO ALLOW BAD IDEAS
    https://www.bitchute.com/video/vJsWtKFu9l0/
    YOU HAVE TO ALLOW BAD IDEAS💡 https://www.bitchute.com/video/vJsWtKFu9l0/
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  • High blood pressure, also known as hypertension, is a common condition where the force of the blood against the artery walls is high enough that it may eventually cause health problems, such as heart disease. Here are key points about high blood pressure:

    Understanding Blood Pressure Readings:

    Blood pressure is measured in millimeters of mercury (mm Hg) and is given as two numbers:
    Systolic pressure (the top number): This measures the pressure in your arteries when your heart beats.
    Diastolic pressure (the bottom number): This measures the pressure in your arteries between beats.
    A normal blood pressure reading is usually around 120/80 mm Hg.

    Categories of Blood Pressure:

    Normal: Less than 120/80 mm Hg.
    Elevated: Systolic between 120-129 and diastolic less than 80.
    Hypertension Stage 1: Systolic between 130-139 or diastolic between 80-89.
    Hypertension Stage 2: Systolic at least 140 or diastolic at least 90.
    Hypertensive Crisis: Systolic over 180 and/or diastolic over 120, requiring immediate medical attention.

    Causes of High Blood Pressure:

    Primary (Essential) Hypertension: No identifiable cause; develops gradually over many years.
    Secondary Hypertension: Caused by an underlying condition such as kidney disease, adrenal gland tumors, certain congenital defects in blood vessels, medications, and illegal drugs.

    Symptoms:

    High blood pressure often has no symptoms. It's sometimes called a "silent killer" because it can cause damage to your cardiovascular system without noticeable symptoms. When symptoms do occur, they may include headaches, shortness of breath, or nosebleeds, but these symptoms are not specific and usually don't occur until high blood pressure has reached a severe or life-threatening stage.

    Complications:

    Heart Attack or Stroke
    Aneurysm
    Heart Failure
    Weakened and Narrowed Blood Vessels in Kidneys
    Thickened, Narrowed, or Torn Blood Vessels in the Eyes
    Metabolic Syndrome
    Trouble with Memory or Understanding

    Prevention:

    Healthy Diet: Rich in fruits, vegetables, whole grains, and low-fat dairy products.
    Reduced Salt Intake: Less than 2,300 mg per day, ideally 1,500 mg for most adults.
    Regular Exercise: At least 150 minutes a week of moderate aerobic activity or 75 minutes a week of vigorous activity.
    Healthy Weight: Maintaining a healthy body weight.
    Limited Alcohol: No more than one drink per day for women and two for men.
    Non-Smoking: Avoiding tobacco products.
    Stress Management: Techniques such as deep breathing, meditation, or yoga.
    Regular monitoring and medical check-ups are essential for managing blood pressure and reducing the risk of complications.

    Read More about "High Blood Pressure": https://tinyurl.com/2j92dpa5
    #highbloodpressure #hypertension #healthbodyweight #bloodvessels #bloodflow
    High blood pressure, also known as hypertension, is a common condition where the force of the blood against the artery walls is high enough that it may eventually cause health problems, such as heart disease. Here are key points about high blood pressure: Understanding Blood Pressure Readings: Blood pressure is measured in millimeters of mercury (mm Hg) and is given as two numbers: Systolic pressure (the top number): This measures the pressure in your arteries when your heart beats. Diastolic pressure (the bottom number): This measures the pressure in your arteries between beats. A normal blood pressure reading is usually around 120/80 mm Hg. Categories of Blood Pressure: Normal: Less than 120/80 mm Hg. Elevated: Systolic between 120-129 and diastolic less than 80. Hypertension Stage 1: Systolic between 130-139 or diastolic between 80-89. Hypertension Stage 2: Systolic at least 140 or diastolic at least 90. Hypertensive Crisis: Systolic over 180 and/or diastolic over 120, requiring immediate medical attention. Causes of High Blood Pressure: Primary (Essential) Hypertension: No identifiable cause; develops gradually over many years. Secondary Hypertension: Caused by an underlying condition such as kidney disease, adrenal gland tumors, certain congenital defects in blood vessels, medications, and illegal drugs. Symptoms: High blood pressure often has no symptoms. It's sometimes called a "silent killer" because it can cause damage to your cardiovascular system without noticeable symptoms. When symptoms do occur, they may include headaches, shortness of breath, or nosebleeds, but these symptoms are not specific and usually don't occur until high blood pressure has reached a severe or life-threatening stage. Complications: Heart Attack or Stroke Aneurysm Heart Failure Weakened and Narrowed Blood Vessels in Kidneys Thickened, Narrowed, or Torn Blood Vessels in the Eyes Metabolic Syndrome Trouble with Memory or Understanding Prevention: Healthy Diet: Rich in fruits, vegetables, whole grains, and low-fat dairy products. Reduced Salt Intake: Less than 2,300 mg per day, ideally 1,500 mg for most adults. Regular Exercise: At least 150 minutes a week of moderate aerobic activity or 75 minutes a week of vigorous activity. Healthy Weight: Maintaining a healthy body weight. Limited Alcohol: No more than one drink per day for women and two for men. Non-Smoking: Avoiding tobacco products. Stress Management: Techniques such as deep breathing, meditation, or yoga. Regular monitoring and medical check-ups are essential for managing blood pressure and reducing the risk of complications. Read More about "High Blood Pressure": https://tinyurl.com/2j92dpa5 #highbloodpressure #hypertension #healthbodyweight #bloodvessels #bloodflow
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  • Etsy Profits Video Upgrade

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    In this detailed guide, you will be guided through the crucial steps of setting up your Etsy shop and creating product listings that resonate with your target audience, ultimately boosting sales.

    Learn how to turn your passion into a successful business venture. As you navigate the realm of Etsy entrepreneurship, you will encounter both excitement and challenges.

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    5 Reasons Why Etsy Is Great For Selling Your Creative Works
    5 Strategies To Build Your Etsy Brand
    5 Strategies To Drive More Traffic To Your Etsy Store
    5 Ways To Create Killer Product Descriptions For Your Etsy Shop
    Can Social Media Ads Make Your Etsy Store Profitable
    How To Leverage Social Media For Your Etsy Store
    Photography Ideas For Your Etsy Store: 5 Tips From Professional Photographers
    The Power of SEO: How Can It Help Your Etsy Shop
    When is it a Good Idea to Sell New Items on Etsy
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  • Etsy Profits Video Upgrade

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    Whether you are an aspiring entrepreneur or a seasoned seller aiming to enhance your skills and increase your sales, this guide is tailored to serve as your pathway to success.

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    In this detailed guide, you will be guided through the crucial steps of setting up your Etsy shop and creating product listings that resonate with your target audience, ultimately boosting sales.

    Learn how to turn your passion into a successful business venture. As you navigate the realm of Etsy entrepreneurship, you will encounter both excitement and challenges.

    You will learn essential tools and knowledge needed to overcome obstacles and celebrate your accomplishments.

    Topics covered:

    5 Do’s And Don’ts of Etsy Success
    5 Reasons Why Etsy Is Great For Selling Your Creative Works
    5 Strategies To Build Your Etsy Brand
    5 Strategies To Drive More Traffic To Your Etsy Store
    5 Ways To Create Killer Product Descriptions For Your Etsy Shop
    Can Social Media Ads Make Your Etsy Store Profitable
    How To Leverage Social Media For Your Etsy Store
    Photography Ideas For Your Etsy Store: 5 Tips From Professional Photographers
    The Power of SEO: How Can It Help Your Etsy Shop
    When is it a Good Idea to Sell New Items on Etsy
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    Like
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  • He's so perfect I have no idea why he chose me of all people but he did and I'm so greatfull <3<3
    He's so perfect I have no idea why he chose me of all people but he did and I'm so greatfull <3<3
    0 Reacties 0 aandelen 409 Views
  • Provide a clear and concise summary of your idea that is central to your essay using this fully customizable one pager thesis statement PowerPoint template. You can use this PPT template to write an appropriate thesis statement that is divided into 3 sections: Introduction, Body, Conclusion that helps to showcase the brief idea of the research topic.
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  • Summarize your personal information about who you are, and what are your goals, achievements, and ideals, using this fully customizable personal CV PowerPoint template. This PPT template also helps the recruiters understand what you are looking for, what you have to offer, and who you are. Explore Now: https://bit.ly/48v8uq7
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  • Introduce the topic of thesis and provide the summary of the main idea with final conclusion using this fully customizable one page thesis statement PowerPoint template. It PPT template also helps to generate interest in the research topic and engage the audiences.
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  • Coloring Book Ideas Review

    Unlock the Gateway to Profits with 50 Unique Coloring Book Ideas for Creators & Publishers!

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  • The emergence of nanobot society
    OUTRAGED HUMAN













    So, they injected it into the military, police, emergency services.... Now everyone is injected with a device with a "real IP ADDRESS"....






    0:00

    Thank you very much. So one word of notice before we begin,

    0:03

    all the technologies that you are going to see here now are real.

    0:06

    And with that said

    0:07

    I'd like to first tell you the story about

    0:10

    this uh... little girl named Dana

    0:12

    she's very special for me because she's my daugther

    0:14

    and Dana was born with a leg condition requiring frequent surgeries like this one

    0:19

    uh... she had when we were in Boston

    0:21

    and um... I remember taking her to that particular surgery

    0:25

    and uh...

    0:26

    I rembember her being admitted and she was excited at first

    0:31

    and then just before they got into her the OR

    0:33

    I looked at her and she was... afraid, she was little worried and

    0:38

    who wouldn't be? Because surgeries today are complicated

    0:41

    and they're often very risky.

    0:42

    Now let's imagine a few years into the future, into the near future hopefully,

    0:47

    Dana will arrive to hospital for her ??? surgery

    0:50

    and instead of being prepped for anesthesia for the OR

    0:54

    the surgeon will just take a syringe and inside the syringe

    0:58

    there are millions of tiny robots, of tiny machines

    1:02

    that will be injected into Dana's bloodstream.

    1:04

    They will autonomously locate the place they need to be in,

    1:08

    they will excite out the injured tissue,

    1:11

    then will remove dead cells,

    1:13

    then they will...

    1:14

    stimulate and guide the regrowth of healthy cells across those tissue gaps,

    1:18

    they will release drugs that relief pain and reduce inflammation

    1:23

    and all the while Dana will be sitting on the chair

    1:25

    eating a sandwich, reading a book, might be the next

    1:28

    twilight saga book which she'll be able to read because she will be 16 by then

    1:32

    And...(giggles)

    1:33

    uh... when these robots

    1:35

    have completed their job they'll simply disintegrate

    1:39

    and disappear from her bloodstream the next day.

    1:42

    So these nanobots have been envisioned in the past 30 years

    1:45

    by people like Eric Drexler, Robert Freitas and Ray Kuzweil.

    1:49

    Today I'm going to show you that these robots exist

    1:51

    here in Israel.

    1:54

    I'll show you this syringe

    1:56

    which I've brought from my lab.

    1:58

    So this syringe has inside it a thousand billion robots.

    2:03

    So these robots are each fifty nanometers

    2:06

    long as you can see in this slide under the microscope.

    2:11

    Fifty nanometers is about 2000 times thinner than the thickness of your hair

    2:16

    OK? And... umm... These robots were born actually 3 years ago

    2:20

    in a research I did with Shawn Douglas, now a UCSF Professor.

    2:24

    But over the past year and a half

    2:25

    in my group at Bar-Ilan University

    2:27

    We've been developing and testing robots for a variety of

    2:31

    medical and therapeutic tasks.

    2:33

    We've invented ways of making them safe for use

    2:37

    and non-inmunogenic

    2:38

    and we learned how to tune their stability in our bloodstream

    2:41

    to fit either short-term or long-term

    2:44

    even days long medical procedures.

    2:47

    So to carry out medical and therapeutic procedures in our body

    2:50

    with the upmost precision,

    2:51

    we need to be able to control molecules

    2:53

    Controlling molecules is a very simple challenge

    2:56

    in modern scientific knowledge.

    2:58

    OK? Let's speak for example about the class of molecules we know as drugs

    3:02

    So despite...

    3:04

    amazing progress made in the past four decades

    3:06

    the way we think about drugs and we the way we use drugs

    3:09

    has been essentially unchanged

    3:11

    and it's similar as two hundred years ago

    3:14

    right? You hear about about big pharmaceutical companies

    3:17

    spending huge amounts of money

    3:19

    searching for better, safer drugs.

    3:22

    Attempts that usually fail.

    3:24

    OK? but,

    3:25

    searching for let's say a safer cancer drug,

    3:28

    half it is a concept that has a flaw in it.

    3:30

    Because searching for a safer cancer drug

    3:32

    is basically like searching for a gun that kills only bad people

    3:36

    We don't search for such guns,

    3:37

    what we do is training soldiers to use that gun properly

    3:42

    Of course in drugs we can't do this because it seems very hard

    3:45

    But there are things we can do with drugs

    3:47

    for example, we can put the drugs

    3:49

    in particles from which they difuse slowly.

    3:51

    We can attach a drug to a carrier

    3:54

    which takes someplace but, this is not real control.

    3:57

    When we were thinking about control we're thinking about

    4:00

    processes is the real world around us

    4:02

    and what happens when we want to control a process

    4:06

    that's beyond our capabilities as humans

    4:08

    we just connect this process to a computer

    4:10

    and let the computer control this process for us.

    4:13

    OK? So that's what we do.

    4:15

    But obviously this cannot be done with drugs because

    4:19

    the drugs are so much smaller than the computers as we know them

    4:23

    The computer is in fact so much bigger

    4:25

    it's about a hundred million times bigger that any drug molecule.

    4:28

    Our nanobots which were in the syringe

    4:31

    solve this problem because they are in fact

    4:34

    computers the size of molecules.

    4:36

    and they can interact with molecules

    4:38

    and they can control molecules directly,

    4:40

    so just think about all those

    4:42

    drugs that have been withdrawn from the market

    4:45

    for excessive toxicity

    4:46

    right?

    4:47

    It doesn't mean that they are not effective,

    4:49

    they were amazingly effective,

    4:51

    they were just guns shooting in all directions

    4:53

    but in the hands of a well-trained soldier

    4:56

    or a well-programed nanobot

    4:58

    using all the existing drugs

    5:01

    we could hypothetically kill almost any disease.

    5:05

    So we might not need even new drugs.

    5:07

    We have amazing drugs already,

    5:09

    we just don't know how to control them, this is the problem

    5:11

    and our nanobots...

    5:13

    hopefully solve this problem and I'll show you how.

    5:15

    So there is an interesting question "how do we build

    5:19

    a robot or a machine the size of a molecule?"

    5:21

    so the simple answer would be: we can use molecules

    5:25

    to build this machine.

    5:26

    So we're using molecules, but we're not using just any molecule.

    5:30

    We're using the perfect, most beautiful molecule on earth, at least in my opinion,

    5:34

    which is DNA.

    5:36

    And in fact every part of the robot,

    5:38

    every part of out nanorobots:

    5:40

    Moving parts, axis, locks, chasis, software,

    5:44

    everything is made from DNA molecules.

    5:46

    And the techonology that enables us to do this

    5:49

    originated thirty years ago when the pioneering works of Nadrian Seeman,

    5:52

    culminating 7 years ago in the works of Paul Rothemund from Caltech,

    5:56

    which was also featured in TED,

    5:58

    and it's called DNA origami.

    5:59

    Now in DNA origami we do not use a piece of paper,

    6:02

    we use a single long strand of DNA

    6:05

    and we fold it into virtually any shape we want.

    6:08

    For example these shapes, so these are actual microscopic images

    6:12

    of shapes the size of molecules that were folded from DNA.

    6:16

    so the smiley you see here in the center of the screen for example

    6:19

    are a hundred nanometers in size

    6:21

    and we make billions of them in few... in a single reaction.

    6:24

    Now since 2006 several researchers, really talented ones,

    6:28

    have been expanding the limits of the technically feasible in DNA origami

    6:32

    and now we have an astonishig array of shapes and objects which we can build

    6:35

    using this technique.

    6:36

    And these researchers also gave us computer-aided design tools

    6:41

    that enable everyone

    6:43

    very very simply to design objects from DNA

    6:46

    So these CAD tools amazingly

    6:49

    enable us to focus o n the shape we want

    6:52

    forgetting the fact that these structures are in fact assemblies of molecules.

    6:57

    so this is for example a shape the computer can actually turn into DNA molecules.

    7:02

    and the output of this CAD software, as you can see,

    7:05

    is a spreadsheet with fragments of DNA

    7:08

    which you can attach to a message and send to a company

    7:11

    one of two dozen companies that make DNA by order and you'll get those DNA's

    7:16

    several days later to your doorstep

    7:18

    and when you get them all you need to do is just mix them in a certain way

    7:23

    and these molecular bricks will self-assemble into

    7:26

    millions of copies of the very structure that you designed using that CAD software

    7:30

    which is free by the way, you can download it for free.

    7:34

    So, let's have a look at our nanorobots.

    7:38

    So, this is how the nanorobots look like, it's built from DNA as you can see

    7:42

    And it resembles a clam shell in which you can put cargo

    7:45

    You can load anything you want starting from small molecules, drugs,

    7:49

    proteines, enzymes, even nano-particles. Virtually any function

    7:54

    that molecules can carry out, can be loaded into the nanobot

    7:57

    and the nanobot can be programmed to turn on and off

    8:01

    these functions at certain places and at certain times

    8:05

    this is how we control those molecules

    8:07

    and so this particular nanorobot is in an off state, it's closed,it's securely

    8:12

    sequestres anything, any payload you put inside

    8:16

    so it's not accessible to the outside of the robot,

    8:18

    for example, it cannot engage target cells or target tissues

    8:22

    But we can program the nanobot to switch to an on state

    8:26

    based on molecular cues it finds from the environment

    8:30

    so programming the robot is virtually like assemblying a combination lock

    8:34

    using disks that recognize digits,

    8:37

    but of course instead of digits we are assemblying disks that recognize molecules.

    8:42

    So these robots can turn from off to on and when they do

    8:47

    any cargo inside is now accessible,

    8:49

    it can attack target cells or target tissues

    8:52

    or other robots which you'll see later on.

    8:54

    And so we have robots that can switch from off to on

    8:58

    and off again, we can control their kinetics of transition.

    9:02

    We can control which payload becomes accessible at which time point

    9:05

    Let's see an example how these robots for example control a cancer drug

    9:12

    So what you can do is you can take nanobots,

    9:14

    you can put the nastiest cancer drug you may find

    9:17

    into the robots, even a cancer drug

    9:19

    that's been withdrawn because of excessive toxicity

    9:23

    Ok? When the robot is locked

    9:25

    and you put them in your mixture of healthy cells and tumor cells

    9:29

    nothing happens, no cell is affected, because the robot

    9:32

    safely sequesters those drugs inside.

    9:35

    When we unlock the robots

    9:37

    all cells die because the cargo inside the [robot] attacks anything on sight.

    9:42

    So all cells eventually die. In this case this is a fluorescent molecule

    9:46

    to help us see better the output.

    9:48

    But when we program the nanobots to search for tumor cells particulary,

    9:53

    so only the tumor cells

    9:56

    uh... only the tumor cells die because

    9:59

    the robot doesn't care about the bystander cells, about the healthy cells.

    10:04

    So it does not harm them at all.

    10:06

    And we have nanorobots in our lab that can target

    10:09

    about ten types of cancer already and other cell targets

    10:12

    and my team keeps expanding this range monthly.

    10:17

    So these are nanorobots and to another topic

    10:22

    organisms in nature, like bacteria and animals

    10:26

    have learned very early in evolution that working in a coordinated group

    10:29

    conveys advantage

    10:31

    and capabilities beyond those of the individual

    10:34

    and since we are interested in

    10:36

    very complex medical procedures, very complex therapeutic settings,

    10:40

    we're wondering what we could do

    10:42

    if we could engineer artificial swarm behaviors

    10:46

    into our nanobots as well so we could have extraordinarily large groups of nanobots

    10:51

    Can we teach them to behave like animals, like insects

    10:55

    and how do you do this? So the question is interesting.

    10:58

    So you could think one way to do it would be

    11:01

    to look at a natural swarm like this one of fish

    11:04

    and simulate the dynamics of the entire swarm and then try to write the codes

    11:09

    in molecules of course

    11:10

    that mimic the same behaviour

    11:12

    this is virtually impossible, it's impractical

    11:15

    what we do is we take the single fish or a single nanobot in our case

    11:20

    and you design a very basic set of interaction rules

    11:23

    and then you take this one, this nanobot, you make a billion copies of it

    11:27

    and you let the behaviours emerge from that group

    11:31

    let me show you some examples of the things we can already do

    11:35

    for example, just as ants

    11:38

    can shake hands and form physical bridges between two trees

    11:42

    or two remote parts of the same tree,

    11:44

    we already have nanorobots that can reach out for each other

    11:47

    touch each other and shake hands in such a way

    11:49

    they form physical bridges.

    11:51

    Then you can imagine these robots

    11:53

    extending, making bridges extending from one-half

    11:56

    to the other half of an injured tissue,

    11:58

    an injured spinal cord for example

    12:00

    or an injured leg in the case of Dana, my daughter

    12:03

    and once they stretched over that tissue gap

    12:06

    they can apply growth factors, as payloads, and those growth factors

    12:10

    stimulate the re-growth and guide re-growth of cells across the gap.

    12:14

    So we already did that and...

    12:17

    we have robots that can cross regulate each other just like animals do in groups

    12:21

    and this is amazing because as you can see here

    12:24

    you can have two types of robots, Type-A and Type-B

    12:28

    they can cross regulate each other, such that "A" is active

    12:32

    while "B" is not and viceversa.

    12:34

    So this is good for combination therapy

    12:36

    with combination therapy we take multiple drugs, right?

    12:39

    and sometimes two or more of these drugs

    12:41

    can collide and generate side effects,

    12:43

    but here you can put one drug here, one drug here

    12:46

    and the robots will time the activities so that

    12:49

    one drug is active, the other is not and then they can switch

    12:52

    and so two or more drugs can operate at the same time without actually colliding.

    12:57

    Another example that we did is the quorum sensing.

    13:00

    Now quorum sensing is great, it's a bacterial inspired behaviour

    13:05

    It means nanorobots can count themselves

    13:08

    and they can switch to "on" only when reaching a certain population size

    13:12

    this is a mechanism invented by bacteria in evolution

    13:15

    and they regulate amazing behaviours based on just their population density

    13:18

    for example, bioluminescence, this one of the well-studied examples

    13:23

    so our robots can count themselves and switch to on

    13:26

    only when reaching a certain population size which we can program.

    13:29

    This is great because this is a mechanism of programming a drug

    13:33

    to become active only when reaching a certain dose

    13:36

    around the target, regardless of its inherent dose-response curve.

    13:41

    One last I'm gonna show to you is computing,

    13:43

    so this nanobots can do computing.

    13:45

    How's so? If you think about your computer at home,

    13:48

    the processor of the computer is in fact a gigantic swarm of transistors

    13:53

    In an i7 core for example you have 800 million transistors approximately

    13:58

    and they're set to interact in certain ways to produce logic gates

    14:02

    and these logic gates are set to interact to produce computations

    14:05

    so we can also produce computation by setting interactions between nanorobots

    14:10

    to emulate logic gates like you see here

    14:13

    and they form chains and they form pairs

    14:15

    and my team in Bar-Ilan University [has] already developed several architectures

    14:19

    of computing based on interacting nanorobots

    14:22

    and to prototype these

    14:24

    we are using animals, very interesting animals

    14:27

    these are cockroaches,

    14:28

    they are very easy to work with, the're very sweet,

    14:30

    they're actually from South America

    14:32

    and I'm a Soutamerican myself so I fell kinda related

    14:35

    [Laughter]

    14:36

    And hum... so what we do is we inject those robots into the cockroach

    14:40

    and to do that we of course had to put the cockroaches to sleep

    14:43

    have you ever tried putting cockroach to sleep?

    14:46

    We put in the freezer for seven minutes

    14:48

    in they fall asleep

    14:49

    and we can inject these nanorobots inside

    14:52

    and after 20 minutes they start running around, they're happy.

    14:55

    And those robots

    14:57

    while they're doing this, the robots read molecules

    14:59

    from the cockroaches' inputs

    15:01

    and they write their outputs in the form of drugs

    15:04

    activated on those cockroaches' cells

    15:06

    so we can do, we can see that and we already have, as you can see,

    15:09

    architectures of interecting nanorobots that can emulate logical operators

    15:14

    and you can use these as modular parts to build any type universal computer you want

    15:19

    [....]

    15:21

    that can control multiple drugs simultaneously

    15:25

    as a result of biocomputing, this is real universal computing in a living animal.

    15:30

    Now we already have systems that have [the] computing capacity

    15:33

    of an 8-bit computer like Commodore 64.

    15:36

    To make sure we don't lose control over the nanobots after they're injected

    15:40

    my team [has] developed nanorobots that carry antennae

    15:44

    these antennae are made from metal nano-particles.

    15:47

    Now, the antennae enable the nanobots

    15:49

    to respond to externally applied electromagnetic fields

    15:52

    so these nanorobots, this version of nanobots

    15:55

    can actually be activated with a press of a button on a joystick

    15:58

    or for example using a controller

    16:01

    such as the Xbox or Wii if you ever had the chance of playing with those

    16:05

    and you can see one of my students in the lab configuring an Xbox app

    16:09

    to control nanobots.

    16:11

    For example you can imagine nanorobots being injected

    16:14

    to Dana, my daughter for example,

    16:16

    and the doctor can guide those robots

    16:19

    into the site, into the leg and just activate them with a hand gesture.

    16:23

    And you can already see an example where we actually took

    16:26

    cancer cells and loaded robots with cancer drugs

    16:29

    and activated the drug by a hand gesture.

    16:31

    and we can actually kill cancer cells just by doing this,

    16:34

    as you can see here.

    16:36

    And the interesting thing is that

    16:39

    because the controller like the Xbox is connected to the internet,

    16:44

    the controller actually links those nanobots to the network

    16:47

    so they have an actual IP address

    16:49

    and they can be accessed from a remote device sitting on the same network,

    16:53

    for example, my doctor's smartphone

    16:55

    So, OK?, just like controlling a controller, this can be done.

    17:00

    The last thing I'm gonna show is, if you look at our body

    17:04

    you'll see that every cell type, every organ, every tissue

    17:08

    has their own unique molecular signature

    17:11

    and this is equivalent to a physical IP address made of molecules

    17:15

    and if you know these molecules

    17:17

    you can use those nanobots to browse the Organism Wide Web, as we call it

    17:21

    and you can program them to look for bits,

    17:23

    this could be for example signally molecules between cells,

    17:26

    and either fetch them for diagnostics

    17:28

    or carry them to different addresses.

    17:30

    And we already have robots that can hijack

    17:33

    signals between cells

    17:34

    and manipulate an entire network of communications between cells

    17:37

    and this is great for controlling very complex diseases in which many cell types

    17:43

    communicate and orchestrate to perpetuate a disease.

    17:46

    So before I finish I'd just like to thank

    17:50

    my amazing team at Bar-Ilan University

    17:52

    and all the colleagues that took part in this extraordinary journey,

    17:55

    starting from the George Chuch's Lab in Harvard

    17:57

    and ending today in Bar-Ilan University in the new Faculty of Life Sciences,

    18:01

    and I really hope that

    18:03

    anywhere between a year and five years from now

    18:06

    we'll be able to use this in humans

    18:08

    and finally witness the emergence of nanobot society.

    18:11

    Thank you very much.


    https://www.digitaltrends.com/cool-tech/nanobots-live-cockroach-thought-control/





    https://www.digitaltrends.com/cool-tech/nanobots-live-cockroach-thought-control/

    https://www.timesofisrael.com/israeli-scientists-use-nanobots-and-thoughts-to-administer-drugs/


    Israeli scientists say they have come up with a way for brain power to control when drugs are released into the body, by using tiny robots made out of DNA to deliver the medication internally.

    Researchers at the Interdisciplinary Center in Herzliya and Bar-Ilan University in Ramat Gan have built the nanobots to which medication is attached and then are injected into the body. The nanobots have a “gate” that opens or closes — thereby controlling drug release — depending on brain activity.

    In order to achieve this, the New Scientist magazine said, the researchers developed a computer algorithm that could tell whether a person’s brain was resting or carrying out some form of mental activity, such as math problems. A fluorescent-tinted drug was then added to the nanobots, which were injected into a cockroach placed inside an electromagnetic coil.

    Israeli scientists say they have come up with a way for brain power to control when drugs are released into the body, by using tiny robots made out of DNA to deliver the medication internally.

    This coil was then connected to an EEG cap worn by a person asked to perform mental calculations. The computer recognized increased brain activity by the cap wearer, which triggered the “gate” on the nanobots inside the cockroach, releasing the fluorescent drug that was visible as it spread through the insect’s body.

    The idea is to use the delivery system for people with mental health issues, which are sometimes triggered before sufferers are aware they need medication.

    By monitoring brain activity, the nanobots could deliver the required preventative drugs automatically,

    for example before a violent episode of schizophrenia.

    https://www.newscientist.com/article/2102463-mind-controlled-nanobots-could-release-drugs-inside-your-brain/


    The group has built nanorobots out of DNA, forming shell-like shapes that drugs can be tethered to. The bots also have a gate, which has a lock made from iron oxide nanoparticles. The lock opens when heated using electromagnetic energy, exposing the drug to the environment. Because the drug remains tethered to the DNA parcel, a body’s exposure to the drug can be controlled by closing and opening the gate.

    By examining when fluorescence appeared inside different cockroaches, the team confirmed that this worked.

    The idea would be to automatically trigger the release of a drug when it is needed. For example, some people don’t always know when they need medication – before a violent episode of schizophrenia, for instance. If an EEG could detect it was coming, it could stimulate the release of a preventative drug.

    https://www.youtube.com/watch?v=BxJPceCV51g Nanobots Successfully Used on Living Animal for the First Time - IGN News

    0:38

    to treat human ailments or weaponized

    0:40

    hijacked by a snake themed terrorist

    0:42

    organization and then used to destroy

    0:43

    Paris but I suppose it's only a matter

    0:45

    of time


    “This syringe has inside it a thousand billion robots.”

    https://outraged.substack.com/p/the-emergence-of-nanobot-society?utm_source=cross-post&publication_id=1087020&post_id=143145132&utm_campaign=956088&isFreemail=true&r=1sq9d8&triedRedirect=true&utm_medium=email

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    https://donshafi911.blogspot.com/2024/04/the-emergence-of-nanobot-society.html
    The emergence of nanobot society OUTRAGED HUMAN So, they injected it into the military, police, emergency services.... Now everyone is injected with a device with a "real IP ADDRESS".... 0:00 Thank you very much. So one word of notice before we begin, 0:03 all the technologies that you are going to see here now are real. 0:06 And with that said 0:07 I'd like to first tell you the story about 0:10 this uh... little girl named Dana 0:12 she's very special for me because she's my daugther 0:14 and Dana was born with a leg condition requiring frequent surgeries like this one 0:19 uh... she had when we were in Boston 0:21 and um... I remember taking her to that particular surgery 0:25 and uh... 0:26 I rembember her being admitted and she was excited at first 0:31 and then just before they got into her the OR 0:33 I looked at her and she was... afraid, she was little worried and 0:38 who wouldn't be? Because surgeries today are complicated 0:41 and they're often very risky. 0:42 Now let's imagine a few years into the future, into the near future hopefully, 0:47 Dana will arrive to hospital for her ??? surgery 0:50 and instead of being prepped for anesthesia for the OR 0:54 the surgeon will just take a syringe and inside the syringe 0:58 there are millions of tiny robots, of tiny machines 1:02 that will be injected into Dana's bloodstream. 1:04 They will autonomously locate the place they need to be in, 1:08 they will excite out the injured tissue, 1:11 then will remove dead cells, 1:13 then they will... 1:14 stimulate and guide the regrowth of healthy cells across those tissue gaps, 1:18 they will release drugs that relief pain and reduce inflammation 1:23 and all the while Dana will be sitting on the chair 1:25 eating a sandwich, reading a book, might be the next 1:28 twilight saga book which she'll be able to read because she will be 16 by then 1:32 And...(giggles) 1:33 uh... when these robots 1:35 have completed their job they'll simply disintegrate 1:39 and disappear from her bloodstream the next day. 1:42 So these nanobots have been envisioned in the past 30 years 1:45 by people like Eric Drexler, Robert Freitas and Ray Kuzweil. 1:49 Today I'm going to show you that these robots exist 1:51 here in Israel. 1:54 I'll show you this syringe 1:56 which I've brought from my lab. 1:58 So this syringe has inside it a thousand billion robots. 2:03 So these robots are each fifty nanometers 2:06 long as you can see in this slide under the microscope. 2:11 Fifty nanometers is about 2000 times thinner than the thickness of your hair 2:16 OK? And... umm... These robots were born actually 3 years ago 2:20 in a research I did with Shawn Douglas, now a UCSF Professor. 2:24 But over the past year and a half 2:25 in my group at Bar-Ilan University 2:27 We've been developing and testing robots for a variety of 2:31 medical and therapeutic tasks. 2:33 We've invented ways of making them safe for use 2:37 and non-inmunogenic 2:38 and we learned how to tune their stability in our bloodstream 2:41 to fit either short-term or long-term 2:44 even days long medical procedures. 2:47 So to carry out medical and therapeutic procedures in our body 2:50 with the upmost precision, 2:51 we need to be able to control molecules 2:53 Controlling molecules is a very simple challenge 2:56 in modern scientific knowledge. 2:58 OK? Let's speak for example about the class of molecules we know as drugs 3:02 So despite... 3:04 amazing progress made in the past four decades 3:06 the way we think about drugs and we the way we use drugs 3:09 has been essentially unchanged 3:11 and it's similar as two hundred years ago 3:14 right? You hear about about big pharmaceutical companies 3:17 spending huge amounts of money 3:19 searching for better, safer drugs. 3:22 Attempts that usually fail. 3:24 OK? but, 3:25 searching for let's say a safer cancer drug, 3:28 half it is a concept that has a flaw in it. 3:30 Because searching for a safer cancer drug 3:32 is basically like searching for a gun that kills only bad people 3:36 We don't search for such guns, 3:37 what we do is training soldiers to use that gun properly 3:42 Of course in drugs we can't do this because it seems very hard 3:45 But there are things we can do with drugs 3:47 for example, we can put the drugs 3:49 in particles from which they difuse slowly. 3:51 We can attach a drug to a carrier 3:54 which takes someplace but, this is not real control. 3:57 When we were thinking about control we're thinking about 4:00 processes is the real world around us 4:02 and what happens when we want to control a process 4:06 that's beyond our capabilities as humans 4:08 we just connect this process to a computer 4:10 and let the computer control this process for us. 4:13 OK? So that's what we do. 4:15 But obviously this cannot be done with drugs because 4:19 the drugs are so much smaller than the computers as we know them 4:23 The computer is in fact so much bigger 4:25 it's about a hundred million times bigger that any drug molecule. 4:28 Our nanobots which were in the syringe 4:31 solve this problem because they are in fact 4:34 computers the size of molecules. 4:36 and they can interact with molecules 4:38 and they can control molecules directly, 4:40 so just think about all those 4:42 drugs that have been withdrawn from the market 4:45 for excessive toxicity 4:46 right? 4:47 It doesn't mean that they are not effective, 4:49 they were amazingly effective, 4:51 they were just guns shooting in all directions 4:53 but in the hands of a well-trained soldier 4:56 or a well-programed nanobot 4:58 using all the existing drugs 5:01 we could hypothetically kill almost any disease. 5:05 So we might not need even new drugs. 5:07 We have amazing drugs already, 5:09 we just don't know how to control them, this is the problem 5:11 and our nanobots... 5:13 hopefully solve this problem and I'll show you how. 5:15 So there is an interesting question "how do we build 5:19 a robot or a machine the size of a molecule?" 5:21 so the simple answer would be: we can use molecules 5:25 to build this machine. 5:26 So we're using molecules, but we're not using just any molecule. 5:30 We're using the perfect, most beautiful molecule on earth, at least in my opinion, 5:34 which is DNA. 5:36 And in fact every part of the robot, 5:38 every part of out nanorobots: 5:40 Moving parts, axis, locks, chasis, software, 5:44 everything is made from DNA molecules. 5:46 And the techonology that enables us to do this 5:49 originated thirty years ago when the pioneering works of Nadrian Seeman, 5:52 culminating 7 years ago in the works of Paul Rothemund from Caltech, 5:56 which was also featured in TED, 5:58 and it's called DNA origami. 5:59 Now in DNA origami we do not use a piece of paper, 6:02 we use a single long strand of DNA 6:05 and we fold it into virtually any shape we want. 6:08 For example these shapes, so these are actual microscopic images 6:12 of shapes the size of molecules that were folded from DNA. 6:16 so the smiley you see here in the center of the screen for example 6:19 are a hundred nanometers in size 6:21 and we make billions of them in few... in a single reaction. 6:24 Now since 2006 several researchers, really talented ones, 6:28 have been expanding the limits of the technically feasible in DNA origami 6:32 and now we have an astonishig array of shapes and objects which we can build 6:35 using this technique. 6:36 And these researchers also gave us computer-aided design tools 6:41 that enable everyone 6:43 very very simply to design objects from DNA 6:46 So these CAD tools amazingly 6:49 enable us to focus o n the shape we want 6:52 forgetting the fact that these structures are in fact assemblies of molecules. 6:57 so this is for example a shape the computer can actually turn into DNA molecules. 7:02 and the output of this CAD software, as you can see, 7:05 is a spreadsheet with fragments of DNA 7:08 which you can attach to a message and send to a company 7:11 one of two dozen companies that make DNA by order and you'll get those DNA's 7:16 several days later to your doorstep 7:18 and when you get them all you need to do is just mix them in a certain way 7:23 and these molecular bricks will self-assemble into 7:26 millions of copies of the very structure that you designed using that CAD software 7:30 which is free by the way, you can download it for free. 7:34 So, let's have a look at our nanorobots. 7:38 So, this is how the nanorobots look like, it's built from DNA as you can see 7:42 And it resembles a clam shell in which you can put cargo 7:45 You can load anything you want starting from small molecules, drugs, 7:49 proteines, enzymes, even nano-particles. Virtually any function 7:54 that molecules can carry out, can be loaded into the nanobot 7:57 and the nanobot can be programmed to turn on and off 8:01 these functions at certain places and at certain times 8:05 this is how we control those molecules 8:07 and so this particular nanorobot is in an off state, it's closed,it's securely 8:12 sequestres anything, any payload you put inside 8:16 so it's not accessible to the outside of the robot, 8:18 for example, it cannot engage target cells or target tissues 8:22 But we can program the nanobot to switch to an on state 8:26 based on molecular cues it finds from the environment 8:30 so programming the robot is virtually like assemblying a combination lock 8:34 using disks that recognize digits, 8:37 but of course instead of digits we are assemblying disks that recognize molecules. 8:42 So these robots can turn from off to on and when they do 8:47 any cargo inside is now accessible, 8:49 it can attack target cells or target tissues 8:52 or other robots which you'll see later on. 8:54 And so we have robots that can switch from off to on 8:58 and off again, we can control their kinetics of transition. 9:02 We can control which payload becomes accessible at which time point 9:05 Let's see an example how these robots for example control a cancer drug 9:12 So what you can do is you can take nanobots, 9:14 you can put the nastiest cancer drug you may find 9:17 into the robots, even a cancer drug 9:19 that's been withdrawn because of excessive toxicity 9:23 Ok? When the robot is locked 9:25 and you put them in your mixture of healthy cells and tumor cells 9:29 nothing happens, no cell is affected, because the robot 9:32 safely sequesters those drugs inside. 9:35 When we unlock the robots 9:37 all cells die because the cargo inside the [robot] attacks anything on sight. 9:42 So all cells eventually die. In this case this is a fluorescent molecule 9:46 to help us see better the output. 9:48 But when we program the nanobots to search for tumor cells particulary, 9:53 so only the tumor cells 9:56 uh... only the tumor cells die because 9:59 the robot doesn't care about the bystander cells, about the healthy cells. 10:04 So it does not harm them at all. 10:06 And we have nanorobots in our lab that can target 10:09 about ten types of cancer already and other cell targets 10:12 and my team keeps expanding this range monthly. 10:17 So these are nanorobots and to another topic 10:22 organisms in nature, like bacteria and animals 10:26 have learned very early in evolution that working in a coordinated group 10:29 conveys advantage 10:31 and capabilities beyond those of the individual 10:34 and since we are interested in 10:36 very complex medical procedures, very complex therapeutic settings, 10:40 we're wondering what we could do 10:42 if we could engineer artificial swarm behaviors 10:46 into our nanobots as well so we could have extraordinarily large groups of nanobots 10:51 Can we teach them to behave like animals, like insects 10:55 and how do you do this? So the question is interesting. 10:58 So you could think one way to do it would be 11:01 to look at a natural swarm like this one of fish 11:04 and simulate the dynamics of the entire swarm and then try to write the codes 11:09 in molecules of course 11:10 that mimic the same behaviour 11:12 this is virtually impossible, it's impractical 11:15 what we do is we take the single fish or a single nanobot in our case 11:20 and you design a very basic set of interaction rules 11:23 and then you take this one, this nanobot, you make a billion copies of it 11:27 and you let the behaviours emerge from that group 11:31 let me show you some examples of the things we can already do 11:35 for example, just as ants 11:38 can shake hands and form physical bridges between two trees 11:42 or two remote parts of the same tree, 11:44 we already have nanorobots that can reach out for each other 11:47 touch each other and shake hands in such a way 11:49 they form physical bridges. 11:51 Then you can imagine these robots 11:53 extending, making bridges extending from one-half 11:56 to the other half of an injured tissue, 11:58 an injured spinal cord for example 12:00 or an injured leg in the case of Dana, my daughter 12:03 and once they stretched over that tissue gap 12:06 they can apply growth factors, as payloads, and those growth factors 12:10 stimulate the re-growth and guide re-growth of cells across the gap. 12:14 So we already did that and... 12:17 we have robots that can cross regulate each other just like animals do in groups 12:21 and this is amazing because as you can see here 12:24 you can have two types of robots, Type-A and Type-B 12:28 they can cross regulate each other, such that "A" is active 12:32 while "B" is not and viceversa. 12:34 So this is good for combination therapy 12:36 with combination therapy we take multiple drugs, right? 12:39 and sometimes two or more of these drugs 12:41 can collide and generate side effects, 12:43 but here you can put one drug here, one drug here 12:46 and the robots will time the activities so that 12:49 one drug is active, the other is not and then they can switch 12:52 and so two or more drugs can operate at the same time without actually colliding. 12:57 Another example that we did is the quorum sensing. 13:00 Now quorum sensing is great, it's a bacterial inspired behaviour 13:05 It means nanorobots can count themselves 13:08 and they can switch to "on" only when reaching a certain population size 13:12 this is a mechanism invented by bacteria in evolution 13:15 and they regulate amazing behaviours based on just their population density 13:18 for example, bioluminescence, this one of the well-studied examples 13:23 so our robots can count themselves and switch to on 13:26 only when reaching a certain population size which we can program. 13:29 This is great because this is a mechanism of programming a drug 13:33 to become active only when reaching a certain dose 13:36 around the target, regardless of its inherent dose-response curve. 13:41 One last I'm gonna show to you is computing, 13:43 so this nanobots can do computing. 13:45 How's so? If you think about your computer at home, 13:48 the processor of the computer is in fact a gigantic swarm of transistors 13:53 In an i7 core for example you have 800 million transistors approximately 13:58 and they're set to interact in certain ways to produce logic gates 14:02 and these logic gates are set to interact to produce computations 14:05 so we can also produce computation by setting interactions between nanorobots 14:10 to emulate logic gates like you see here 14:13 and they form chains and they form pairs 14:15 and my team in Bar-Ilan University [has] already developed several architectures 14:19 of computing based on interacting nanorobots 14:22 and to prototype these 14:24 we are using animals, very interesting animals 14:27 these are cockroaches, 14:28 they are very easy to work with, the're very sweet, 14:30 they're actually from South America 14:32 and I'm a Soutamerican myself so I fell kinda related 14:35 [Laughter] 14:36 And hum... so what we do is we inject those robots into the cockroach 14:40 and to do that we of course had to put the cockroaches to sleep 14:43 have you ever tried putting cockroach to sleep? 14:46 We put in the freezer for seven minutes 14:48 in they fall asleep 14:49 and we can inject these nanorobots inside 14:52 and after 20 minutes they start running around, they're happy. 14:55 And those robots 14:57 while they're doing this, the robots read molecules 14:59 from the cockroaches' inputs 15:01 and they write their outputs in the form of drugs 15:04 activated on those cockroaches' cells 15:06 so we can do, we can see that and we already have, as you can see, 15:09 architectures of interecting nanorobots that can emulate logical operators 15:14 and you can use these as modular parts to build any type universal computer you want 15:19 [....] 15:21 that can control multiple drugs simultaneously 15:25 as a result of biocomputing, this is real universal computing in a living animal. 15:30 Now we already have systems that have [the] computing capacity 15:33 of an 8-bit computer like Commodore 64. 15:36 To make sure we don't lose control over the nanobots after they're injected 15:40 my team [has] developed nanorobots that carry antennae 15:44 these antennae are made from metal nano-particles. 15:47 Now, the antennae enable the nanobots 15:49 to respond to externally applied electromagnetic fields 15:52 so these nanorobots, this version of nanobots 15:55 can actually be activated with a press of a button on a joystick 15:58 or for example using a controller 16:01 such as the Xbox or Wii if you ever had the chance of playing with those 16:05 and you can see one of my students in the lab configuring an Xbox app 16:09 to control nanobots. 16:11 For example you can imagine nanorobots being injected 16:14 to Dana, my daughter for example, 16:16 and the doctor can guide those robots 16:19 into the site, into the leg and just activate them with a hand gesture. 16:23 And you can already see an example where we actually took 16:26 cancer cells and loaded robots with cancer drugs 16:29 and activated the drug by a hand gesture. 16:31 and we can actually kill cancer cells just by doing this, 16:34 as you can see here. 16:36 And the interesting thing is that 16:39 because the controller like the Xbox is connected to the internet, 16:44 the controller actually links those nanobots to the network 16:47 so they have an actual IP address 16:49 and they can be accessed from a remote device sitting on the same network, 16:53 for example, my doctor's smartphone 16:55 So, OK?, just like controlling a controller, this can be done. 17:00 The last thing I'm gonna show is, if you look at our body 17:04 you'll see that every cell type, every organ, every tissue 17:08 has their own unique molecular signature 17:11 and this is equivalent to a physical IP address made of molecules 17:15 and if you know these molecules 17:17 you can use those nanobots to browse the Organism Wide Web, as we call it 17:21 and you can program them to look for bits, 17:23 this could be for example signally molecules between cells, 17:26 and either fetch them for diagnostics 17:28 or carry them to different addresses. 17:30 And we already have robots that can hijack 17:33 signals between cells 17:34 and manipulate an entire network of communications between cells 17:37 and this is great for controlling very complex diseases in which many cell types 17:43 communicate and orchestrate to perpetuate a disease. 17:46 So before I finish I'd just like to thank 17:50 my amazing team at Bar-Ilan University 17:52 and all the colleagues that took part in this extraordinary journey, 17:55 starting from the George Chuch's Lab in Harvard 17:57 and ending today in Bar-Ilan University in the new Faculty of Life Sciences, 18:01 and I really hope that 18:03 anywhere between a year and five years from now 18:06 we'll be able to use this in humans 18:08 and finally witness the emergence of nanobot society. 18:11 Thank you very much. https://www.digitaltrends.com/cool-tech/nanobots-live-cockroach-thought-control/ https://www.digitaltrends.com/cool-tech/nanobots-live-cockroach-thought-control/ https://www.timesofisrael.com/israeli-scientists-use-nanobots-and-thoughts-to-administer-drugs/ Israeli scientists say they have come up with a way for brain power to control when drugs are released into the body, by using tiny robots made out of DNA to deliver the medication internally. Researchers at the Interdisciplinary Center in Herzliya and Bar-Ilan University in Ramat Gan have built the nanobots to which medication is attached and then are injected into the body. The nanobots have a “gate” that opens or closes — thereby controlling drug release — depending on brain activity. In order to achieve this, the New Scientist magazine said, the researchers developed a computer algorithm that could tell whether a person’s brain was resting or carrying out some form of mental activity, such as math problems. A fluorescent-tinted drug was then added to the nanobots, which were injected into a cockroach placed inside an electromagnetic coil. Israeli scientists say they have come up with a way for brain power to control when drugs are released into the body, by using tiny robots made out of DNA to deliver the medication internally. This coil was then connected to an EEG cap worn by a person asked to perform mental calculations. The computer recognized increased brain activity by the cap wearer, which triggered the “gate” on the nanobots inside the cockroach, releasing the fluorescent drug that was visible as it spread through the insect’s body. The idea is to use the delivery system for people with mental health issues, which are sometimes triggered before sufferers are aware they need medication. By monitoring brain activity, the nanobots could deliver the required preventative drugs automatically, for example before a violent episode of schizophrenia. https://www.newscientist.com/article/2102463-mind-controlled-nanobots-could-release-drugs-inside-your-brain/ The group has built nanorobots out of DNA, forming shell-like shapes that drugs can be tethered to. The bots also have a gate, which has a lock made from iron oxide nanoparticles. The lock opens when heated using electromagnetic energy, exposing the drug to the environment. Because the drug remains tethered to the DNA parcel, a body’s exposure to the drug can be controlled by closing and opening the gate. By examining when fluorescence appeared inside different cockroaches, the team confirmed that this worked. The idea would be to automatically trigger the release of a drug when it is needed. For example, some people don’t always know when they need medication – before a violent episode of schizophrenia, for instance. If an EEG could detect it was coming, it could stimulate the release of a preventative drug. https://www.youtube.com/watch?v=BxJPceCV51g Nanobots Successfully Used on Living Animal for the First Time - IGN News 0:38 to treat human ailments or weaponized 0:40 hijacked by a snake themed terrorist 0:42 organization and then used to destroy 0:43 Paris but I suppose it's only a matter 0:45 of time “This syringe has inside it a thousand billion robots.” https://outraged.substack.com/p/the-emergence-of-nanobot-society?utm_source=cross-post&publication_id=1087020&post_id=143145132&utm_campaign=956088&isFreemail=true&r=1sq9d8&triedRedirect=true&utm_medium=email Follow @zeeemedia Website | X | Instagram | Rumble https://donshafi911.blogspot.com/2024/04/the-emergence-of-nanobot-society.html
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    The emergence of nanobot society
    So, they injected it into the military, police, emergency services.... Now everyone is injected with a device with a "real IP ADDRESS".... Thanks for reading OUTRAGED’s Newsletter! Subscribe for free to receive new posts and support my work. 0:00 Thank you very much. So one word of notice before we begin,
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