JoAnne Stubbe | |
---|---|
Born | Champaign, Illinois, U.S. | June 11, 1946
Education | University of Pennsylvania (BS) University of California, Berkeley (PhD) |
Known for | ribonucleotide reductases |
Scientific career | |
Fields | Biochemistry |
Institutions | Massachusetts Institute of Technology |
Doctoral advisor | George Kenyon |
Other academic advisors | Julius Rebek Robert Abeles |
Doctoral students | Squire Booker |
JoAnne Stubbe (born June 11, 1946) is an American chemist best known for her work on ribonucleotide reductases, for which she was awarded the National Medal of Science in 2009. In 2017, she retired as a Professor of Chemistry and Biology at the Massachusetts Institute of Technology. [1]
In 1946, Stubbe was born in Champaign, Illinois. [2] In 1968, Stubbe received a B.S. degree in chemistry from the University of Pennsylvania, [3] and worked as an undergraduate in the laboratory of Professor Edward R. Thornton. [2] After she received her Ph.D. degree in organic chemistry under the guidance of Professor George Kenyon [2] from the University of California, Berkeley in 1971, she did a very brief stint (1971-1972) as a postdoc at UCLA, where she worked on synthesizing LSD from tryptophan with Julius Rebek. Then, Stubbe taught at Williams College (1972-1977) discovered she didn't want to teach, but wanted to do research. Her realization sent her to Brandeis University (1975-1977), [4] where she did a second postdoc with Robert Abeles. This is where she learned the art and science of creating mechanism-based enzyme inhibitors. [5] She also taught at Yale School of Medicine (1977-1980) as an assistant professor in the department of pharmacology. [6]
In 1980, she moved to the University of Wisconsin, serving as assistant professor in the Biochemistry Department and rising to full professor in 1985. [6] She was an assistant professor for a total of 12 years. [5] In 1987, Stubbe became a professor in the MIT Chemistry Department, where she became the first woman to receive tenure in that department. [7] She received a joint appointment in the MIT Biology Department in 1990.
In 1994, Stubbe was one of 16 women faculty in the School of Science at MIT who drafted and co-signed a letter to the then-Dean of Science (now Chancellor of Berkeley) Robert Birgeneau, which started a campaign to highlight and challenge gender discrimination at MIT. [8]
Stubbe has published over 300 scientific papers and has been frequently recognized for her research achievements. [9] Before Stubbe's work, there were no chemical mechanisms that could be written for certain enzymes. She revolutionized the biochemistry field with her first two scientific papers on enzymes enolase and pyruvate kinase. [5]
Her first two publications in scientific journals showed the mechanisms for reactions that involved the enzymes enolase that metabolizes carbohydrates, and pyruvate kinase. [6] Her first groundbreaking experiments were carried out in the late 1970s and early 1980s, while she was at Yale, then the University of Wisconsin. She was trying to understand how the hydroxyl group at the 2’ position of the ribonucleotide's sugar was replaced by the hydrogen found in deoxyribonucleotides. To perform these experiments, she had to synthesize nucleotides that carried a heavy isotope at specific positions. Stubbe reportedly kept a bed in her office since she worked around the clock on her experiments. [5] Stubbe pioneered the use of spectroscopic investigations of enzyme interactions [10] and has devoted most of her career to elucidating the biochemical mechanisms behind free radicals. In her early work at Yale and then at the University of Wisconsin, Stubbe discovered how enzymes called ribonucleotide reductases use free-radical chemistry to convert nucleotides into deoxynucleotides, an essential process in DNA repair and replication. [11] These enzymes catalyze the rate-determining step in DNA biosynthesis. Her analysis of the nucleotide reduction process shed light on the mechanism of action of the Eli Lilly & Co. anti-cancer drug gemcitabine, which is used to treat various carcinomas, such as pancreatic cancer, breast cancer, and non-small cell lung cancer. [4]
Stubbe, in collaboration with John Kozarich, also elucidated the structure and function of bleomycin, an antibiotic that is commonly used to treat cancer. They discovered how bleomycin induces DNA strand breaks in tumor cells, which in turn induces apoptosis. [4]
Before retiring, Stubbe studied the function of ribonucleotide reductases and the mechanisms of clinically useful drugs. She also extended her research into polyhydroxybutyrates, a class of biodegradable polymers that can be synthesized by bacteria under certain conditions and then converted into plastics. [12] Stubbe's other research interests included the design of so-called suicide inhibitors and mechanisms of DNA repair enzymes. [6]
Stubbe was active on several committees, including review boards for the NIH grants committee and the editorial boards for various scientific journals. [6]
Stubbe's parents were teachers, and that is why she thought teaching is what she originally wanted to do as a career. [5] Stubbe had a pet dog named Dr. McEnzyme Stubbe. The dog was a part of the research group and had its own email address and picture on the group's website. [13] [14]
Karl Barry Sharpless is an American stereochemist. He is a two-time Nobel laureate in Chemistry known for his work on stereoselective reactions and click chemistry.
Ribonucleotide reductase (RNR), also known as ribonucleoside diphosphate reductase, is an enzyme that catalyzes the formation of deoxyribonucleotides from ribonucleotides. It catalyzes this formation by removing the 2'-hydroxyl group of the ribose ring of nucleoside diphosphates. This reduction produces deoxyribonucleotides. Deoxyribonucleotides in turn are used in the synthesis of DNA. The reaction catalyzed by RNR is strictly conserved in all living organisms. Furthermore, RNR plays a critical role in regulating the total rate of DNA synthesis so that DNA to cell mass is maintained at a constant ratio during cell division and DNA repair. A somewhat unusual feature of the RNR enzyme is that it catalyzes a reaction that proceeds via a free radical mechanism of action. The substrates for RNR are ADP, GDP, CDP and UDP. dTDP is synthesized by another enzyme from dTMP.
The Priestley Medal is the highest honor conferred by the American Chemical Society (ACS) and is awarded for distinguished service in the field of chemistry. Established in 1922, the award is named after Joseph Priestley, one of the discoverers of oxygen, who immigrated to the United States of America in 1794. The ACS formed in 1876, spearheaded by a group of chemists who had met two years previously in Priestley's home.
The National Academy of Sciences Award in Chemical Sciences is awarded for innovative research in the chemical sciences that in the broadest sense contributes to a better understanding of the natural sciences and to the benefit of humanity.
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{{Infobox scientist | name = Marina Bennati | workplaces = [[Max Planck Institute for multidisciplinary Sciences]
[University of Göttingen]]
Goethe University Frankfurt
Massachusetts Institute of Technology | alma_mater = University of Stuttgart
University of Münster | thesis_title = Zeitaufgelöste Elektronen-Spin-Resonanz an photoangeregten Zuständen spezieller Donor-Akzeptor-Systeme | thesis_url = http://www.worldcat.org/oclc/258062810 | thesis_year = 1995 }}
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