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Leroy Hood

b. 1938

American biologist

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About Leroy Hood

Born 1938. Leroy Hood is an American university teacher, biochemist, scientist and biologist, known for Systems biology.

Early life

Hood was born on October 10, 1938, in Missoula, Montana, to Thomas Edward Hood and Myrtle Evylan Wadsworth. His father was an electrical engineer, and his mother had a degree in home economics. Hood was one of four children, including a sister and two brothers, including a brother with Down syndrome. One of his grandfathers was a rancher and ran a summer geology camp for university students, which Hood attended as a high school student. Hood excelled in math and science, being one of forty students nationally to win a Westinghouse Science Talent Search. In addition, Hood played several high school sports and debate, the latter of which he would credit for his success in science communication later in his career. and Linus Pauling. where he worked with William J. Dreyer on antibody diversity.

Career

In 1967, Hood joined the National Institutes of Health (NIH), to work in the immunology branch of the National Cancer Institute as a senior investigator.

In 1970, he returned to Caltech as an assistant professor.

Hood has been a leader and a proponent of cross-disciplinary research in chemistry and biology. In 1989 he stepped down as chairman of the Division of Biology to create and become director of a newly funded NSF Science and Technology Center at Caltech. The NSF Center for the Development of an Integrated Protein and Nucleic Acid Biotechnology became one of the founding research centers of the Beckman Institute at Caltech in 1989. By this time, Hood's laboratory included more than 100 researchers, a much larger group than was usual at Caltech. A relatively small school, Caltech was not well-suited to the creation of the type of large interdisciplinary research organization that Hood sought. Roger Perlmutter, who had worked in Hood's lab at Caltech before moving to UW as chair of the immunology department, played a key role organizing his recruitment to UW. Hood and other scientists from Caltech's NSF center moved to the University of Washington during 1992-1994, where they received renewed support from the NSF as the Center for Molecular Biotechnology. (Later, in 2001, the department of molecular biotechnology and the genetics department at UW reorganized to form the department of genome sciences. )

In 2000 Hood resigned his position at the University of Washington to become co-founder and president of the non-profit Institute for Systems Biology (ISB), possibly the first independent systems biology organization. His co-founders were protein chemist Ruedi Aebersold and immunologist Alan Aderem. Hood is still an affiliate professor at the University of Washington in Computer Science, Bioengineering and Immunology. In April 2017, the ISB announced that Hood will be succeeded as president of ISB as of January 2018 by James Heath, while continuing to lead his research group at ISB and serving on ISB's board of directors. In 2010 ISB partnered with the Ohio State University Wexner Medical Center in Columbus, Ohio, to establish the nonprofit P4 Medicine Institute (P4MI). Its goal was stated as being "to lead the transformation of healthcare from a reactive system to one that predicts and prevents disease, tailors diagnosis and therapy to the individual consumer and engages patients in the active pursuit of a quantified understanding of wellness; i.e. one that is predictive, preventive, personalized and participatory (P4)." In 2012, P4 Medical Institute established an agreement with its first community health partner, PeaceHealth. PeaceHealth is a not-for-profit Catholic health care system, operating in a variety of communities in Alaska, Washington and Oregon. In 2016, ISB affiliated with Providence Health & Services, and Hood became the senior vice president of Providence St. Joseph Health and its chief science officer.

He has been instrumental in founding 15 biotechnology companies, In 2015, he co-founded a startup called Arivale offering a subscription-based 'scientific wellness' service which shut down in 2019. While praising the quality of its offering, industry commentators attributed Arivale's closure to a failure to capture sufficient Customer lifetime value to create a profit from providing the service, suggesting that insufficient numbers of customers stuck with the data-driven, personalized dietary and lifestyle coaching it provided for long enough at a price point which would make the business model work.

Research Genomics and proteomics At Caltech, Hood and his colleagues created the technological foundation for the study of genomics and proteomics by developing five groundbreaking instruments - the protein sequencer (1982), the DNA synthesizer (1983), the peptide synthesizer (1984), the automated DNA sequencer (1986) and later the ink-jet DNA synthesizer.

Hood had a strong interest in commercial development, actively filing patents and seeking private funding. Applied Biosystems, Inc. (initially named GeneCo.) was formed in 1981 in Foster City, California, to commercialize instruments developed by Hood, Hunkapiller, Caruthers, and others. The company was supported by venture capitalist William K. Bowes, who hired Sam H. Eletr and André Marion as president and vice-president of the new company. The company shipped the first gas phase protein sequencer, Model 4790A, in August 1982. The 380 DNA synthesizer was commercialized in 1983, the 430A peptide synthesizer in 1984, and the 370A DNA sequencing system in 1986.

These new instruments had a major impact on the emerging fields of proteomics and genomics. The gas-liquid phase protein sequencer was developed with Michael W. Hunkapiller, then a research fellow at Caltech. Hood and Hunkapiller made a number of modifications, further automating steps in the analysis and improving effectiveness and shortening cycle time. By applying reagents in the gas phase instead of the liquid phase, the retention of the sample during the analysis and the sensitivity of the instrument were increased. and the purification of reagents was improved. HPLC analysis techniques were used to reduce analysis times and extend the technique's applicable range. The new sequencer offered significant advantages in speed and sample size compared to commercial sequencers of the time, the most popular of which were built by Beckman Instruments.

The first automated DNA synthesizer resulted from a collaboration with Marvin H. Caruthers of the University of Colorado Boulder, and was based on Caruthers' work elucidating the chemistry of phosphoramidite oligonucleotide synthesis. The resulting prototype was capable of forming short pieces of DNA called oligonucleotides, which could be used in DNA mapping and gene identification. who installed the first Model 380A in Caruthers' lab at the University of Colorado in December 1982, before beginning official commercial shipment of the new instrument. The peptide synthesizer assembles long peptides and short proteins from amino acid subunits, Researchers Jane Z. Sanders and Lloyd M. Smith developed a way to color code the basic nucleotide units of DNA with fluorescent tags, green for adenine (A), yellow-green for guanine (G), orange for cytosine (C) and red for thymine (T).

The DNA sequencer was a critical technology for the Human Genome Project. Hood directed the Human Genome Center's sequencing of portions of human chromosomes 14 and 15.

At the University of Washington in the 1990s, Hood, Alan Blanchard, and others developed ink-jet DNA synthesis technology for creating DNA microarrays. By 2004, their ink-jet DNA synthesizer supported high-throughput identification and quantification of nucleic acids through the creation of one of the first DNA array chips, with expression levels numbering tens of thousands of genes. DNA ink-jet printer technology has had a significant impact on genomics, biology, and medicine.

Immunology and neurobiology

Hood also made generative discoveries in the field of molecular immunology. His studies of the amino acid sequences of immunoglobulins (also known as antibodies) helped to fuel the 1970s' debate regarding the generation of immune diversity and supported the hypothesis advanced by William J. Dreyer that immunoglobulin (antibody) chains are encoded by two separate genes (a constant and a variable gene). He (and others) conducted pioneering studies on the structure and diversity of the antibody genes. This research led to verification of the "two genes, one polypeptide" hypothesis and insights into the mechanisms responsible for the diversification of the immunoglobulin variable genes. and the T-cell receptor gene families as well as being among first to demonstrate that alternative RNA splicing was a fundamental mechanism for generating alternative forms of antibodies. He showed that RNA splicing is the mechanism for generating the membrane bound and the secreted forms of antibodies.

In neurobiology, Hood and his colleagues were the first to clone and study the myelin basic protein (MBP) gene. The MBP is a central component in the sheath that wraps and protects neurons. Hood demonstrated that the condition called "shiverer mouse" arose from a defect in the MBP gene. Hood's research group corrected the neurological defect in mice (the shiverer defect) by transferring a normal MBP gene into the fertilized egg of the shiverer mouse. These discoveries led to extensive studies of MBP and its biology.

Systems biology and systems medicine

Beginning in the 1990s, Hood focused more on cross-disciplinary biology and systems biology. He established in 1992 the first cross-disciplinary biology department, the Molecular Biotechnology Department at the University of Washington. In this model, understanding how systems function requires knowledge of: (1) the components of each network (including genetic, molecular, cellular, organ networks), (2) how these networks inter- and intra-connect, (3) how the networks change over time and undergo perturbations, and (4) how function is achieved within these networks. At the ISB under Hood's direction, genomic, transcriptomic, metabolomic and proteomic technologies are used to understand the "network of networks" and are focused on diverse biological systems (e.g. yeast, mice and humans).

Hood applies the notion of systems biology to the study of medicine, specifically to cancer and neurodegenerative disease. His research article on a systems approach to prion diseases in 2009 was one of the first to thoroughly explore the use of systems biology to interrogate the dynamic network changes in disease models. These studies are the first to explain the dynamics of diseased-perturbed networks and have expanded to include frontal temporal dementia and Huntington's disease. Hood is also studying glioblastoma in mice and humans from the systems viewpoint.

Hood advocates several practices in the burgeoning field of systems medicine, including: (1) The use of family genome sequencing, integrating genetics and genomics, to identify genetic variants associated with health and disease (2) The use of targeted proteomics and biomarkers as a window into health and disease. He has pioneered the discovery of biomarker panels for lung cancer and posttraumatic stress syndrome. (3) The use of systems biology to stratify disease into its different subtypes allowing for more effective treatment. Hood states that P4 Medicine is the convergence of systems medicine, big data and patient (consumer) driven healthcare and social networks.

Awards and honors

alt=Dr. Lee Hood receiving the National Medal of Science from President Obama Dr. Lee Hood receiving the National Medal of Science from President Obama Leroy Hood is a member of the National Academy of Sciences (NAS, 1982), the National Academy of Engineering (2007), the National Academy of Medicine (formerly the Institute of Medicine, 2003), and the National Academy of Inventors (2012). He is one of only 15 scientists ever elected to all three national academies. a member of the American Philosophical Society (2000), a fellow of the American Society for Microbiology, and a charter fellow of the National Academy of Inventors (2012).

He has received 17 honorary degrees and Yale University.

In 1987 Hood shared the Albert Lasker Award for Basic Medical Research with Philip Leder and Susumu Tonegawa for studies of the mechanism of immune diversity. He subsequently was awarded the Dickson Prize in 1988. In 1987, Hood also received the Golden Plate Award of the American Academy of Achievement.

He won the 2002 Kyoto Prize for Advanced Technology for developing automated technologies for analyzing proteins and genes; the 2004 Biotechnology Heritage Award; the 2004 Association for Molecular Pathology Award for Excellence in Molecular Diagnostics the 2006 Heinz Award in Technology, the Economy and Employment, for breakthroughs in biomedical science on the genetic level; inclusion in the 2007 Inventors Hall of Fame for the automated DNA sequencer; the 2008 Pittcon Heritage Award for helping to transform the biotechnology industry; and the 2010 Kistler Prize for contributions to genetics that have increased knowledge of the human genome and its relationship to society. Leroy Hood won the 2011 Fritz J. and Dolores H. Russ Prize "for automating DNA sequencing that revolutionized biomedicine and forensic science"; the 2011 National Medal of Science, presented at a White House ceremony by President Obama in early 2013; the IEEE Medal for Innovations in Healthcare Technology in 2014, and the 2016 Ellis Island Medal of Honor. In 2017 he received the NAS Award for Chemistry in Service to Society. In 2019 Hood was awarded the IRI Medal, established by the Industrial Research Institute (IRI).

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Important facts

Birth century
Nationality
Known for
Systems biology
Education
California Institute of Technology, Johns Hopkins University
Employers
California Institute of Technology, Institute for Systems Biology
Awards
Albert Lasker Award for Basic Medical Research; Lemelson–MIT Prize; Kistler Prize; National Medal of Science; Dickson Prize in Medicine; National Inventors Hall of Fame; Kyoto Prize in Advanced Technology; Biotechnology Heritage Award; Heinz Award; Russ Prize; IEEE Medal for Innovations in Healthcare Technology; NAS Award for Chemistry in Service to Society
Also known as
Leroy "Lee" Edward Hood, Lee Hood

People in Leroy Hood's life

Named in this biography and alive at the same time

Contemporaries

People whose lives overlapped Leroy Hood's

Frequently asked questions

Who is Leroy Hood?

American biologist

When was Leroy Hood born?

Leroy Hood was born on 10 October 1938 in Missoula.

What is Leroy Hood's occupation?

Leroy Hood is a university teacher, biochemist, scientist and biologist.

What is Leroy Hood known for?

Leroy Hood is known for Systems biology.

What nationality is Leroy Hood?

Leroy Hood is American.

Sources & further reading

· Wikipedia: Leroy Hood

· Wikidata: Q1820381

· DBpedia: Leroy Hood

Cite this page

APA: Biography.guide. (2026). Leroy Hood. https://biography.guide/leroy-hood/

MLA: "Leroy Hood." Biography.guide, https://biography.guide/leroy-hood/.

Chicago: "Leroy Hood." Biography.guide. https://biography.guide/leroy-hood/.

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