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  1. From Virus Research to Molecular Biology: Tobacco Mosaic Virus in Germany, 1936-1956.Jeffrey Lewis - 2004 - Journal of the History of Biology 37 (2):259-301.
    In 1937, a group of researchers in Nazi Germany began investigating tobacco mosaic virus with the hope of using the virus as a model system for understanding gene behavior in higher organisms. They soon developed a creative and interdisciplinary work style and were able to continue their research in the postwar era, when they made significant contributions to the history of molecular biology. This group is significant for two major reasons. First, it provides an example of how researchers were able (...)
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  • Toward a History of Epistemic Things: Synthesizing Proteins in a Test Tube.[author unknown] - 1999 - Journal of the History of Biology 32 (3):563-565.
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  • After the Double Helix.Angela N. H. Creager & Gregory J. Morgan - 2008 - Isis 99 (2):239-272.
    ABSTRACT Rosalind Franklin is best known for her informative X-ray diffraction patterns of DNA that provided vital clues for James Watson and Francis Crick's double-stranded helical model. Her scientific career did not end when she left the DNA work at King's College, however. In 1953 Franklin moved to J. D. Bernal's crystallography laboratory at Birkbeck College, where she shifted her focus to the three-dimensional structure of viruses, obtaining diffraction patterns of Tobacco mosaic virus (TMV) of unprecedented detail and clarity. During (...)
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  • Phosphorus-32 in the Phage Group: radioisotopes as historical tracers of molecular biology.Angela N. H. Creager - 2009 - Studies in History and Philosophy of Science Part C: Studies in History and Philosophy of Biological and Biomedical Sciences 40 (1):29-42.
    The recent historiography of molecular biology features key technologies, instruments and materials, which offer a different view of the field and its turning points than preceding intellectual and institutional histories. Radioisotopes, in this vein, became essential tools in postwar life science research, including molecular biology, and are here analyzed through their use in experiments on bacteriophage. Isotopes were especially well suited for studying the dynamics of chemical transformation over time, through metabolic pathways or life cycles. Scientists labeled phage with phosphorus-32 (...)
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  • Revisiting the “Quiet Debut” of the Double Helix: A Bibliometric and Methodological note on the “Impact” of Scientific Publications.Yves Gingras - 2010 - Journal of the History of Biology 43 (1):159-181.
    The object of this paper is two-fold: first, to show that contrary to what seem to have become a widely accepted view among historians of biology, the famous 1953 first Nature paper of Watson and Crick on the structure of DNA was widely cited — as compared to the average paper of the time — on a continuous basis from the very year of its publication and over the period 1953–1970 and that the citations came from a wide array of (...)
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  • Cancer, Viruses, and Mass Migration: Paul Berg’s Venture into Eukaryotic Biology and the Advent of Recombinant DNA Research and Technology, 1967–1980.Doogab Yi - 2008 - Journal of the History of Biology 41 (4):589-636.
    The existing literature on the development of recombinant DNA technology and genetic engineering tends to focus on Stanley Cohen and Herbert Boyer's recombinant DNA cloning technology and its commercialization starting in the mid-1970s. Historians of science, however, have pointedly noted that experimental procedures for making recombinant DNA molecules were initially developed by Stanford biochemist Paul Berg and his colleagues, Peter Lobban and A. Dale Kaiser in the early 1970s. This paper, recognizing the uneasy disjuncture between scientific authorship and legal invention (...)
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  • Peace Propaganda and Biomedical Experimentation: Influential Uses of Radioisotopes in Endocrinology and Molecular Genetics in Spain.María Jesús Santesmases - 2006 - Journal of the History of Biology 39 (4):765-794.
    A political discourse of peace marked the distribution and use of radioisotopes in biomedical research and in medical diagnosis and therapy in the post-World War II period. This occurred during the era of expansion and strengthening of the United States' influence on the promotion of sciences and technologies in Europe as a collaborative effort, initially encouraged by the policies and budgetary distribution of the Marshall Plan. This article follows the importation of radioisotopes by two Spanish research groups, one in experimental (...)
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  • Lords of the Fly: Drosophila Genetics and the Experimental Life.Robert E. Kohler - 1995 - Journal of the History of Biology 28 (1):167-170.
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  • The Century of the Gene.Evelyn Fox Keller - 2001 - Journal of the History of Biology 34 (3):613-615.
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  • Félix d'Herelle and the Origins of Molecular Biology.William C. Summers - 2000 - Journal of the History of Biology 33 (1):191-194.
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  • A History of Molecular Biology.Michel Morange & Matthew Cobb - 1999 - Journal of the History of Biology 32 (3):568-570.
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  • (1 other version)The Laboratory Technology of Discrete Molecular Separation: The Historical Development of Gel Electrophoresis and the Material Epistemology of Biomolecular Science, 1945–1970.Howard Hsueh-Hao Chiang - 2009 - Journal of the History of Biology 42 (3):495-527.
    Preparative and analytical methods developed by separation scientists have played an important role in the history of molecular biology. One such early method is gel electrophoresis, a technique that uses various types of gel as its supporting medium to separate charged molecules based on size and other properties. Historians of science, however, have only recently begun to pay closer attention to this material epistemological dimension of biomolecular science. This paper substantiates the historiographical thread that explores the relationship between modern laboratory (...)
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  • Robert William Holley.M. Morange - 2007 - In Noretta Koertge (ed.), New Dictionary of Scientific Biography. Thomson Gale. pp. 3.
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  • The development of a scientific specialty: The phage group and the origins of molecular biology.Nicholas C. Mullins - 1972 - Minerva 10 (1):51-82.
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  • The Paradox of the Phage Group: Essay Review. [REVIEW]Angela N. H. Creager - 2010 - Journal of the History of Biology 43 (1):183 - 193.
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  • Exploratory Experimentation and the Role of Histochemical Techniques in the Work of Jean Brachet, 1938-1952.Richard M. Burian - 1997 - History and Philosophy of the Life Sciences 19 (1):27 - 45.
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  • Molecular Biologists, Biochemists, and Messenger RNA: The Birth of a Scientific Network. [REVIEW]Jean-Paul Gaudillière - 1996 - Journal of the History of Biology 29 (3):417 - 445.
    This paper investigated the part played by collaborative practices in chaneling the work of prominent biochemists into the development of molecular biology. The RNA collaborative network that emerged in the 1960s in France encompassed a continuum of activities that linked laboratories to policy-making centers. New institutional frameworks such as the DGRST committees were instrumental in establishing new patterns of funding, and in offering arenas for multidisciplinary debates and boundary assessment. It should be stressed however, that although this collaborative network was (...)
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  • Paris–New York roundtrip: transatlantic crossings and the reconstruction of the biological sciences in post-war France.Jean-Paul Gaudillière - 2002 - Studies in History and Philosophy of Science Part C: Studies in History and Philosophy of Biological and Biomedical Sciences 33 (3):389-417.
    During the first years of the post-war era, many French scientists travelled in the United States. As they looked for a reference to be used in rebuilding their own scientific landscape, their diaries say as much about the rise of the American biomedical complex as they do about their perception of research in the country. In order to illustrate how the French biologists adopted, competed with, or challenged the American model and how transatlantic exchanges played a critical role in the (...)
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  • A New Insight into Sanger’s Development of Sequencing: From Proteins to DNA, 1943–1977.Miguel García-Sancho - 2010 - Journal of the History of Biology 43 (2):265-323.
    Fred Sanger, the inventor of the first protein, RNA and DNA sequencing methods, has traditionally been seen as a technical scientist, engaged in laboratory bench work and not interested at all in intellectual debates in biology. In his autobiography and commentaries by fellow researchers, he is portrayed as having a trajectory exclusively dependent on technological progress. The scarce historical scholarship on Sanger partially challenges these accounts by highlighting the importance of professional contacts, institutional and disciplinary moves in his career, spanning (...)
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  • Some Archival Resources for Research on the Rouge-Cloitre Group.Denis Thieffry & Richard Burian - 1997 - History and Philosophy of the Life Sciences 19 (1):141-142.
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  • Book Reviews. [REVIEW]Garland E. Allen & Roy M. Macleod - 2003 - Journal of the History of Biology 36 (2):405-431.
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