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  1. Feminist Philosophy of Biology.Carla Fehr & Letitia Meynell - 2024 - Stanford Encyclopedia of Philosophy.
    Feminist philosophers of biology bring the tools of feminist theory, and in particular the tools of feminist philosophy of science, to investigations of the life sciences. While the critical examination of the categories of sex and gender (which will be explained below) takes a central place, the methods, ontological assumptions, and foundational concepts of biology more generally have also enjoyed considerable feminist scrutiny. Through such investigations, feminist philosophers of biology reveal the extent to which the theory and practice of particular (...)
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  • The Evolution of Complexity.Mark Bedau - 2009 - In Barberousse Anouk, Morange M. & Pradeau T. (eds.), Mapping the Future of Biology. Boston Studies in the Philosophy of Science, vol 266. Springer.
  • Reflexing Complexity.Brian Wynne - 2005 - Theory, Culture and Society 22 (5):67-94.
    Dominant social sciences approaches to complexity suggest that awareness of complexity in late-modern society comes from various recent scientific insights. By examining today’s plant and human genomics sciences, I question this from both ends: first suggesting that typical public culture was already aware of particular salient forms of complexity, such as limits to predictive knowledge ; second, showing how up-to-date genomics science expresses both complexity and its opposites, predictive determinism and reductionism, as coexistent representations of nature and scientific knowledge. I (...)
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  • Irene Manton, Erwin Schrödinger and the Puzzle of Chromosome Structure.Nicola Williams - 2016 - Journal of the History of Biology 49 (3):425-459.
    Erwin Schrödinger’s 1944 publication What is Life? is a classic of twentieth century science writing. In his book, Schrödinger discussed the chromosome fibre as the seat of heredity and variation thanks to a hypothetical aperiodic structure – a suggestion that famously spurred on a generation of scientists in their pursuit of the gene as a physico-chemical entity. While historical attention has been given to physicists who were inspired by the book, little has been written about its biologist readers. This paper (...)
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  • The human genome project: Towards an analysis of the empirical, ethical, and conceptual issues involved. [REVIEW]Marga Vicedo - 1992 - Biology and Philosophy 7 (3):255-278.
    In this paper I claim that the goal of mapping and sequencing the human genome is not wholly new, but rather is an extension of an older project to map genes, a central aim of genetics since its birth. Thus, the discussion about the value of the HGP should not be posed in global terms of acceptance or rejection, but in terms of how it should be developed. The first section of this paper presents a brief history of the project. (...)
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  • Institutionalizing molecular biology in post-war Europe: a comparative study.Bruno J. Strasser - 2002 - Studies in History and Philosophy of Science Part C: Studies in History and Philosophy of Biological and Biomedical Sciences 33 (3):515-546.
  • Recent science and its exploration: the case of molecular biology.Hans-Jörg Rheinberger - 2009 - Studies in History and Philosophy of Science Part C: Studies in History and Philosophy of Biological and Biomedical Sciences 40 (1):6-12.
  • Making a machine instrumental: RCA and the wartime origins of biological electron microscopy in America, 1940–1945.Nicolas Rasmussen - 1996 - Studies in History and Philosophy of Science Part A 27 (3):311-349.
  • Confidence, tolerance, and allowance in biological engineering: The nuts and bolts of living things.Manuel Porcar, Antoine Danchin & Víctor de Lorenzo - 2015 - Bioessays 37 (1):95-102.
    The emphasis of systems and synthetic biology on quantitative understanding of biological objects and their eventual re-design has raised the question of whether description and construction standards that are commonplace in electric and mechanical engineering are applicable to live systems. The tuning of genetic devices to deliver a given activity is generally context-dependent, thereby undermining the re-usability of parts, and predictability of function, necessary for manufacturing new biological objects. Tolerance and allowance are key aspects of standardization that need to be (...)
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  • Knowledge, bodies, and values: Reproductive technologies and their scientific context.Helen E. Longino - 1992 - Inquiry: An Interdisciplinary Journal of Philosophy 35 (3-4):323 – 340.
    This essay sets human reproductive technologies in the context of biological research exploiting the discovery of the structure of the DNA molecule in the early 1950s. By setting these technological developments in this research context and then setting the research in the framework of a philosophical analysis of the role of social values in scientific inquiry, it is possible to develop a perspective on these technologies and the aspirations they represent that is relevant to the concerns of their social critics.
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  • Co-existing Notions of Research Quality: A Framework to Study Context-specific Understandings of Good Research.Liv Langfeldt, Maria Nedeva, Sverker Sörlin & Duncan A. Thomas - 2020 - Minerva 58 (1):115-137.
    Notions of research quality are contextual in many respects: they vary between fields of research, between review contexts and between policy contexts. Yet, the role of these co-existing notions in research, and in research policy, is poorly understood. In this paper we offer a novel framework to study and understand research quality across three key dimensions. First, we distinguish between quality notions that originate in research fields and in research policy spaces. Second, drawing on existing studies, we identify three attributes (...)
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  • A successor to the realism/antirealism question.Janet A. Kourany - 2000 - Philosophy of Science 67 (3):101.
    The realism/antirealism controversy has gone on for centuries, and gives every indication that it will continue to go on for centuries. Dismayed, I take a closer look at it. I find that the question it poses--very roughly, whether scientific knowledge is true (approximately true, put forward as true, etc.) or only useful (empirically adequate, a convenient method of representation, etc.)--actually suppresses socially critical thought and discussion about science (e.g., concerning whether scientific knowledge is sexist or racist or socially harmful in (...)
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  • The Body of a New Machine: Situating the Organism between Telegraphs and Computers.Evelyn Fox Keller - 1994 - Perspectives on Science 2 (3):302-323.
    Genes and messages have a long association in biology, dating back at least to Weismann. But, through most of this history, even with the dramatic concreteness that molecular biology lent to this association, the image dominating most thinking about messages was drawn from the nineteenth-century technology of the telegraph. In the mid-twentieth century, a new technology, the computer, arrived to displace the telegraph. With that displacement, the meanings of many terms—of “message,” “information,” “organization,” indeed, “organism” —have, over the past few (...)
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  • Ethics as rule systems: The case of genetically engineered organisms.Carlo C. Jaeger & Alois J. Rust - 1994 - Inquiry: An Interdisciplinary Journal of Philosophy 37 (1):65 – 84.
    Like every major new technology, genetic engineering is affecting the hopes and fears of many people. The risks involved are perceived differently by different groups. One group regards genetic engineering as a simple extension of older techniques with no special risks, e.g. traditional breeding. This conservative denial of special risks is confronted with a different kind of conservatism from a group which, in the name of the preservation of nature, opposes any kind of genetic engineering. A third group, rooted in (...)
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  • 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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  • Recent science and its exploration: the case of molecular biology.Hans-Jörg Rheinberger - 2009 - Studies in History and Philosophy of Science Part C: Studies in History and Philosophy of Biological and Biomedical Sciences 40 (1):6-12.
    This paper is about the interaction and the intertwinement between history of science as a historical process and history of science as the historiography of this process, taking molecular biology as an example. In the first part, two historical shifts are briefly characterized that appear to have punctuated the emergence of molecular biology between the 1930s and the 1980s, one connected to a new generation of analytical apparatus, the other to properly molecular tools. The second part concentrates on the historiography (...)
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  • The molecular vista: current perspectives on molecules and life in the twentieth century.Mathias Grote, Lisa Onaga, Angela N. H. Creager, Soraya de Chadarevian, Daniel Liu, Gina Surita & Sarah E. Tracy - 2021 - History and Philosophy of the Life Sciences 43 (1):1-18.
    This essay considers how scholarly approaches to the development of molecular biology have too often narrowed the historical aperture to genes, overlooking the ways in which other objects and processes contributed to the molecularization of life. From structural and dynamic studies of biomolecules to cellular membranes and organelles to metabolism and nutrition, new work by historians, philosophers, and STS scholars of the life sciences has revitalized older issues, such as the relationship of life to matter, or of physicochemical inquiries to (...)
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  • Wendell Stanley's dream of a free-standing biochemistry department at the University of California, Berkeley.Angela N. H. Creager - 1996 - Journal of the History of Biology 29 (3):331-360.
    Scientists and historians have often presumed that the divide between biochemistry and molecular biology is fundamentally epistemological.100 The historiography of molecular biology as promulgated by Max Delbrück's phage disciples similarly emphasizes inherent differences between the archaic tradition of biochemistry and the approach of phage geneticists, the ur molecular biologists. A historical analysis of the development of both disciplines at Berkeley mitigates against accepting predestined differences, and underscores the similarities between the postwar development of biochemistry and the emergence of molecular biology (...)
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  • Radiobiology in the Atomic Age: Changing Research Practices and Policies in Comparative Perspective. [REVIEW]Angela N. H. Creager & María Jesús Santesmases - 2006 - Journal of the History of Biology 39 (4):637 - 647.
    This essay introduces a special collection of papers by Angela Creager, Soraya de Chadarevian, Karen Rader, Jean-Paul Gaudillière, and María Jesús Santesmases on the theme "Radiobiology in the Atomic Age.".
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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 Logic of Life, the Creation of the European Molecular Biology Laboratory, and the Relation between Molecular Biology and Physics.Daniele Cozzoli - 2023 - Hopos: The Journal of the International Society for the History of Philosophy of Science 13 (2):463-482.
    In The Logic of Life, François Jacob reconstructed the history of heredity from the seventeenth century to the present, emphasizing the role of physics in the development of biology. Quantum mechanics provided questions, methods, and techniques to molecular biologists. In the 1960s, physics also provided the organizational model. Jacob worked on the creation of the European Molecular Biology Laboratory, on the model of CERN (European Organization for Nuclear Research). I argue that reflection on the relation between molecular biology and physics (...)
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  • The Age of Molecular Biology. [REVIEW]Daniele Cozzoli - 2022 - Centaurus 64 (4):947-952.
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  • 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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  • Institutionalizing molecular biology in post-war Europe: a comparative study.Bruno J. Strasser - 2002 - Studies in History and Philosophy of Science Part C: Studies in History and Philosophy of Biological and Biomedical Sciences 33 (3):515-546.
    The intellectual origins of molecular biology are usually traced back to the 1930s. By contrast, molecular biology acquired a social reality only around 1960. To understand how it came to designate a community of researchers and a professional identity, I examine the creation of the first institutes of molecular biology, which took place around 1960, in four European countries: Germany, the United Kingdom, France, and Switzerland. This paper shows how the creation of these institutes was linked to the results of (...)
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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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  • Bringing physics to bear on the phenomenon of life: the divergent positions of Bohr, Delbrück, and Schrödinger.Andrew T. Domondon - 2006 - Studies in History and Philosophy of Science Part C: Studies in History and Philosophy of Biological and Biomedical Sciences 37 (3):433-458.
    The received view on the contributions of the physics community to the birth of molecular biology tends to present the physics community as sharing a basic level consensus on how physics should be brought to bear on biology. I argue, however, that a close examination of the views of three leading physicists involved in the birth of molecular biology, Bohr, Delbrück, and Schrödinger, suggests that there existed fundamental disagreements on how physics should be employed to solve problems in biology even (...)
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  • Transcending disciplines: Scientific styles in studies of the brain in mid-twentieth century America.Tara H. Abraham - 2012 - Studies in History and Philosophy of Science Part C: Studies in History and Philosophy of Biological and Biomedical Sciences 43 (2):552-568.
  • Transcending disciplines: Scientific styles in studies of the brain in mid-twentieth century America.Tara H. Abraham - 2012 - Studies in History and Philosophy of Science Part C: Studies in History and Philosophy of Biological and Biomedical Sciences 43 (2):552-568.
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  • Nicolas Rashevsky's Mathematical Biophysics.Tara H. Abraham - 2004 - Journal of the History of Biology 37 (2):333 - 385.
    This paper explores the work of Nicolas Rashevsky, a Russian émigré theoretical physicist who developed a program in "mathematical biophysics" at the University of Chicago during the 1930s. Stressing the complexity of many biological phenomena, Rashevsky argued that the methods of theoretical physics -- namely mathematics -- were needed to "simplify" complex biological processes such as cell division and nerve conduction. A maverick of sorts, Rashevsky was a conspicuous figure in the biological community during the 1930s and early 1940s: he (...)
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