Award-Winning Scientists Offer Advice to President Biden
This article is part of the magazine, "The Future of Science In America: The Election Issue," co-published by LeapsMag, the Aspen Institute Science & Society Program, and GOOD.
We invited Nobel Prize, National Medal of Science, and Breakthrough Prize Laureates working in America to offer advice to the next President on how to prioritize science and medicine in the next four years. Almost universally, these 28 letters underscore the importance of government support for basic or fundamental research to fuel long-term solutions to challenges like infectious diseases, climate change, and environmental preservation.
Many of these scientists are immigrants to the United States and emphasize how they moved to this country for its educational and scientific opportunities, which recently have been threatened by changes in visa policies for students and researchers from overseas. Many respondents emphasize the importance of training opportunities for scientists from diverse backgrounds to ensure that America can continue to have one of the strongest, most creative scientific workforces in the world.
Peter Agre, M.D.
2003 Nobel Laureate in Chemistry
David Baker, Ph.D.
2021 Breakthrough Prize in Life Sciences Laureate
Cori Bargmann, Ph.D.
2013 Breakthrough Prize in Life Sciences Laureate
Jacqueline K. Barton, Ph.D.
2010 National Medal of Science Laureate
Barry Barish, Ph.D.
2017 Nobel Laureate in Physics
May Berenbaum, Ph.D.
2012 National Medal of Science Laureate
Martin Chalfie, Ph.D.
2008 Nobel Laureate in Chemistry
Joanne Chory, Ph.D.
2018 Breakthrough Prize in Life Sciences Laureate
Nina Fedoroff, Ph.D.
2006 National Medal of Science Laureate
Andrew Z. Fire, Ph.D.
2006 Nobel Laureate for Physiology or Medicine
Joanna S. Fowler, Ph.D.
2008 National Medal of Science Laureate
Jeffrey Friedman, M.D., Ph.D.
2020 Breakthrough Prize in Life Sciences Laureate
Jerome I. Friedman, Ph.D.
1990 Nobel Laureate in Physics
Elaine Fuchs, Ph.D.
2008 National Medal of Science Laureate
H. Robert Horvitz, Ph.D.
2002 Nobel Laureate in Physiology or Medicine
David Julius, Ph.D.
2020 Breakthrough Prize in Life Sciences Laureate
William G. Kaelin, Jr., M.D.
2019 Nobel Laureate in Physiology or Medicine
Judith P. Klinman, Ph.D.
2012 National Medal of Science Laureate
J. Michael Kosterlitz, Ph.D.
2016 Nobel Laureate in Physics
Adrian R. Krainer, Ph.D.
2019 Breakthrough Prize in Life Sciences Laureate
John C. Mather, Ph.D.
2006 Nobel Laureate in Physics
Geraldine Richmond, Ph.D.
2013 National Medal of Science Laureate
Adam Riess, Ph.D.
2011 Nobel Laureate in Physics
Randy W. Schekman, Ph.D.
2013 Nobel Laureate in Physiology or Medicine
George F. Smoot, Ph.D.
2006 Nobel Laureate in Physics
Thomas C. Südhof, M.D.
2013 Nobel Laureate for Physiology or Medicine
Warren M. Washington, Ph.D.
2009 National Medal of Science Laureate
Carl Wieman, Ph.D.
2001 Nobel Laureate in Physics
Dear Mr. President:
- Bloomberg Distinguished Professor and Director
- Johns Hopkins Malaria Research Institute
- 2003 Nobel Laureate in Chemistry
Peter Agre, M.D.
2003 Nobel Laureate in Chemistry
David Baker, Ph.D.
- Henrietta and Aubrey Davis Endowed Professor in Biochemistry
- University of Washington
- Investigator, Howard Hughes Medical Institute
- 2021 Breakthrough Prize in Life Sciences Laureate
I encourage you most strongly to ramp up support for basic science research in the U.S.! Discoveries can have impact far beyond the original questions being investigated, as highlighted by the recent Nobel prizes for CRISPR/Cas9. In my own research area, investigation of the fundamental principles of protein folding led to our ability to use computers to rapidly design promising vaccine, therapeutic, and diagnostic candidates in the midst of the pandemic. I also encourage you to support work on general pandemic preparedness, as with increasing population density, new pathogen outbreaks are likely to continue, and having effective countermeasures in place would greatly reduce human suffering and economic damage.
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Cori Bargmann, Ph.D.
- Torsten W. Wiesel Professor
- Rockefeller University
- Head of Science, Chan Zuckerberg Initiative
- 2013 Breakthrough Prize in Life Sciences Laureate
Find all the pathogens!
To prevent and manage infectious disease, the next administration should deploy the power of large-scale molecular analysis to build a new, shared infrastructure for public health.
Currently, we identify infectious agents—viruses, bacteria, parasites, fungi—one by one at the local level. Is norovirus causing gastrointestinal distress in preschool children? Does a hospital harbor antibiotic-resistant bacteria like MRSA? Is a nursing home incubating Candida auris, a fungal superbug? We shouldn't be asking these questions one at a time. Instead, deploying large-scale molecular analysis would allow an integrated public health system to monitor all infectious diseases in real time and share the data nationwide.
First, provide DNA sequencing capacity for all local and state public health systems. Rapid, inexpensive sequencing of infectious agents should be routine whenever an outbreak occurs in a workplace, hospital, school, or prison. It can be used to track spread between people, find contaminated environments, and identify sites where a swift intervention is needed. Routine sequencing of infectious agents enables a quick, effective, and targeted public health response.
Second, use molecular methods like PCR and sequencing to track disease-causing viruses, bacteria, parasites, or fungi nationwide. In a science-informed world, we should know exactly what's making us sick. This is not primarily a health-care issue: most of the time putting a name on the organism won't change treatment. It's a public health mission: to identify dangerous infectious agents early, while there's time to act. Most of the time a respiratory infection (for example) will harbor a common rhinovirus or influenza virus, but sometimes those will not be present. In those cases, the advanced DNA sequencing method called metagenomics can identify unexpected and even previously unknown organisms, like SARS-CoV-2 in 2019. By monitoring all infectious agents systematically, we can be aware of their prevalence, spread, and virulence, and we can be prepared before the next pandemic occurs.
Finally, we need a national public health data infrastructure to share all of this information—the sequence of the infectious agent, the location at which it was found, and the disease that it caused. A common, shared data system will let infectious disease experts find and stop the next outbreak that endangers us all.
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Jacqueline K. Barton, Ph.D.
- John G. Kirkwood and Arthur A. Noyes Professor of Chemistry
- California Institute of Technology
- 2010 National Medal of Science Laureate
A critically important resource in America today is our scientific enterprise. We bring together the best and brightest and create new technologies, new medicines, new ways of living. Our scientific enterprise is critical to the health and growth of our economy, whether considering our energy industry, biotechnology, pharma, or computer technologies. And as we consider the great global challenges before us, climate change and global health, here, too, science holds the answers.
For more than fifty years, the U.S. has been the global center of scientific excellence. Our universities have provided the best in the world for research and exploration. And in contrast to universities elsewhere, our universities provide a structure that nurtures change. Assistant professors can start up their own labs, raise funds to support their new experiments, and discover quickly new ideas as to how the world works. Our industrial enterprise supports this same entrepreneurial approach to explore and develop. Small start-ups are incubators for transformative technologies. Moreover, collaboration, across disciplines and between industry and academe, allows a mixing of new ideas. And with federal support, both academic and industrial research can quickly yield new technologies and economic growth.
Science in the U.S. is therefore a unique and critical strength. Yet science is under attack. We have been able to attract the very best from across the globe to train here, to learn from the best and spread the word. This cross fertilization will not occur going forward if we squelch immigration and if we interfere with international collaboration. Moreover, research in our universities requires federal funding. Without support for basic research, where we are just learning the questions, let alone the answers, we can only make progress incrementally, and we cannot discover and develop new, transformative technologies.
U.S. science is a jewel. It needs your support.
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Barry Barish, Ph.D.
- Linde Professor of Physics, Emeritus
- California Institute of Technology
- 2017 Nobel Laureate in Physics
I am writing to stress to the new administration that you will soon be faced with crucial policy issues that require good scientific input in formulating policy. At the top of list must be providing the leadership that will bring us out of the pandemic. In that regard, formulating consistent policy on social distancing, testing and tracing, and vaccines and distribution are all complex problems that need the best scientific inputs and advice.
A second issue of great importance to the world is nuclear proliferation. We must make viable agreements with other countries having nuclear capability, as well as agreements for Iran or other countries that could develop capability. Renewing the U.S. nuclear stockpile is a very complex domestic issue that again needs the best scientific guidance.
A third crucial issue is climate change. We have had unprecedented heat, melting ice caps, forest fires, polluted cities, etc. in the recent past. We must develop forward-looking and workable policy, working with the rest of the world and using the best advice of scientists.
Of course, there will be other major issues, where the advice of scientists will be crucial to decision making and formulating policies. The U.S. is a wonderful place to be a scientist and to do science. Please take advantage of our skills and knowledge as you face the challenges of the coming years.
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May Berenbaum, Ph.D.
- Professor and Head of Entomology
- University of Illinois at Urbana–Champaign
- 2012 National Medal of Science Laureate
Congratulations on your election, during a moment in history when the health and well-being not only of the human population but also the biodiversity of the planet will almost certainly be affected by decisions you make while you're in office. For this reason, please depend on the knowledge that the scientific community can offer to inform your decision-making. In 1863, your predecessor Abraham Lincoln, recognizing the need for independent, objective advice for a nation embroiled in a civil war, created the National Academy of Sciences as a mechanism to obtain such advice. Scientists answered the call, advising the federal government on many scientific and technological issues, including consistency across weights and measures and accuracy of magnetic compass readings on iron-hulled warships. For over 150 years, the federal government has benefited from making decisions based on the best independent, objective scientific evidence available from a rapidly expanding community of scientists. Keep in mind, though, that scientific research comprises not just the knowledge produced, but also the process through which it's obtained, a process designed to be iterative, self-correcting, and objective. It's true that scientific views can change, sometimes rapidly—but such change is intrinsic to the process, as long as changes come not from whimsy or political stratagems, but from the collective accumulation of well-designed, unbiased, repeatable studies, particularly when new fields or unprecedented problems arise. The utility of relying on scientific advice in policy-making has been abundantly demonstrated, as have the often tragic consequences of rejecting a strong scientific consensus to suit political agendas (think of the deaths of millions resulting from the Soviet-era implementation of Trofim Lysenko's politically tinged agronomic theories). Like it or not, your legacy will depend on the extent to which you embrace both the process and the products of the scientific enterprise.
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Martin Chalfie, Ph.D.
- University Professor of Biological Sciences
- Columbia University
- 2008 Nobel Laureate in Chemistry
I have never been prouder of the scientific enterprise than during the COVID-19 pandemic. Scientists, healthcare professionals, and others are devoting their knowledge and skills and often redirecting their research to solve the problems of SARS-CoV-2 and the destruction it is causing. These scientific efforts would not have been possible without our previous understanding of basic biological processes. This understanding is what allows people to sequence genomes, determine protein structures, develop novel ways of detecting and interfering with the virus, and understand how viruses take over cells and how the body responds to infection. As part of preparedness for the next health crisis, we must continue to build our scientific knowledge, because we do not know what we will need to know.
The astonishing response of the scientific community to this pandemic shows how much science can contribute and what it can accomplish. The question for the future is: how can we maintain our momentum? We can do so, first, by increasing the support for both fundamental and applied research, and we need to take a broad view of what to support. I received my Nobel Prize for my development of a method to watch cells work that was based on a jellyfish protein. Tens of thousands of research projects have utilized this protein to expand our understanding of basic biology and to study human disease. Second, we need to put more resources into educating future scientists. We must support and expand STEM programs in elementary and high schools, research opportunities for college students, and training programs for graduate students and postdoctoral researchers. And we must provide opportunities to increase diversity within the sciences, including encouraging and supporting the entry of underrepresented minorities and first-generation, low-income college students into careers in the sciences. Third, we should ensure that governmental decisions and administrative policies are based on strong scientific consensus and are not subjected to anti-science political pressure. We have a long tradition of the sciences and scientists helping our country. Indeed, in 1863 Abraham Lincoln helped found the U.S. National Academy of Sciences specifically to provide unbiased advice to the nation. To this day, the National Academies of Sciences, Engineering, and Medicine continue to do so. Their advice and that of the many conscientious and concerned scientists in our country should be heeded if we want to preserve our environment, improve the health of our population, and continue to reap the benefits that Science provides.
Finally, Mr. President, you have the important role of encouraging scientific excellence and recognizing scientific accomplishments, to spur others to make the discoveries so necessary for our future. For many years, the U.S. winners of the Nobel Prize have been invited to the White House and met with the President before going on to Sweden. Regrettably, these events have not occurred in the last four years. I encourage you to reinstate this very welcomed tradition. These meetings at the White House are the one time that the country, as represented by the President, thanks the Laureates for their achievements.
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Joanne Chory, Ph.D.
- Professor and Director of the Plant Molecular and Cellular Biology Laboratory
- Howard H. and Maryam R. Newman Chair in Plant Biology
- Salk Institute for Biological Studies
- Investigator, Howard Hughes Medical Institute
- 2018 Breakthrough Prize in Life Sciences Laureate
Humanity is facing unprecedented challenges of a simultaneous and urgent nature rarely before seen in our history. A pandemic infection has brought the world's economy to its knees. Authoritarian assaults on democracy are increasing mistrust in governments and institutions. Global climate change is destabilizing lives and livelihoods. Now, more than ever, Americans and our allies are looking to the U.S. to lead the world through these monumental challenges.
Science and scholarship are the most powerful tools by which we may understand these challenges and how best to address them. The pursuit of truth, which is the bedrock of science and the linchpin of functioning democracy, must be our top priority for the next four years.
I urge you to commit to making evidence-based policy decisions, and to making science and foundational research your compass to help guide the world to a healthier, more stable future. It is not hyperbole to say humanity is at a crossroads, and that we face existential threats in the form of climate change and distrust of science.
Jonas Salk, who developed the first polio vaccine in response to the polio pandemics of the early 20th century before going on to found the Salk Institute for Biological Studies, once said, "Our greatest responsibility is to be good ancestors."
We owe future generations a healthy, habitable world.
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Nina Fedoroff, Ph.D.
- Emeritus Evan Pugh Professor, Pennsylvania State University
- Senior Science Advisor, OFW Law
- 2006 National Medal of Science Laureate
I wish to draw your attention to a thorny issue whose impact on America will steadily grow in coming years as climate warming becomes ever more destructive to our food supply. I speak of the growing gap between what science can do to help agriculture and what's actually being done for farmers.
Spectacular advances in genetic knowledge and methods over the past half century have made it possible to adapt agriculture to a warming climate even while increasing agriculture's productivity and sustainability and reducing its environmental footprint.
But over the same half-century, public opinion has been systematically turned against the use of such modern methods of genetic modification (GM) by the organic food industry and public interest groups who have successfully vilified GM and created fear to increase their market share and raise money. A majority of consumers is now convinced that GM foods are bad or dangerous.
But the science says that GM foods are entirely safe for consumption by both people and animals. GM crops have now been grown commercially for a quarter of a century, boosting farmer incomes around the world, even while reducing pesticide use and greenhouse gas emissions. Unfortunately, current regulatory policy has all but precluded the rapid development of GM animals.
It is essential that the upcoming administration listen to the science and direct efforts toward relaxing excess regulatory constraints on GM. But more than that, it is essential that the government boldly promote GM approaches in agriculture to overcome the widespread disinformation promulgated by anti-GM groups. Public acceptance of GM foods is critical to their success in the marketplace.
Government investment can encourage private and public sector scientists to develop badly needed agricultural organisms biologically protected from the pathogens, pests, and stresses of the warming climate. But unequivocal government support of GM foods will be crucial to unleashing the scale of investment needed for farmers to stay ahead of the warming climate's growing downward pressure on their ability to feed the nation.
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Andrew Z. Fire, Ph.D.
- Professor of Pathology and Genetics
- Stanford University School of Medicine
- 2006 Nobel Laureate for Physiology or Medicine
The next President of the United States can make the world a better place
But not alone. He or she will need to
Communicate with Americans
To know what is working in America
To know what needs to be fixed
To convey what people can do for their communities, their country, and their world
Communicate with scientists and experts
To understand what we have learned and what we can do
To understand the uncertainties in all science and technology
To understand what resources are needed to find and implement solutions
Engage beyond our borders
Because we share a fragile planet
The U.S. scientific community can make the world a better place
But not alone. We will need to
Listen to communities across the US to know where knowledge and solutions are needed.
Carefully and clearly convey facts and consequences in areas where we know.
Debate and unashamedly convey uncertainties and areas where we don't know.
Continue to engage with other scientists here and elsewhere to develop new approaches and understanding
Train a new generation of scientists to address current and future challenges
The American People can make the world a better place
But not alone. We will need to
Convey to leaders and scientists what is working and what needs to be fixed.
Educate ourselves in a broad range of science to make rational decisions
Participate in dialog toward designing solutions that improve life for everyone
Work together and listen with each other and with the world.
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Joanna S. Fowler, Ph.D.
- Senior Scientist Emeritus
- Brookhaven National Laboratory
- 2008 National Medal of Science Laureate
Throughout our history, the United States has inspired and attracted students and scientists from around the world. They are typically motivated by the freedom to do creative work in our universities and research institutions unfettered by political interference. Immigrant scientists now make up 25% of our science and technology workforce and have contributed enormously to our economic growth and to the health and well-being of all Americans. They have also enhanced our prestige internationally, with immigrants to the United States winning 35% of the Nobel Prizes awarded to Americans in physics, chemistry, and medicine since 1901 and pointing to America's vision in embracing talent from around the world.
Unfortunately, recent anti-immigrant rhetoric and policies such as the travel ban and a recently issued proclamation that temporarily restricts many types of legal immigration (including students and scientists) have led many international students and scientists to reconsider building their careers in the United States.
It is urgent that our next President reassures the international community and our international students and scientists that (1) the United States will be an unwavering voice for bringing the power of science to the solution of global problems including the COVID-19 pandemic and climate change; (2) our policies and actions will be informed by science; and (3) international students and scientists who choose to come to the United States (as well as those already in our country) will be welcome and protected from political interference irrespective of their race or their country of origin.
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Jeffrey Friedman, M.D., Ph.D.
- Marilyn M. Simpson Professor
- Rockefeller University
- 2020 Breakthrough Prize in Life Sciences Laureate
The COVID-19 pandemic has reaffirmed the critical role that science plays in peoples' lives. Stunning advances over the last 75 years made it possible to identify the infectious agent, develop robust new diagnostics, implement increasingly effective treatments (with more to come), and develop and test new vaccines all with startling rapidity. Compare this to the response to the Spanish Flu epidemic a century ago when it took years before the viral etiology was even confirmed. This remarkable progress provides a powerful reminder of why generous funding of science is crucial.
It is important to remember, however, that this stunning progress was made possible not just by scientists applying an ever-expanding body of knowledge to the current crisis but also by the innumerable scientists who laid the foundation that underpins that knowledge. This includes the scientists who, by following their own curiosity, showed that genes were made of DNA, defined how DNA after being copied into RNA provides the blueprint for making proteins in cells, and discovered that the genes in some viruses such as COVID are made of RNA rather than DNA. Still other scientists developed methods for isolating and studying genes and their functions in the laboratory.
In many cases, these enabling technologies depended on advances that had no obvious applications at the time, such as the discovery of restriction enzymes, proteins which cut DNA in specific places. This research was motivated not by practical considerations but by the curiosity of Nobel Prize winners Dan Nathans and Ham Smith who wanted to understand how bacteria protect themselves from the viruses (known as bacteriophage) that infect them. It was this advance, and many others like it, that helped to usher in the era of modern science that empowered the remarkable response to the current pandemic. So as we make the case to increase the funding of science, we need to ensure that the investments include not only the application of our current knowledge to our immediate needs, but also include investments in the curiosity-driven research that makes those applications possible.
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Jerome I. Friedman, Ph.D.
- Institute Professor and Professor of Physics, Emeritus
- Massachusetts Institute of Technology
- 1990 Nobel Laureate in Physics
Investment in science and technology is an absolute necessity to develop the innovations that are needed to mitigate and reverse damage to the environment, protect our health, ensure future improvements in our standard of living, and stimulate economic growth. Applied research and invention play extremely important roles in innovation, but it should be emphasized that basic research has in general produced the major conceptual breakthroughs that have resulted in radically new technologies. For example, at a time in the past, electricity and magnetism were just laboratory curiosities. Now they are integral to the technologies of modern society. The study of the structure of the atom has led to the digital world in which we now live, and understanding the structure of DNA has revolutionized medicine. Such breakthroughs are needed to address and reduce the serious problems that afflict our world. To achieve our goals, we need to expand our base of fundamental knowledge to produce the new technologies that we desperately need. This will require a substantial increase in investment by the Federal Government in all types of research, and, because industry does not support basic research as it did in the past, the funding of basic research is especially dependent on the Federal Government. Funding for research is not a cost; it is an investment that will pay back rich dividends in the future, as it has done in the past.
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Elaine Fuchs, Ph.D.
- Professor of Mammalian Cell Biology and Development
- Rockefeller University
- Investigator, Howard Hughes Medical Institute
- 2008 National Medal of Science Laureate
The COVID-19 pandemic exemplifies why our nation needs an effective, rapid response team of scientific experts to help contain the spread of infectious pathogens. In times of a pandemic, America must also mobilize government funds to enable another cadre of scientists to identify ways to disarm the microbes. However, such efforts will only succeed when the existing basic science foundation is strong. Our nation has long been the world's leader in biomedical research, and our accrued knowledge of viruses, their ability to infect epithelial cells, and the inflammatory responses that they elicit, gave our scientists the jumpstart necessary to rapidly develop vaccines and neutralizing antibodies against the SARS-CoV2 virus. With the ever-increasing barrage of unexpected health challenges that our changing climate imposes upon us, America must continue to strengthen and broaden our basic science foundation and to provide the training and support to prepare the next generations of scientists to participate in this endeavor.
As a basic scientist working at the interface between science and medicine, I've witnessed numerous examples in my career that illustrate how important basic science is for advancing new and improved treatments for human conditions. For example, mutations in a nuclear modification first described in algae causes a lethal brain cancer in children. Additionally, current cancer treatments often make patients sick because they harm both healthy and cancerous tissue, and the cancers often relapse after treatment. Determining which cancer cells are responsible for relapse and how they differ from the healthy stem cells that fuel normal tissue growth and repair, could lead to blueprints for designing therapeutics that effectively kill these resilient cancerous cells without harming the normal tissue.
Our government's long-standing support for basic science makes it easier than ever before to solve the scientific puzzles needed to disarm threats to our health and fitness. However, our bodies are continually exposed to new stresses, new microbes, new pollution. By keeping a high pace of basic science and discovery, and inspiring and training the best and brightest young minds from diverse backgrounds, we will stand the best chance of being prepared for whatever nature has in store for us in the future.
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H. Robert Horvitz, Ph.D.
- David H. Koch Professor in Biology
- Massachusetts Institute of Technology
- Investigator, Howard Hughes Medical Institute
- 2002 Nobel Laureate in Physiology or Medicine
While resoundingly validating the investment in biomedical research that has been made over the past decades, the response of our nation to the COVID-19 pandemic has also cast a harsh light on us, including on aspects of our national scientific and biomedical enterprise, revealing gaps in understanding as well as in the efficient application and deployment of available knowledge and technology. As we enter a new Presidential term, American science needs to draw on its COVID-19 experiences, both the innovative and the painful, to face a changing world. Scientists have much to learn in the coming months from COVID-19 about emerging health challenges, about safeguarding our nation's physical health, and about sustaining American leadership in biomedical research. By leading our country over the next four years, you will have the opportunity to impact the health and safety of generations of Americans.
Past federal investment in biomedical research has been extraordinarily productive. Largely through research conducted or supported by the National Institutes of Health (NIH), the United States has led the way in pioneering crucial diagnostic procedures, novel treatments, life-changing cures, and innovative prevention strategies for a broad variety of disorders, including cancer and heart disease. This core of evidence-based science powered our response to the pandemic as NIH-supported scientists unraveled the basic biology of the SARS-CoV2 virus, drove unprecedentedly rapid diagnostic and vaccine development, and sharpened treatment protocols. Maintaining—and bolstering—that core is critical to our national health, economy, and security.
The NIH must now reaffirm its commitment to fundamental and bold biomedical research. That is why, along with 13 of my colleagues from across the nation, I am preparing a report that seeks to advise the next Administration about how best to capitalize on the enormous promise of 21st-century biology. Our NIH Vision and Pathways report will provide a perspective on and vision for biomedical research and health, as well as describe specific proposed changes that will focus and strengthen NIH to achieve that vision. Our suggestions encompass four areas concerning NIH structure and operations:
- Research: Driving Innovation and Discovery
- Training: Preparing the Next Generation
- Administration and Operations: Maximizing Opportunity
- Appointment of the NIH Director
Your administration can seize this opportunity to shape the NIH, a crown jewel of the federal government, in ways that will make it more impactful and efficient in improving the health and well-being of Americans and will ensure the leadership position of our country in the field of biomedicine for decades to come.
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David Julius, Ph.D.
- Professor and Chair of Physiology
- University of California, San Francisco
- 2020 Breakthrough Prize in Life Sciences Laureate
A couple of Thanksgiving dinners ago, I got into a discussion with a relative who disparaged climate change as a hoax. I pointed out that he was the same person who prided our country for its legendary technical and scientific accomplishments, such as building the Panama Canal, landing on the moon, or conquering polio. Honestly, I was amazed at this contradiction: how can someone believe so fervently in the idea of "American Exceptionalism" yet now devalue and discount the advice of our scientific and engineering community? Can we really have it both ways?
Perhaps more than anything else, the next President of the United States must take on the goal of repairing and reestablishing respect for education, knowledge, professional expertise, and fact-based decision making. Otherwise, the foundation of our nation's legendary scientific and engineering excellence shall crumble. Scientists and engineers hail from all corners of our country and world—urban and rural, wealthy and poor, etc. What unites us is a passion for curiosity, discovery, creativity, and problem solving. Our next leader must challenge the canard that scientists constitute a class of intellectual and cultural elites separate from the rest of society.
With regard to biomedical research, I remain a believer in the power of basic, curiosity-driven research. Time and again, we find that transformational discoveries in science and medicine come from unexpected or unanticipated avenues of inquiry (think CRISPR gene-editing technology, discovery of innate immune pathways in flies, or snake venoms as the inspiration for anti-hypertensive drugs). Certainly there are moments—such as the current COVID-19 pandemic—to mobilize goal-directed efforts, but we must not forsake bedrock basic, curiosity-driven research programs, which will continue to yield discoveries that move biomedical research and technology forward so we can tackle known diseases or the next unforeseen global health challenge.
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William G. Kaelin, Jr., M.D.
- Sidney Farber Professor of Medicine
- Dana-Farber Cancer Institute and Brigham and Women's Hospital
- Harvard Medical School
- Investigator, Howard Hughes Medical Institute
- 2019 Nobel Laureate in Physiology or Medicine
Winning the Nobel Prize last year has caused me to reflect on some of the ways government policies influenced my career. I was born in 1957, about six weeks after the Sputnik launch. Science and engineering were celebrated in the United States during my childhood, partly because of the ensuing space race and the Cold War. Bipartisan support for science education and scientific research was like mom and apple pie for most of my early years. I had the opportunity in 1974 to attend a National Science Foundation Student Science Training Program in Computers and Mathematics that absolutely transformed me as a student because it was the first time I was surrounded by students who were almost uniformly smarter than I was and the first time I encountered a curriculum that I found truly challenging and interesting. During my clinical training to become a doctor, I routinely encountered brilliant physician-scientists, many of whom had trained at the National Institutes of Health (NIH) during the Vietnam War era (the so-called "Yellow Berets"). When I pivoted from clinical medicine to laboratory research in the 1980s, my development was supported by NIH training and research grants. In 1994, the NIH budget was doubled with bipartisan support, just as my funding was growing perilous. It enabled me to pursue the work that led to my Nobel Prize.
Sadly, federal support for science has been flat for many years now. What is worse, some politicians, to accomplish their political agendas, use language that disparages science and scientists and act as though knowledge and truth are subjective. Adding further insult, the economic disruptions from COVID-19 are likely to decrease the hiring of newly minted scientists by academia. We run the risk of losing the next generation of researchers if we don't immediately take steps to convince young people that seeking truth and knowledge is a noble endeavor and that their careers will be valued and supported. I would pay particular attention to the support of basic, fundamental research. A formula that served us well dating back to the middle of the last century was to have the federal government support basic science and to have the private sector decide when the knowledge it generated was ripe for application. Basic science is the most vulnerable part of the entire research enterprise, partly because its timelines and deliverables are often unknowable (and hence shunned by investors), and yet it is basic science that over and over leads to the truly transformative discoveries that change the way we think about the world and improve our lives. It is also the formula that explains why Americans have won a disproportionate number of Nobel Prizes over the last century. This formula has not escaped the notice of some of our competitors. It would be tragic if we ourselves forgot it.
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Judith P. Klinman, Ph.D.
- Professor of the Graduate School and Chancellor's Professor of Chemistry
- University of California, Berkeley
- 2012 National Medal of Science Laureate
During the 20th and early 21st centuries, American science experienced a "Golden Age." While this may have been taken for granted by many of us in the scientific community, it is impossible to ignore its decline during the last four years. The neglect and disengagement of government support for key agencies, and science in general, have been devastating on many levels, the most immediate being the excessive and unnecessary number of deaths from COVID-19. The current pandemic is unlikely to be a standalone event and is connected to the ongoing loss of natural habitats within the larger "Climate Change" crisis.
The divestment of government from knowledge-based engagement in global warming has become both immoral and irresponsible, and the time for remediation is rapidly running out. I believe it is imperative that the next administration work quickly on multiple fronts that include a complete and rapid refocus on sustainable energy, a continuing investment in research toward carbon capture, and the pursuit of best practices that will support a new infrastructure that enables the necessary behavioral changes of all citizens. Unless we work quickly and effectively, the younger generation that includes our children (both biological and academic) are, I fear, inheriting an uninhabitable Planet Earth.
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J. Michael Kosterlitz, Ph.D.
- Harrison E. Farnsworth Professor of Physics
- Brown University
- 2016 Nobel Laureate in Physics
There are two parts to the development of a device like the cell phone. First, you need the theoretical scientists who pursue various avenues of knowledge out of curiosity. Then, you need the practical scientists who today are called engineers or, in medicine, doctors. They take theoretical knowledge developed by theorists, play with it, and, with a lot of luck, develop some useful device based on the existing theoretical understanding. It is important to realize that both parts are needed. The basic theoretical understanding comes first followed by the development of some practical device which is not possible without the underlying theory. Both types of science are necessary for a final outcome. To an average person, who neither knows nor cares about science, only the engineering part seems important because the connection is more immediate. However, for the successful development of some useful device, both are usually equally important. Without the basic knowledge developed by the scientist doing apparently useless curiosity-driven research, the basic understanding for the practical development would not be there, so the device would not be built. Both the theoretical and the practical skills are needed and both should be adequately funded. One cannot exist without the other, and results from one feed into the other.
For the next four years of your presidency, one of the most important considerations is the health of the population. As we have all seen during the coronavirus pandemic, the whole country suffers when the population does not have adequate access to effective health care. This should be central to your presidency because the economy of the country depends critically on a healthy population. The key to a vibrant economy is adequate government funding of the whole scientific effort in as many branches as possible. Of course, there will be some inevitable wastage but, to keep America competitive, funding by government and supplemented by private agencies of all the real sciences is vital. I do not have the conceit to make specific suggestions about which branch of science or engineering is more important than another. They all deserve some funding until such time that they are proved to be useless or wrong like the old discredited phlogiston theory of burning.
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Adrian R. Krainer, Ph.D.
- St. Giles Foundation Professor
- Cold Spring Harbor Laboratory
- 2019 Breakthrough Prize in Life Sciences Laureate
Congratulations on your election. The next four years will pose major challenges, but we have the ability to address them effectively. I arrived in this country as a foreign student four decades ago, to begin my college education. I chose to study in the U.S. because I knew it was the top place in the world for biomedical research, and I was fortunate to have this opportunity. After graduate school, I accepted a job offer in academic research, I became a resident and then a citizen, and I never looked back. Together with my trainees—who came from the U.S. and 20 other countries—and our collaborators, we succeeded in developing an effective treatment for a devastating genetic disease, helping thousands of patients around the world live longer and more productive lives, and creating many jobs in the process. I know from this experience that government funding of basic research, e.g., through the NIH and NSF, plays an incredibly important role. This public investment ultimately improves the lives for all humanity, and along the way it results in job creation and attracts top talent from the U.S. and abroad. Other countries, notably China, have emulated us by making massive investments in education, science, technology, and infrastructure, with increasingly impressive results. To remain at the forefront, we must increase or at least sustain the pace of public investment in these key areas. Our institutions of higher learning continue to be a magnet for top talent from around the world. Some of these visitors eventually choose to stay, and we should welcome them; others will return home but maintain connections with, and good will toward, America. Science is a global endeavor, and challenges such as human diseases, pandemics, and climate change know no international boundaries. The U.S. must continue to lead the world in the search for effective solutions to these vexing problems.
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John C. Mather, Ph.D.
- 2006 Nobel Laureate in Physics
We need to upgrade the EPA into the National Environmental Defense Agency (NEDA) with a charter to protect all Americans as a matter of national security, equal in importance to the Department of Defense and the Department of Homeland Security. Failure to address climate change would be a worldwide and permanent catastrophe, so the NEDA would take all necessary actions including measurement, analysis, fundamental research, technology development and commercialization, disaster planning, infrastructure support for mitigation, and international leadership. Congress should support this work because it means jobs for millions of Americans, and taxpayers should support it because it preserves their wealth. The health and prosperity of Americans for the next four years, and on for at least the next thousand, depend now and always on noticing what's happening and responding accordingly. But we've been caught unprepared for multiple disasters, and more are coming. Some could be mitigated with planning and organization at all levels from international and federal to personal, and some need inventions and discoveries we don't yet have. Though the time scale is uncertain, the sea is rising every year, with no end in sight. When the sea rises six feet, over ten million Americans will lose their homes and land. When the tropics become unbearably hot, more millions will migrate to America. If a foreign power were taking our land, we would act. If a foreign power were setting the American West ablaze, we would act. If our farms were dying, we would act. Shall we not act? We need responsibility, authority, and a plan. It might sound impossible, but so were electricity, moon rockets, and the internet not long ago. We can do this, and you as President can make it happen.
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Regenerative medicine has come a long way, baby
The field of regenerative medicine had a shaky start. In 2002, when news spread about the first cloned animal, Dolly the sheep, a raucous debate ensued. Scary headlines and organized opposition groups put pressure on government leaders, who responded by tightening restrictions on this type of research.
Fast forward to today, and regenerative medicine, which focuses on making unhealthy tissues and organs healthy again, is rewriting the code to healing many disorders, though it’s still young enough to be considered nascent. What started as one of the most controversial areas in medicine is now promising to transform it.
Progress in the lab has addressed previous concerns. Back in the early 2000s, some of the most fervent controversy centered around somatic cell nuclear transfer (SCNT), the process used by scientists to produce Dolly. There was fear that this technique could be used in humans, with possibly adverse effects, considering the many medical problems of the animals who had been cloned.
But today, scientists have discovered better approaches with fewer risks. Pioneers in the field are embracing new possibilities for cellular reprogramming, 3D organ printing, AI collaboration, and even growing organs in space. It could bring a new era of personalized medicine for longer, healthier lives - while potentially sparking new controversies.
Engineering tissues from amniotic fluids
Work in regenerative medicine seeks to reverse damage to organs and tissues by culling, modifying and replacing cells in the human body. Scientists in this field reach deep into the mechanisms of diseases and the breakdowns of cells, the little workhorses that perform all life-giving processes. If cells can’t do their jobs, they take whole organs and systems down with them. Regenerative medicine seeks to harness the power of healthy cells derived from stem cells to do the work that can literally restore patients to a state of health—by giving them healthy, functioning tissues and organs.
Modern-day regenerative medicine takes its origin from the 1998 isolation of human embryonic stem cells, first achieved by John Gearhart at Johns Hopkins University. Gearhart isolated the pluripotent cells that can differentiate into virtually every kind of cell in the human body. There was a raging controversy about the use of these cells in research because at that time they came exclusively from early-stage embryos or fetal tissue.
Back then, the highly controversial SCNT cells were the only way to produce genetically matched stem cells to treat patients. Since then, the picture has changed radically because other sources of highly versatile stem cells have been developed. Today, scientists can derive stem cells from amniotic fluid or reprogram patients’ skin cells back to an immature state, so they can differentiate into whatever types of cells the patient needs.
In the context of medical history, the field of regenerative medicine is progressing at a dizzying speed. But for those living with aggressive or chronic illnesses, it can seem that the wheels of medical progress grind slowly.
The ethical debate has been dialed back and, in the last few decades, the field has produced important innovations, spurring the development of whole new FDA processes and categories, says Anthony Atala, a bioengineer and director of the Wake Forest Institute for Regenerative Medicine. Atala and a large team of researchers have pioneered many of the first applications of 3D printed tissues and organs using cells developed from patients or those obtained from amniotic fluid or placentas.
His lab, considered to be the largest devoted to translational regenerative medicine, is currently working with 40 different engineered human tissues. Sixteen of them have been transplanted into patients. That includes skin, bladders, urethras, muscles, kidneys and vaginal organs, to name just a few.
These achievements are made possible by converging disciplines and technologies, such as cell therapies, bioengineering, gene editing, nanotechnology and 3D printing, to create living tissues and organs for human transplants. Atala is currently overseeing clinical trials to test the safety of tissues and organs engineered in the Wake Forest lab, a significant step toward FDA approval.
In the context of medical history, the field of regenerative medicine is progressing at a dizzying speed. But for those living with aggressive or chronic illnesses, it can seem that the wheels of medical progress grind slowly.
“It’s never fast enough,” Atala says. “We want to get new treatments into the clinic faster, but the reality is that you have to dot all your i’s and cross all your t’s—and rightly so, for the sake of patient safety. People want predictions, but you can never predict how much work it will take to go from conceptualization to utilization.”
As a surgeon, he also treats patients and is able to follow transplant recipients. “At the end of the day, the goal is to get these technologies into patients, and working with the patients is a very rewarding experience,” he says. Will the 3D printed organs ever outrun the shortage of donated organs? “That’s the hope,” Atala says, “but this technology won’t eliminate the need for them in our lifetime.”
New methods are out of this world
Jeanne Loring, another pioneer in the field and director of the Center for Regenerative Medicine at Scripps Research Institute in San Diego, says that investment in regenerative medicine is not only paying off, but is leading to truly personalized medicine, one of the holy grails of modern science.
This is because a patient’s own skin cells can be reprogrammed to become replacements for various malfunctioning cells causing incurable diseases, such as diabetes, heart disease, macular degeneration and Parkinson’s. If the cells are obtained from a source other than the patient, they can be rejected by the immune system. This means that patients need lifelong immunosuppression, which isn’t ideal. “With Covid,” says Loring, “I became acutely aware of the dangers of immunosuppression.” Using the patient’s own cells eliminates that problem.
Microgravity conditions make it easier for the cells to form three-dimensional structures, which could more easily lead to the growing of whole organs. In fact, Loring's own cells have been sent to the ISS for study.
Loring has a special interest in neurons, or brain cells that can be developed by manipulating cells found in the skin. She is looking to eventually treat Parkinson’s disease using them. The manipulated cells produce dopamine, the critical hormone or neurotransmitter lacking in the brains of patients. A company she founded plans to start a Phase I clinical trial using cell therapies for Parkinson’s soon, she says.
This is the culmination of many years of basic research on her part, some of it on her own cells. In 2007, Loring had her own cells reprogrammed, so there’s a cell line that carries her DNA. “They’re just like embryonic stem cells, but personal,” she said.
Loring has another special interest—sending immature cells into space to be studied at the International Space Station. There, microgravity conditions make it easier for the cells to form three-dimensional structures, which could more easily lead to the growing of whole organs. In fact, her own cells have been sent to the ISS for study. “My colleagues and I have completed four missions at the space station,” she says. “The last cells came down last August. They were my own cells reprogrammed into pluripotent cells in 2009. No one else can say that,” she adds.
Future controversies and tipping points
Although the original SCNT debate has calmed down, more controversies may arise, Loring thinks.
One of them could concern growing synthetic embryos. The embryos are ultimately derived from embryonic stem cells, and it’s not clear to what stage these embryos can or will be grown in an artificial uterus—another recent invention. The science, so far done only in animals, is still new and has not been widely publicized but, eventually, “People will notice the production of synthetic embryos and growing them in an artificial uterus,” Loring says. It’s likely to incite many of the same reactions as the use of embryonic stem cells.
Bernard Siegel, the founder and director of the Regenerative Medicine Foundation and executive director of the newly formed Healthspan Action Coalition (HSAC), believes that stem cell science is rapidly approaching tipping point and changing all of medical science. (For disclosure, I do consulting work for HSAC). Siegel says that regenerative medicine has become a new pillar of medicine that has recently been fast-tracked by new technology.
Artificial intelligence is speeding up discoveries and the convergence of key disciplines, as demonstrated in Atala’s lab, which is creating complex new medical products that replace the body’s natural parts. Just as importantly, those parts are genetically matched and pose no risk of rejection.
These new technologies must be regulated, which can be a challenge, Siegel notes. “Cell therapies represent a challenge to the existing regulatory structure, including payment, reimbursement and infrastructure issues that 20 years ago, didn’t exist.” Now the FDA and other agencies are faced with this revolution, and they’re just beginning to adapt.
Siegel cited the 2021 FDA Modernization Act as a major step. The Act allows drug developers to use alternatives to animal testing in investigating the safety and efficacy of new compounds, loosening the agency’s requirement for extensive animal testing before a new drug can move into clinical trials. The Act is a recognition of the profound effect that cultured human cells are having on research. Being able to test drugs using actual human cells promises to be far safer and more accurate in predicting how they will act in the human body, and could accelerate drug development.
Siegel, a longtime veteran and founding father of several health advocacy organizations, believes this work helped bring cell therapies to people sooner rather than later. His new focus, through the HSAC, is to leverage regenerative medicine into extending not just the lifespan but the worldwide human healthspan, the period of life lived with health and vigor. “When you look at the HSAC as a tree,” asks Siegel, “what are the roots of that tree? Stem cell science and the huge ecosystem it has created.” The study of human aging is another root to the tree that has potential to lengthen healthspans.
The revolutionary science underlying the extension of the healthspan needs to be available to the whole world, Siegel says. “We need to take all these roots and come up with a way to improve the life of all mankind,” he says. “Everyone should be able to take advantage of this promising new world.”
Forty years ago, Joy Milne, a nurse from Perth, Scotland, noticed a musky odor coming from her husband, Les. At first, Milne thought the smell was a result of bad hygiene and badgered her husband to take longer showers. But when the smell persisted, Milne learned to live with it, not wanting to hurt her husband's feelings.
Twelve years after she first noticed the "woodsy" smell, Les was diagnosed at the age of 44 with Parkinson's Disease, a neurodegenerative condition characterized by lack of dopamine production and loss of movement. Parkinson's Disease currently affects more than 10 million people worldwide.
Milne spent the next several years believing the strange smell was exclusive to her husband. But to her surprise, at a local support group meeting in 2012, she caught the familiar scent once again, hanging over the group like a cloud. Stunned, Milne started to wonder if the smell was the result of Parkinson's Disease itself.
Milne's discovery led her to Dr. Tilo Kunath, a neurobiologist at the Centre for Regenerative Medicine at the University of Edinburgh. Together, Milne, Kunath, and a host of other scientists would use Milne's unusual sense of smell to develop a new diagnostic test, now in development and poised to revolutionize the treatment of Parkinson's Disease.
"Joy was in the audience during a talk I was giving on my work, which has to do with Parkinson's and stem cell biology," Kunath says. "During the patient engagement portion of the talk, she asked me if Parkinson's had a smell to it." Confused, Kunath said he had never heard of this – but for months after his talk he continued to turn the question over in his mind.
Kunath knew from his research that the skin's microbiome changes during different disease processes, releasing metabolites that can give off odors. In the medical literature, diseases like melanoma and Type 2 diabetes have been known to carry a specific scent – but no such connection had been made with Parkinson's. If people could smell Parkinson's, he thought, then it stood to reason that those metabolites could be isolated, identified, and used to potentially diagnose Parkinson's by their presence alone.
First, Kunath and his colleagues decided to test Milne's sense of smell. "I got in touch with Joy again and we designed a protocol to test her sense of smell without her having to be around patients," says Kunath, which could have affected the validity of the test. In his spare time, Kunath collected t-shirt samples from people diagnosed with Parkinson's and from others without the diagnosis and gave them to Milne to smell. In 100 percent of the samples, Milne was able to detect whether a person had Parkinson's based on smell alone. Amazingly, Milne was even able to detect the "Parkinson's scent" in a shirt from the control group – someone who did not have a Parkinson's diagnosis, but would go on to be diagnosed nine months later.
From the initial study, the team discovered that Parkinson's did have a smell, that Milne – inexplicably – could detect it, and that she could detect it long before diagnosis like she had with her husband, Les. But the experiments revealed other things that the team hadn't been expecting.
"One surprising thing we learned from that experiment was that the odor was always located in the back of the shirt – never in the armpit, where we expected the smell to be," Kunath says. "I had a chance meeting with a dermatologist and he said the smell was due to the patient's sebum, which are greasy secretions that are really dense on your upper back. We have sweat glands, instead of sebum, in our armpits." Patients with Parkinson's are also known to have increased sebum production.
With the knowledge that a patient's sebum was the source of the unusual smell, researchers could go on to investigate exactly what metabolites were in the sebum and in what amounts. Kunath, along with his associate, Dr. Perdita Barran, collected and analyzed sebum samples from 64 participants across the United Kingdom. Once the samples were collected, Barran and others analyzed it using a method called gas chromatography mass spectrometry, or GS-MC, which separated, weighed and helped identify the individual compounds present in each sebum sample.
Barran's team can now correctly identify Parkinson's in nine out of 10 patients – a much quicker and more accurate way to diagnose than what clinicians do now.
"The compounds we've identified in the sebum are not unique to people with Parkinson's, but they are differently expressed," says Barran, a professor of mass spectrometry at the University of Manchester. "So this test we're developing now is not a black-and-white, do-you-have-something kind of test, but rather how much of these compounds do you have compared to other people and other compounds." The team identified over a dozen compounds that were present in the sebum of Parkinson's patients in much larger amounts than the control group.
Using only the GC-MS and a sebum swab test, Barran's team can now correctly identify Parkinson's in nine out of 10 patients – a much quicker and more accurate way to diagnose than what clinicians do now.
"At the moment, a clinical diagnosis is based on the patient's physical symptoms," Barran says, and determining whether a patient has Parkinson's is often a long and drawn-out process of elimination. "Doctors might say that a group of symptoms looks like Parkinson's, but there are other reasons people might have those symptoms, and it might take another year before they're certain," Barran says. "Some of those symptoms are just signs of aging, and other symptoms like tremor are present in recovering alcoholics or people with other kinds of dementia." People under the age of 40 with Parkinson's symptoms, who present with stiff arms, are often misdiagnosed with carpal tunnel syndrome, she adds.
Additionally, by the time physical symptoms are present, Parkinson's patients have already lost a substantial amount of dopamine receptors – about sixty percent -- in the brain's basal ganglia. Getting a diagnosis before physical symptoms appear would mean earlier interventions that could prevent dopamine loss and preserve regular movement, Barran says.
"Early diagnosis is good if it means there's a chance of early intervention," says Barran. "It stops the process of dopamine loss, which means that motor symptoms potentially will not happen, or the onset of symptoms will be substantially delayed." Barran's team is in the processing of streamlining the sebum test so that definitive results will be ready in just two minutes.
"What we're doing right now will be a very inexpensive test, a rapid-screen test, and that will encourage people to self-sample and test at home," says Barran. In addition to diagnosing Parkinson's, she says, this test could also be potentially useful to determine if medications were at a therapeutic dose in people who have the disease, since the odor is strongest in people whose symptoms are least controlled by medication.
"When symptoms are under control, the odor is lower," Barran says. "Potentially this would allow patients and clinicians to see whether their symptoms are being managed properly with medication, or perhaps if they're being overmedicated." Hypothetically, patients could also use the test to determine if interventions like diet and exercise are effective at keeping Parkinson's controlled.
"We hope within the next two to five years we will have a test available."
Barran is now running another clinical trial – one that determines whether they can diagnose at an earlier stage and whether they can identify a difference in sebum samples between different forms of Parkinson's or diseases that have Parkinson's-like symptoms, such as Lewy Body Dementia.
"Within the next one to two years, we hope to be running a trial in the Manchester area for those people who do not have motor symptoms but are at risk for developing dementia due to symptoms like loss of smell and sleep difficulty," Barran had said in 2019. "If we can establish that, we can roll out a test that determines if you have Parkinson's or not with those first pre-motor symptoms, and then at what stage. We hope within the next two to five years we will have a test available."
In a 2022 study, published in the American Chemical Society, researchers used mass spectrometry to analyze sebum from skin swabs for the presence of the specific molecules. They found that some specific molecules are present only in people who have Parkinson’s. Now they hope that the same method can be used in regular diagnostic labs. The test, many years in the making, is inching its way to the clinic.
"We would likely first give this test to people who are at risk due to a genetic predisposition, or who are at risk based on prodomal symptoms, like people who suffer from a REM sleep disorder who have a 50 to 70 percent chance of developing Parkinson's within a ten year period," Barran says. "Those would be people who would benefit from early therapeutic intervention. For the normal population, it isn't beneficial at the moment to know until we have therapeutic interventions that can be useful."
Milne's husband, Les, passed away from complications of Parkinson's Disease in 2015. But thanks to him and the dedication of his wife, Joy, science may have found a way to someday prolong the lives of others with this devastating disease. Sometimes she can smell people who have Parkinson’s while in the supermarket or walking down the street but has been told by medical ethicists she cannot tell them, Milne said in an interview with the Guardian. But once the test becomes available in the clinics, it will do the job for her.
[Ed. Note: A older version of this hit article originally ran on September 3, 2019.]