Showing posts with label biochemistry. Show all posts
Showing posts with label biochemistry. Show all posts

Thursday, October 08, 2009

National Medal of Science Winners

Yesterday President Barak Obama presented the National Medal of Science to nine "eminent researchers" and the National Medal of Technology and Innovation to four inventers, the "highest honors bestowed by the United States government on scientists, engineers, and inventors."

Three women were honored this year with the National Medal of Science.

Dr. Joanna Fowler, Senior Scientist at Brookhaven National Laboratory, New York

[. . . ] for her pioneering work in chemistry involving the synthesis of medical imaging compounds and her innovative applications of these compounds to human neuroscience, which have significantly advanced our understanding of the human brain and brain diseases, including drug addiction.



Dr. Elaine Fuchs
, Rebecca C. Lancefield Professor and Investigator, HHMI at the laboratory of Mammalian Cell Biology and Development, The Rockefeller University, New York
[. . .] for her pioneering use of cell biology and molecular genetics in mice to understand the basis of inherited diseases in humans and her outstanding contributions to our understandings of the biology of skin and its disorders, including her notable investigations of adult skin stem cells, cancers, and genetic syndromes.

Dr. JoAnne Stubbe, Novartis Professor of Chemistry and Professor of Biology, Massachusetts Institute of Technology
[. . . ] for her groundbreaking experiments establishing the mechanisms of ribonucleotide reductases, polyester synthases, and natural product DNA cleavers -- compelling demonstrations of the power of chemical investigations to solve problems in biology.

One woman was honored with the National Medal of Technology and Innovation:

Dr. Esther Sans Takeuchi, Greatbatch Professor of Advanced Power Sources in the Chemical and Biological Engineering Department, University at Buffalo, The State University of New York
[. . . ] for her seminal development of the silver vanadium oxide battery that powers the majority of the world's lifesaving implantable cardiac defibrillators, and her innovations in other medical battery technologies that improve the health and quality of life of millions of people.



Three women National Science Winners in a single year is a record high - and historically that number has frequently been zero. While that may seem like an encouraging upward trend, if you check the stats, more women were NMoS recipients in the 1990s (15) than in the 2000s (10). Hopefully, the 2010s will see an improvement in those numbers.

The National Medal of Technology and Innovation doesn't provide a way to search recipients by gender (and some winners are actually companies), but looking through the list it appears that Esther Sans Takeuchi is the first woman to win since Stephanie Kwolek in 1996.

Watch the awards ceremony on YouTube:


(President Obama also said some good things about supporting research and math and science education in his speech.)

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Wednesday, October 07, 2009

Another Day, Another Woman Wins a Nobel Prize for Nucleic Acid Biochemistry

On the Nobel Prize front, 2009 is turning into a banner year for both nucleic acid chemistry and women scientists. As I posted earlier this week, two of the three winners of the 2009 Nobel Prize in Medicine ("for the discovery of how chromosomes are protected by telomeres and the enzyme telomerase") are women. And today it was announced that the Nobel Prize in Chemistry was awarded to Ada E. Yonath along with Venkatraman Ramakrishnan and Thomas A. Steitz "for studies of the structure and function of the ribosome."

The last woman to be awarded the Nobel Prize in Chemistry was Dorothy Hodgkin, who won the prize in 1964 for her advancement of the technique of X-ray crystallography for determining the structure of biomolecules such Vitamin B-12. Now, 45 years later, Ada Yonath has been recognized for her work determining the structure of ribosomes, using, once again, X-ray crystallography.

As most introductory biology texts diagram it, the "usual" flow of information in the cell1 goes from DNA, which is used as a template for the synthesis of messenger RNA (mRNA), which in turn is used as a template for the synthesis of proteins. Ribosomes are cellular organelles that mediate the third step, translation of the nucleic acid sequence into a the chain of amino acids that make up a protein.

10 small subunit.gif
By Animation by David S. Goodsell, RCSB Protein Data Bank - Molecule of the Month at the RCSB Protein Data Bank, Public Domain, Link
Ribosomes are usually depicted in textbooks as a large blob and a small blob, but their actual molecular structure is much more complex. Each blob, or subunit, is made up of RNA ("ribosomal RNA" or rRNA) and multiple proteins. The small ribosomal subunit shown at left, for example, is made up of 20 proteins (blue) and one RNA (orange), folded to form a complex 3-dimensional structure. (You can see more such structures on the Yonath Lab web site.)

As the Nobel Prize science backgrounder points out, determining the structure of ribosomes was an important technical achievement:

The ribosome, with its molecular weight of about 2.5 MDa is not only large but, unlike many virus particles, does not display symmetry properties that would facilitate crystallization and structure determination. In the years around 1980 it was therefore unclear whether crystals of the ribosome diffracting to high resolution (~3Å or less) could ever be found and, granted the existence of such crystals, whether the phase problem could be overcome and structures obtained. In this context, the report on three-dimensional crystals of the ribosomal 50S subunit from the thermophile bacterium Geobacillus (G.) stearothermophilus (previously called Bacillus stearothermophilus) in 1980 by Ada Yonath and colleagues (Yonath et al., 1980) was therefore a significant step forward.
Determining the detailed structure of ribosomes has been important in understanding the basic function of living cells. And it also has important clinical significance:
This knowledge can be put to a practical and immediate use; many of today's antibiotics cure various diseases by blocking the function of bacterial ribosomes. Without functional ribosomes, bacteria cannot survive. This is why ribosomes are such an important target for new antibiotics. This year's three Laureates have all generated 3D models that show how different antibiotics bind to the ribosome. These models are now used by scientists in order to develop new antibiotics, directly assisting the saving of lives and decreasing humanity's suffering.
Ada E. Yonath

Ada Yonath was born in 1939 to a poor Jewish family in Jerusalem. She was fascinated by science from an early age, and her family supported and encouraged her studies. As she recalled in 2008:
My father died when I was 11 years old and left my mother with me and my sister but no income, so I was needed at home. Nevertheless, my mother realized my lust for science and provided me with massive emotional support. She did not object to my academic studies, although at the time this was not so common for females. When I became a scientist, my mother, sister, and later on my daughter and granddaughter always supported my scientific activities, in my presence as well as in my frequent absences.
She also received encouragement in school from an early age:
Her elementary school math teacher Zvi Vinitzky introduced her to the principal of the elite Tel Aviv high school, Tichon Hahadash, Tony Halle. Impressed by the young girl's abilities, Halle admitted her to the school although she was not able to pay for the tuition. In repayment, Yonath tutored young Bulgarian immigrants in math.
After receiving her bachelor's degree in chemistry and master's degree in biochemistry from the Hebrew University of Jerusalem, she entered the laboratory of Wolfie Traub at the Weizmann Institute of Science in Rehovot, Israel. She earned her Ph.D. for X-ray crystallographic studies of collagen in 1968. After brief postdocs at Carnegie Mellon and MIT, she returned to the Weizmann Institute to establish the country's first protein crystallography laboratory in Israel.

Despite her expertise in X-ray crystallography, many scientists were skeptical that the technique could be used to determine ribosome structure, only they apparently didn't express it quite so tactfully.
[...] she was able to count on the support of "a few individuals, including several distinguished scientists and my own group of young and highly motivated students. They encouraged me even when my project met with rigorous skepticism from most prominent scientists all over the world, even when I was called 'a dreamer,' 'crazy' or the 'Village Fool.'"
Even her initial successes weren't immediately recognized by her colleagues:
[...] with the techniques then available, it took Yonath months of trying different solutions and crystallization procedures to get tiny crystals of the larger, or 50S, subunit of the ribosome from a Bacillus bacterium, and more than a year to get the first very fuzzy x-ray crystallographic images. But when she showed colleagues her results at an August 1980 meeting, "everyone laughed at me," Yonath recalls.
She eventually figured out that she needed to cryocool - freeze - the ribosomes to stabilize the crystals long enough clear data, a technique that is still in use today.

Since then Yonath has continued her research on ribosomal structure, both at the Weizmann Instute and at her parallal post as visiting professor and later the Head of a Max-Planck Research Unit in Hamburg, Germany. Her laboratory currently focuses on the interaction between ribosomes and antibiotics.

Yonath is also an advocate of encouraging other women to pursue careers in science:
"Women make up half the population," she says. "I think the population is losing half of the human brain power by not encouraging women to go into the sciences. Women can do great things if they are encouraged to do so."
"I would like women to have the opportunity to do what is interesting to them, to go after their curiosity. And I would like the world to be open to that. I know in many places there is opposition to that."2
A few key publications:

Additional links about Ada Yonath
1. That isn't quite accurate, because RNA can be reverse transcribed into DNA, DNA is duplicated when cells divide, and there are other ways that information flows within the cell. The key point is that the nucleic acid sequence can be converted into protein, but the sequence of amino acids in a protein can not be converted by the cell into a nucleic acid sequence. See Larry Moran's post on the Central Dogma for more.
2. It makes me a bit sad that that even needs to be said.

Bottom Image: Micheline Pelletier/Corbis. Check out more photos at the Nobel web site Photo Gallery
Top Image: "Animation of the small subunit of the Thermus thermophilus ribosome. RNA shown in orange, protein in blue." Taken from PDB 1FKA and animated by David S. Goodsell.
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Monday, October 05, 2009

Blackburn and Greider win the Nobel for Medicine: the first time two women share the prize

Today it was announced that Elizabeth H. Blackburn, Carol W. Greider and Jack W. Szostak would share the 2009 Nobel Prize in Physiology or Medicine "for the discovery of how chromosomes are protected by telomeres and the enzyme telomerase". The award shouldn't have come as a surprise to anyone familiar with the modern biological sciences, since their work was indeed groundbreaking. It wasn't a matter of "if" they would win, but "when".

Telomeres are stretches of repetitive DNA that protect the ends of chromosomes during cell division - Blackburn has compared them to the tips on the ends of shoelaces1 that keep them from unraveling. As cells divide the telomere sequences get shorter and shorter, which limits cells to a fixed number of divisions. Telomere shorting is thought to be responsible for aging on a cellular level. Cancer cells, which divide indefinitely, carry mutations that allow the maintenance of telomere length.

You can find out more about the science by exploring the history of telomere research on the Lasker Awards site and by watching Blackburn's 2008 Women@GoogleTalk about telomeres and aging.

Some of the other awards won jointly by Blackburn and Greider:

Elizabeth Blackburn

Elizabeth Blackburn is a native of Hobart, Tasmania, Australia, the daughter of two physicians, a fact that Blackburn has noted helped shape her view of pursuing a career as a woman:

The main influence my parents' careers had on me was that it gave me the idea that women and men were equivalent in careers. They were both physicians, they grew up at the same time, and they trained at the same time. Probably, the other influence it had was showing me that motherhood and career can go together. My mother worked part-time much of the time, as I was one of seven children!

After receiving her B.Sc. and M.Sc. degrees from the University of Melbourne, she moved to the UK, where she earned her doctorate from the University of Cambridge in the laboratory of biochemist Frederick Sanger, who pioneered methods of nucleic acid sequencing. She moved to the United States in 1975 for postdoctoral work in the lab of Joseph G. Gall2 at Yale.

It was in Gall's laboratory that Blackburn analyzed the structure of the chromosomes of the fresh water protozoan Tetrahymena, discovering that the DNA sequence ends of chromosomes consisted of simple repeated DNA sequences. As Gall has recalled,3 they didn't fully appreciate the revolutionary nature of the discovery at that time.
The work Liz was doing in my lab was technically advanced, because she was using techniques learend in Sanger's lab, and virtually no one else in the world was doing that kind of work. We were interested in sequencing partly because it was something you could do and we knew there were unusual features about these molecules. At the time, we didn't say, Eureka, we found what the ends of chromosomes are like. She had made a discovery whose significance we didn't yet appreciate completely. I knew Liz was extremely good, but I didn't know she as a superstar until she started doing her own independent work.
After completing her postdoc, Blackburn joined the faculty of the University of California at Berkeley in 1978, where she continued her study of telomere biochemistry. There she and one of her graduate students, Carol Greider, discovered telomerase, the enzyme that adds telomere DNA sequences to the ends of chromosomes (read more about that below). In 1990 Blackburn moved her lab to the University of California at San Francisco, where she continues to study telomere function and biochemistry.

Blackburn has also been involved in the political side of science. In 2001 she was appointed by the Bush administration as a scientist member of the President's Council on Bioethics. Blackburn and fellow panelist Janet Rowley were very critical of the scientific content of the Council's reports on stem cell research and aging. Her removal from the panel in 2004 drew criticism from scientists who believed she was removed because of her advocacy for human embryonic stem cell research and therapeutic cloning.

A few key publications:
Additional information about Elizabeth Blackburn:
Carol W. Greider

Carol Greider grew up in Davis, California, the daughter of two scientists: her mother was a biologist, who died when Greider was six and her father was a physicist at UC Davis.

Greider got her first taste of hands-on research when she was a freshman at the University of California at Santa Barbara under the mentorship of Bea Sweeney, and ended up working in several labs before deciding that she wanted to pursue biochemistry. She applied to a number of graduate programs, but ran into a problem:
“I had great research experience, great letters of recommendation, and outstanding grades, but I had poor GREs.” Although she did not know it growing up, Greider suffers from dyslexia, which affected her scores on standardized tests. Only two schools—the California Institute of Technology (Pasadena, CA) and the University of California, Berkeley— offered her an interview. When she met with cell biologist Elizabeth Blackburn in Berkeley, things clicked again. “I really liked my conversations with Liz, and there were a number of other people in the department that would be potentially fun to work with, so I went there,” says Greider.
It was while working in Blackburn's lab in 1984 that Greider discovered telomerase, an enzyme that maintains telomere sequences. The account of her discovery in the biography published upon her election to the National Academy of Sciences explains the skill and hard work that went into that achievement:
"If you were easily intimidated, you wouldn't take on that kind of project," Blackburn says. "We had to be both rigorous and enterprising, and those are exactly the characteristics that Carol has. the combination is a great strength." For her part, Greider worked 12-hour days and supplemented her existing biochemistry knowledge with DNA cloning techniques and other skills needed for the project.

Nine months after she began the project, and after much trial and error finding the right substrate and assay, Greider identified the first signs of her enzyme. On Christmas Day in 1984, she developed one of her gels and saw a ladder of the characteristic Tetrahymena 6-base telomeric repeats - exactly the pattern that would be expected from a telomere-synthesizing enzyme.
Of course that was just the beginning. Greider and Blackburn had to rule out the possibility that the results were an artifact. It wasn't until June of 1985 that they were completely convinced that they had isolated the correct enzyme. Greider and Blackburn seem to have had a very good working relationship, which likely contributed to her success.

After receiving her PhD, Greider continued research on the biochemistry of telomerase and the biological function of telomeres at Cold Spring Harbor, first as an independent fellow and then as an Investigator. She moved her lab to the Department of Molecular Biology and Genetics at Johns Hopkins University School of Medicine in 1997 where she is continues her research today.

A few key publications:
Additional information about Carol Greider:
Of course Jack Szostak also made important contributions to the understanding of telomere function (among other achievements), and you can read about his work in some of the other posts in the blogsphere about the award:
1. Aglets, as any regular crossword puzzle worker knows.
2. Joseph Gall was (and is) well known for providing a supportive environment for women scientists in his lab. Many successful women scientists have been members of his lab, including Blackburn, Mary-Lou Pardue, Susan Gerbi, Joan Steitz and Virginia Zakian.
3. Quoted in Elizabeth Blackburn and the story of telomeres; deciphering the ends of DNA by Catherine Brady.

Photos: Left is Eliabeth Blackburn, right is Carol W. Greider. Both taken by Wikipedia Author Gerbil in March 2009. Licensed by Attribution Share Alike 3.0
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Wednesday, April 15, 2009

Maxine Singer: Biochemist

This week's woman of the week at CR4 is biochemist Maxine Singer, and it reminded me that I've had a post about her in my draft queue for a while that deserved to see the light of day (glow of the internet?).

Maxine Singer earned her PhD from Yale just a few years after Watson and Crick published the structure of DNA. Her thesis advisor, protein chemist Joseph Fruton, advised her to focus on the then-relatively obscure field of nucleic acid biochemistry. In 1956 she joined Leon Heppel's lab at NIH as a post doc, one of the few labs at the time that was focused on nucleic acid chemistry. Singer synthesized specific RNA base sequences that were used to determine how those sequences were translated into the amino acid sequences of polypeptides. She and her colleagues were pioneers in the fledgeling field of molecular biology. Two years later NIH offered her a job with a lab of her own.

Apparently both as a graduate student at Yale and as a postdoc in Heppel's lab, Singer didn't notice that she was treated any differently because she was a woman. As she said in a 1992 interview:

It was like being a woman. It wasn't an issue where I was; I was very lucky. I was very naive. In those days, people didn't discuss the problem, and I've never heard anybody discuss it. I've been very, very fortunate in college to be in a place where it didn't matter and where most of the people who were really smart in science were women, just by dumb luck, in my class. I went to graduate school in a place that was very welcoming of women and I had no idea it was any problem. And then I went to the NIH as a postdoc and within a year and a half they offered me a job, so I never ever worried about it and I didn't think about it.

In retrospect, the first time it had ever become an issue was when I realized I was having trouble getting postdocs to work in my lab and I went to the chairman of our department and said, "You have a lot of postdocs applying; how come I never got one in my lab?" And he was very straight with me; he said, "Nobody wants to come and work with a woman." So that was the first time that I really hit it, so I never had any kind of bad experiences, or I never noticed them. I'm not really sure which, but I didn't pay any attention, I was naive about it. So I wasn't looking.

But just because Singer didn't see it then doesn't mean there wasn't a problem. As she noted in that 1992 interview - which was taken at a symposium on DNA - she seemed to be a token woman speaker:
Sure, there's a problem. I was pretty dumb not to know it. But there is a problem. Look at this symposium. Liz Blackburn is one of the moderators, that is, she's introducing people, and I'm the only woman who's speaking in the whole program. And that's crazy, because there's a lot of terrific young women who are doing marvelous science and speak very well. It's kind of crazy that I'm the only one in the Symposium. And I suspect that that's why I'm here. They must have looked at the list that they had and said, oh, we can't do this, someone will complain.
(As an aside, I know from my own experience that it can be easy not to notice bias if you are really focused on your work, and you aren't blatantly affected by it. But it's like one of those magic eye pictures where it looks like a bunch of dots, and then, suddently the 3D image jumps out at you - and that 3D image is easier to see every time you look. And sometimes I wonder how I could miss something so obvious. But I digress.)

She and her husband, attorney David Singer, also had three children. She told a Washington Post columnist in 1960 ("Motherhood 'Myth' Miffs Mother Who Works" (pdf)) that she didn't think her children would "turn out terrible" because she spent little time with them on weekdays.
"... I think my children are happy, alive, interested in the world around them, and not difficult to deal with," she said last week.
Mrs. Singer always tries to get home on time from her job at the [NIAMD] to play with the children before their bedtime. Even when she is in the middle of an experiment and is "tempted to stay late" in the laboratory, she heads for home, "taking my paper work with me to do late at night. The men around here can work much longer hours than I, but that's one of the compromises one has to make."
The last part doesn't sound much different from what many women scientists who are also mothers say today.

Singer continued her research in nucleic acids and was intensely involved in developing related policy. In she co-chaired the 1973 Gordon conference where the potential risks of recombinant DNA technology and helped organize the famous 1975 Asilomar conference that assembled guidelines for use of the technology in research.

She eventually rose to head the Laboratory of Biochemistry at the National Cancer Institute. Even though much of her time was spent on administrative duties, the research in her lab during that period made significant contributions to understanding the structure of the human genome.
Singer had begun to focus on a large family of repeated stretches of mammalian DNA called LINEs, or long interspersed nucleotide elements, that are present with very little variation in the genomes of all mammals. Focusing on LINE-1, a DNA sequence repeated and interspersed thousands of times in human chromosomal DNA, Singer concluded that it is capable of transposition, or movement and insertion into new places on chromosomal DNA. (It is, in fact, to this point the only known human transposable element.) She studied the precise mechanism whereby LINE-1 replicates and disperses copies to new locations along the genome. She also posited that the insertion of transposable genetic elements into new genomic locations can induce mutations in nearby genes, and that LINE-1 transposition played an important role in genetic diseases. Researchers later confirmed Singer's suspicion when they found that LINE-1 insertions into a gene whose protein product is required for blood clotting are associated with hemophilia.
In 1988 she became President of the Carnegie Institution, a post she held until 2002. While she was there, she established the Carnegie Academy for Science Education (CASE), which worked to increase teachers' knowledge of science and provide them tools for teaching.

Over the years she has held a number of other posts, and amassed numerous awards and honors, including:
Read more about Maxine Singer:
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Sunday, December 21, 2008

Women in Science Link Roundup: December 21 Edition

Some of women in science-related blog posts and articles I've been reading the past few weeks, but never got around to blogging:

Life as a Woman Scientist

There have been a bunch of interesting posts at the Praxis "academic life" blog carnival. Both Praxis #4 at The Lay Scientist and Praxis #5 at Effortless Incitement include links discussing women in science.

Several recent posts at Inside Higher Ed's Mama, PhD blog have generated a lively blog discussion.

Ambivalent Academic brings up a usually taboo subject: the role of our hormonal cycles in the way we work and lead. There are a lot of personal stories and other discussion in the comments.

Bios and Awards

FGJ at the Feministing Community lists women in math and science she looks up to, and asks commenters to talk about their own favorite women scientists.

Ellen Kullman was named CEO of chemical giant DuPont. She is the first woman to lead a major public US chemical firm (via Jenn at Fairer Science).

The November HHMI Bulletin profiles biochemist Judith Kimble

The New York Times interviewed Renee Reijo Pera, professor of obstetrics and gynechology and director of Stanford's Center for Human Embryonic Stem Cell Research and Education


Stereotypes

Draw-A-Scientist Test: from seventh graders visiting Fermilab to adults in New York City's Madison Square Park, scientists are white and male.

Vince LiCata: "When Britney Spears Comes to My Lab"

In case you missed last month's discussion about women scientists, femininity and the double standard, you should read these posts and their comments:
Sadie at Jezebel found a picture of a good old-fashioned "Lab Technician Set For Girls"

Gender Gap

ScienceWoman has a list of ways to recruit women and minorities in a faculty search, and opens the comments to suggestions.

DrugMonkey rounds up the posts on the latest lack-of-gender-diversity-in-science discussion to make the blog rounds. There are also comments on those post, lots and lots of comments.

New York Times: What has driven women out of computer science?

Jenn @ FairerScience: Women and the Video Game Industry

FemaleScienceProfessor: Scientifiques avec Quelques Frontiéres (conference literature translated from French that states scientists are men), More Diverse Award Issues,

Mind Hacks: Shaking the foundations of the hidden bias test

Ilyka at Off Our Pedestals: Gosh, you ladies sure are touchy about Larry Summers! Or: Still assy after all these years

Feministing: The under-representation of female cardiologists

Fictional Women in STEM

The LA Times looked at the appeal of the characters on NCIS, including Pauley Perrette as forensic specialist Abby Sciuto. Perrett was working on her master's degree in criminal science when she decided to become a full-time actor.

Jessica Alba is currently filming An Invisible Sign of My Own:The film is a coming-of-age drama based on Aimee Bender's quirky novel about a 20-year-old loner named Mona Gray (Alba) who as a child turned to math for salvation after her father became ill. As an adult, Gray now teaches the subject and must help her students through their own crises.

In Frank Miller's movie adaptation of The Spirit, the character of Silken Floss has been "demoted" from nuclear physicist/surgeon to secretary. The original version too threatening perhaps? Hopefully she won't spend the whole movie pining for her boss.

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Wednesday, October 08, 2008

Nobel Snubs

The Nobel prizes have often been controversial, in part because it can only be awarded to three people in each category, and it is only given to living scientists. However, sometimes a scientist is simply left out. Scientific American has put together a list of 10 scientists who deserved a Nobel prize, but did not receive one. Three of the scientists who were "snubbed" are women:

Jocelyn Bell Burnell (1943- ) detected the first pulsars as a graduate student working under Antony Hewish at the University of Cambridge. Both she and Hewish were recognized for that work, so it came as a surprise to some in the astronomy community that when the first Nobel prize in physics was awarded to astronomers in 1974, it went to Hewish and his colleague Martin Ryle.

Many prominent astronomers expressed outrage, whereas others argued that she only collected data for Hewish to interpret. Burnell never contested the omission, but most reports indicate she contributed more than just the initial observations.
More info:
Lise Meitner (1878-1968) was an Austrian-born Jew who became only the second woman to earn a doctorate in physics from the University of Vienna. Early in her career she worked with chemist Otto Hahn on radioactive elements. She had continued success in her career, rising to the position of acting director of the Institute for Chemistry in Berlin. Her position became precarious when Adolf Hitler came to power, and evenutally fled Germany, ending up in Stockholm. She continued to correspond with other German scientists, and met with Hahn to plan experiments in nuclear fission. The political situation, however, made it impossible for her to publish jointly with Hahn. Meitner made a number of contributions to nuclear physics in addition to that collaboration: and her nephew Otto Frisch were the first to describe how the nucleus of an atom could be split into smaller parts, and she was the first to realize that nuclear fission could lead to an enormously explosive chain reaction.
Historians say that Hahn initially indicated that he intended to credit Meitner when it was safe to do so but that, in the end, he took sole credit, claiming that the discovery was his alone. Hahn received the 1944 Nobel Prize in Chemistry; Meitner was nominated multiple times in both the physics and chemistry categories, but the award always eluded her. Many Nobel omissions are debatable, but, most physicists today agree that Meitner was robbed, says Phillip Schewe, chief science writer for the American Institute of Physics.
More info:
Last, but not least, is probably the best known non-recipients of a Nobel, Rosalind Franklin. In the early 1950s Franklin was a research associate studying the structure of DNA by X-ray diffraction at King's College London. James Watson and Francis Crick at Cambridge University used some of her data, along that of her colleague Maurice Wilkins, to derive their three-dimensional model of DNA structure that was published in 1953. She wasn't really snubbed for her contribution, because she died in 1958, four years before Watson, Crick and Wilkens were awarded the Nobel in Physiology or Medicine.
In his book, The Nobel Prize: A History of Genius, Controversy and Prestige, Burton Feldman suggests that, had she been alive, Franklin almost assuredly would have received the prize over Wilkins, whose contribution was deemed nominal by most in the field. In a 2003 interview with Scientific American, Watson suggested she and Wilkins might have shared a separate prize for chemistry, thereby allowing all four of them to receive the award.
More information:
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While nominations for the Nobel Prize are made in secret, the Nobel Foundation has released a database of nominations made for the Nobel Prize in Physiology or Medicine between 1901 and 1951. A search of the database by gender turns up a list of other women scientists who were nominated by never received an award (if you do a search, note that the database is a bit wonky because there are some men who have been indexed as "female".) A sampling:
  • CĂ©cile Vogt (1875-1962) was a French neurologist who studied the structure of the brain. She was nominated along with her husband Oskar Vogt.
  • Gladys H. Dick was a Chicago doctor and bacteriologist, who, along with her husband George F. Dick, worked on the "etiology, prevention and cure of scarlet fever". It has been speculated that they were not awarded the Noble prize because the fact that they obtained a patent for their scarlet fever test was frowned upon by the Nobel selection committee.
    Read their paper: Dick GF and Dick GH "Scarlet Fever" Am J Public Health (NY) 14(12): 1022-1028 (1924).
  • Helen B. Taussic (1898-1986) was a professor of petriatrics at Johns Hopkins Medical School. She and Alfred Blalock developed a pioneering cardiac surgical procedure, the Blalock-Taussig shunt, to treat infants suffering from blue baby syndrome. She received the Presidental Medal of Freedom in 1964 and was the first female president of the American Heart Association.
Hopefully the Nobel Foundation will also share the nomination information for physics and chemistry.

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Friday, July 25, 2008

Blogroll Update

Here are some new blogs on the women in science blogroll.

General and Miscellaneous

The Alternative Scientist is a group blog about "alternative career options for scientists. There are many career paths for a scientist in addition to the traditional tenure track, and the goal of this blog is to provide a forum for open and honest discussions about the various possibilities." Women who blog there include Bean mom "an ex-scientist mommy adjusting to stay-at-home-momhood" (personal blog: The Bean Chronicles), CAE, who has a PhD in molecular cell biology and works in industry (personal blog: VWXYNot?), Mad Hatter, a bioscience faculty member, (personal blog: A Mad Tea-Party), science cog "a newly appointed tenure-track assistant professor in the mathematical sciences at a large research university in the United States" (personal blog: Ivory Tower Tales), The Mad Chemist a PhD chemist working in industry (personal blog: Mad Chemist Chick), and Scientist Mother, who is "pursuing my PhD at a university in Western Canada" (personal blog: ScientistMother: raising my own little experiment). They are interested in hearing from you too:

We welcome anyone who is interested in discussing alternative science careers, whether it be to share information, advice, musings, or personal experiences. You do not have to be in an alternative science position to join us!
There is information in the blog's sidebar on how to contact them.

The Powerful Mind Coaching Blog is the professional outlet of Mary Coussons-Read, Professor of Psychology and Health and Behavioral Science at the University of Colorado Denver, who provides "cohesive life coaching for parents in academia". She says:
I founded Powerful Mind to provide what I never had as a junior faculty member-advice and support from folks who were my advocates to help me get where I needed to go professionally and personally. Now that I’m a Full Professor and Associate Dean, I’ve been on both sides of the tenure and promotion process, and have (and still do) struggled with simultaneously being a Professor, Partner, and Parent. I am passionate about working with clients to help avoid the pitfalls of balancing academic and family life. At the core of Powerful Mind is my commitment to providing a safe, professional, and deeply supportive environment to help parents who are working to succeed as academic professionals.
And, while her mission is official about "parents" in academia, her blogging is mostly about being a mom.

{teen}skepchick is the younger sister blog to skepchick. It's got all the skepticality of skepchick, but with teenaged bloggers, a younger target audience and less explicit content and language. For more details, check out their welcome post.

Cloud writes at Wandering Scientist . She says "I'm a scientist/techie and a Mommy. Pre-Pumpkin, Hubby and I loved to travel. Someday, we may even travel again. My blog has as many interests as I do."

Now, what was I doing? is the blog of JaneB, "a female scientist with an academic post in NorthernCity in England. I'm single and share a small house in MarketTown with a 'second-hand' middle-aged and opinionated cat (Furball4)."

Life Sciences and Scientists

Samia blogs at 49 percent. She's "a senior biochemistry major with plans for graduate studies in a related field. Right now I'm working as an intern at an EPA laboratory [. . .]"

Professor in Training is "a (soon to be) new (female) Assistant Professor in the biological sciences at Really Big U. After losing my social life (and skills) during my PhD, I've managed to reconstruct something resembling a life during my postdoc years and am hoping that the move to the tenure track won't lead to a nervous breakdown. I guess only time will tell ..."

Bug Girl blogs about entomology, gardening, ranting and nerdery. She has a PhD in entomology and "[a]fter a decade or so as a professor, she decided to jump the academic ship and went on to be a dot.com designer, web mistress, forensic consultant, and general attention whore." She also guest blogs at skepchick.

Panthera studentessa El is "an undergraduate zoology student with a cultural studies minor at a large research university in the midwest (technically I'm done with my degree, but I'm taking an extra year to do research and lab work before I begin applying to graduate schools)"

Pamela Ronald blogs at Tomorrow's Table. Ronald is a Professor of Plant Pathology and Chair of the Plant Genomics Program at the University of California, Davis, where she studies the role that genes play in a plant’s response to its environment. She uses her blog to "explore topics related to genetics, food and farming."

academia and me is the blog of female in academia who is "i
n the biological sciences, currently in the last phase of writing my PhD thesis. There is also a male in academia, too. We have two little children and try to one day be one of those double-career couples who actually manage to combine family and science."

Physical Sciences and Scientists

Mad Chemist Chick is "a Ph.D. organic chemist who recently escaped from the treacherous halls of academe into the Promised Land of Industry."


Computer Science and Mathematics

Tech Her is the blog of Telle Whitney, the CEO of the Anita Borg Institute for Women and Technology. "Telle is a senior technical woman who is dedicated to the recruitment, retention and advancement of technical women in high tech and academia."

Confessions of a Mathematician is the blog of Courtney, "a math graduate student at the University of Nebraska-Lincoln. She is also the author of the critically acclaimed (or not...) math comic, Brown Sharpie."

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Saturday, July 05, 2008

Women in Science Link Roundup: July 5 Edition

Some miscellaneous links from the past couple of weeks:

At Feministe: The Ivory Ceiling: How Academia Keeps Women Out

Razib at Gene Expression has a post about the political views of professors, which shows "the majority of professors ascribe the underrepresentation of females in science & engineering not to discrimination".

Writer Leslie Warner describes her experience at the "Frontiers of Brain Science" workshop at MIT and her crush on neurobiologist Rebecca Saxe after hearing her presentation.

RSC Publishing has an interview with Patricia Bassereau, who leads the membranes and cellular functions group in the physical chemistry department at the Curie Institute in Paris.

Leslie Madsen Brooks at BlogHer has 10 tips for visiting museums with girls.

At Why All Things Lead to Chaos there's a post on (Women) Engineers Demystified (via Gena Haskett)

Listen to a segment on Science Friday about "Frequency Hopping" the play about Heddy Lamarr.

ABC News on "Women Dropping Out of Science Careers"

Zuska writes about the use of inclusive language.

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Wednesday, June 25, 2008

Alice Ting: Innovative Chemist

MIT Associate Professor Alice Ting does beautiful science at the crossroads of chemistry and biology. She and her lab have developed a method of connecting small fluorescent labels to proteins in living cells. Named one of the 2006 Young Innovators by Technology Review, her work makes her one of the top young chemists in the US:

"Alice Ting is a true innovator and is one of the best chemists of her generation," says Timothy Swager, chair of MIT's chemistry department. "Scores of research groups around the world are already applying her methods." One of Ting's latest projects is to fluorescently image the junction between nerve cells, illuminating a biochemical process that appears to play a key role in learning and memory. So it may be possible one day to see an actual film of how a brain learns. "Mammalian cells are so beautiful and funky," says Ting--with the appreciation of a true director.
You can watch movies of living cells on the Ting Lab web site (there is also video of a recent talk she gave at Stanford).

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Tuesday, June 17, 2008

25 Years of American Women in Space


On June 18, 1983 the Space Shuttle Challenger was launched carrying astronaut Sally Ride, the first American woman astronaut. In honor of that anniversary, The Scotsman looks at the major milestones of women in space since Yuri Gagarin first orbited the Earth in 1961.

  • 1963: Valentina Tereshkova was the first woman in space. She was selected for the Soviet space program based on politics, rather than having any piloting or scientific background. However, after her flight, she graduated as a cosmonaut engineer from the Zhokovsky Air Force Academy, and, in 1977 received her engineering doctorate degree.
  • 1982 (note the almost 20-year gap): Svetlana Savitskaya became the second woman in space, and the first to take a space walk. Savitskaya was a test pilot and sports pilot.
  • 1983: Sally Ride became the first American woman in space. Ride earned her doctorate in physics shortly before being accepted as an astronaut candidate. In 1989 she joined the faculty of the University of California at San Diego as a Professor of Physics and Director of the California Space Institute. She now runs her own company, Sally Ride Science, that focuses on introducing girls to science. SRS runs festivals, science camps, and other programs across the US.
  • 1991: Helen Sharman became the first Brit in space, riding a Soviet Soyuz space capsule to the Mir space station. Sharman was a chemist for the Mars chocolate company who was selected after responding to an advertisement looking for astronauts "no experience required." She currently works as a broadcaster and lecturer in science education. Watch her lecture about her personal experiences in space and the science of spaceflight.
  • 1992: Mae Jemison became the first black woman in space. Jemison's background was in medical research and engineering, and conducted a bone-cell experiment during the mission. After leaving NASA, she started her own company, the Jemison Group, that "researches, markets, and develops science and technology for daily life" and founded the Dorothy Jemison Foundation for Excellence which runs (ran?) science camps for teenagers. Her current business is the BioSentient corporation, a medical technology company. (Jemison was also the first real astronaut to appear on Star Trek.)
  • 1995: Eileen Collins became the first woman to pilot the Space Shuttle. Before joining NASA she was and Air Force aircraft commander and instructor pilot. She holds a masters degree in operations research and a masters degree in space systems management. In 2005 she commanded the Discovery shuttle mission - the first woman to hold that position. She retired from NASA in 2006.
  • 2007: Biochemist Peggy Whitson became the first woman to command the International Space Station. She returned to Earth on April 21 of this year, breaking the American record for time spent in space.
Read the article for more.

For more information about Sally Ride, you can download a pdf version of her book Blastoff! about adventures in outer space, find out her answers to girls' questions, or join the 25th Anniversary Celebration at the "Earth Then, Earth Now: Our Changing Climate" conference at the NOAA Science Center in Sliver Spring, Maryland.

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Tuesday, June 10, 2008

Vote for the "most celebrated female scientist of all time"

L'Oréal's For Women in Science Program is sponsoring a new UK website where you can vote for the most influential woman scientist. The candidates span more than a thousand years* and a wide range of scientific specialties:

  • Mary Anning (1799-1847), paleontologist and "the greatest fossilist the world ever knew"
  • Hertha Ayrton (1854-1923), mathematician, electrical engineer and suffragette
  • Jocelyn Bell Burnell (1943- ), astrophysicist who discovered the first radio pulsars
  • Elizabeth Blackwell (1821-1910), first woman to graduate from medical school
  • Linda Buck (1947-), biologist who helped figure out how the human olfactory (smell) system works
  • Annie Jump Cannon (1863-1941), astronomer who studied the spectra of the stars
  • Rachel Carson (1907-1964), biologist who campaigned for the environment
  • Gerty Cori (1896-1957), biochemist who studied energy metabolism in the human body
  • Marie Curie (1867-1934), physicist and chemist who studied radioactivity
  • Ann Dowling, professor of mechanical engineering who works on "boys stuff - aeroplanes, submarines and oil exploration"
  • Gertrude Elion (1918-1999), innovative pharmacologist who produced new drugs for leukemia, malaria, and herpes
  • Dian Fossey (1932-1985), expert of the great apes in Rwanda, who was murdered because by poachers
  • Rosalind Franklin (1920-1958), X-ray crystallographer whose work was important in determining the structure of DNA
  • Elizabeth Garrett Anderson (1836-1917), pioneering physician and campaigner for women's rights
  • Sophie Germain (1776-1831), mathematician who was forced to take on the identity of a man
  • Maria Goeppert Mayer (1906-1977), physicist who studied the structure of the atomic nucleus
  • Jane Goodall (1934- ), expert on chimpanzee behavior and advocate for wildlife conservation
  • Alice Hamilton (1969-1970), doctor and social reformer who founded the science of occupational medicine
  • Caroline Herschel (1750-1848), astronomer who discovered comets and stars, first woman (along with Mary Somerville) awarded membership in the Royal Society
  • Grace Hopper (1906-1992), pioneer computer scientist and Rear Admiral in the US Navy
  • Dorothy Hodgkin (1910-1994), one of the main founders of protein crystallography
  • Hypatia of Alexandria (370-415), mathematician and astronomer who was killed by a mob, who "felt threatened by her scholarship and scientific knowledge"
  • Irene Joliot-Curie (1897-1956), daughter of Pierre and Marie Curie who discovered artificially created radioactivity
  • Hedy Lamarr (1913-2000), actress and inventor of "frequency hopping" method that is used in modern communication technology
  • Rita Levi-Montalcini (1909 - ), biologist who first isolated nerve grown factor
  • Kathleen Lonsdale (1903-1971), crystallographer and first woman elected a Fellow of the Royal Society
  • Ada, Countess Lovelace (1915-1852), founder of scientific computing
  • Barbara McClintock (1902-1992), geneticist who discovered "jumping genes"
  • Anne McLaren (1927-2007), geneticist who "paved the way for development of in vitro fertilisation"
  • Lise Meitner (1878-1968), physicist who described nuclear fission
  • Maria Mitchell (1818-1889), pioneering astronomer
  • Christiane Nusslein Volhard (1942 - ), developmental biologist and Director of the Max Planck Institute for Experimental Biology
  • Florence Nightingale (1820-1910), nurse and noted statistician, who was the first female member of the Royal Statistical Society
  • Cecilia Payne-Gaposchkin (1900-1979), astronomer who showed the sun is mainly composed of hydrogen
  • Beatrix Potter (1866-1943), respected mycologist and children's book author
  • Emily Roebling (1844-1903), "silent engineer of the Brooklyn Bridge"
  • Nancy Rothwell (1957- ), neuroscientist who studies brain injury
  • Mary Somerville (1780-1872), "the first popular science writer"
  • Rosalyn Yalow (1921-), "medical physicist" who "won a Nobel prize for her work developing the radioimmunoassay technique"
I think it's hard to compare the Nobel Prize winners (Buck, Cori, Curie, Elion, Goeppert Mayer, Hodgkin, Joliet-Curie, Levi-Montalcini, McClintock, Nusslein Volhard, Yalow), to the 19th and 20th century women who were social activists as well as scientists. You can make your choice at www.womeninscience.co.uk**

* But mostly from the 19th and 20th centuries.

** I can't actually get the "Vote Now" button to work. Maybe the site doesn't like Macs? or maybe you have to be in the UK? I don't know.

(via The Telegraph)
Image: "Miss Mary Anning, the celebrated geologist of Lyme Regis"
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