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  1. 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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  • 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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  • What kinds of kind are the senses?Brian L. Keeley - unknown
    In Western common sense, one speaks of there being five human senses, a claim apparently challenged by the biological and psychological sciences. Part of this challenge comes in the form of claiming the existence of additional senses. Part of the challenge comes from positing multiple senses where common sense only speaks of one, such as with the fractionation of “touch” into pressure and temperature senses. One conceptual difficulty in thinking about the number and division of senses is that it's not (...)
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  • International Handbook of Research in History, Philosophy and Science Teaching.Michael R. Matthews (ed.) - 2014 - Springer.
    This inaugural handbook documents the distinctive research field that utilizes history and philosophy in investigation of theoretical, curricular and pedagogical issues in the teaching of science and mathematics. It is contributed to by 130 researchers from 30 countries; it provides a logically structured, fully referenced guide to the ways in which science and mathematics education is, informed by the history and philosophy of these disciplines, as well as by the philosophy of education more generally. The first handbook to cover the (...)
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  • Is it Time for an Updated ‘Eco-Evo-Devo’ Definition of Evolution by Natural Selection?Marion Blute - 2008 - Spontaneous Generations 2 (1):1.
    Abstract A lot of science has passed under the bridge since the classic definition of evolution as a change in gene frequencies in a population became common. Much knowledge has accumulated since then about evolution, heredity, ecology, development, phenotypic plasticity, niche construction and genetic drift. Building on Van Valen’s description of evolution as “the control of development by ecology,” it is suggested that the classic definition be replaced by a updated ‘eco‐evo-evo’ definition of evolution by natural selection which acknowledges this (...)
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  • Are all genes regulatory genes?Rosario Michael Piro - 2011 - Biology and Philosophy 26 (4):595-602.
    Although much has been learned about hereditary mechanisms since Gregor Mendel’s famous experiments, gene concepts have always remained vague, notwithstanding their central role in biology. During over hundred years of genetic research, gene concepts have often and dynamically changed to accommodate novel experimental findings, without ever providing a generally accepted definition of the ‘gene.’ Yet, the distinction between ‘regulatory genes’ and ‘structural genes’ has remained a common theme in modern gene concepts since the definition of the operon-model. This distinction is (...)
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  • The Epistemic Goal of a Concept: Accounting for the Rationality of Semantic Change and Variation.Ingo Brigandt - 2010 - Synthese 177 (1):19-40.
    The discussion presents a framework of concepts that is intended to account for the rationality of semantic change and variation, suggesting that each scientific concept consists of three components of content: 1) reference, 2) inferential role, and 3) the epistemic goal pursued with the concept’s use. I argue that in the course of history a concept can change in any of these components, and that change in the concept’s inferential role and reference can be accounted for as being rational relative (...)
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  • Gene concepts and Genethics: Beyond exceptionalism.Péter Kakuk - 2008 - Science and Engineering Ethics 14 (3):357-375.
    The discursive explosion that was provoked by the new genetics could support the impression that the ethical and social problems posed by the new genetics are somehow exceptional in their very nature. According to this view we are faced with special ethical and social problems that create a challenge so fundamental that the special label of genethics is needless to justify. The historical account regarding the evolution of the gene concepts could serve us to highlight the limits of what we (...)
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  • Molecular and Developmental Biology.Paul Griffiths - 2002 - In Peter K. Machamer & Michael Silberstein (eds.), The Blackwell guide to the philosophy of science. Malden, Mass.: Blackwell. pp. 252-271.
    Philosophical discussion of molecular and developmental biology began in the late 1960s with the use of genetics as a test case for models of theory reduction. With this exception, the theory of natural selection remained the main focus of philosophy of biology until the late 1970s. It was controversies in evolutionary theory over punctuated equilibrium and adaptationism that first led philosophers to examine the concept of developmental constraint. Developmental biology also gained in prominence in the 1980s as part of a (...)
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  • The differential method and the causal incompleteness of programming theory in molecular biology.Giuseppe Longo & Pierre-Emmanuel Tendero - 2007 - Foundations of Science 12 (4):337-366.
    The “DNA is a program” metaphor is still widely used in Molecular Biology and its popularization. There are good historical reasons for the use of such a metaphor or theoretical model. Yet we argue that both the metaphor and the model are essentially inadequate also from the point of view of Physics and Computer Science. Relevant work has already been done, in Biology, criticizing the programming paradigm. We will refer to empirical evidence and theoretical writings in Biology, although our arguments (...)
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  • Political biology.Maurizio Meloni - 2018 - History of the Human Sciences 31 (1):136-142.
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  • Psychopathy: Morally Incapacitated Persons.Heidi Maibom - 2017 - In Thomas Schramme & Steven Edwards (eds.), Handbook of the Philosophy of Medicine. Springer. pp. 1109-1129.
    After describing the disorder of psychopathy, I examine the theories and the evidence concerning the psychopaths’ deficient moral capacities. I first examine whether or not psychopaths can pass tests of moral knowledge. Most of the evidence suggests that they can. If there is a lack of moral understanding, then it has to be due to an incapacity that affects not their declarative knowledge of moral norms, but their deeper understanding of them. I then examine two suggestions: it is their deficient (...)
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  • Lexical Flexibility, Natural Language, and Ontology.Christopher A. Vogel - 2016 - Croatian Journal of Philosophy 16 (1):1-44.
    The Realist that investigates questions of ontology by appeal to the quantificational structure of language assumes that the semantics for the privileged language of ontology is externalist. I argue that such a language cannot be (some variant of) a natural language, as some Realists propose. The flexibility exhibited by natural language expressions noted by Chomsky and others cannot obviously be characterized by the rigid models available to the externalist. If natural languages are hostile to externalist treatments, then the meanings of (...)
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  • Reports of the death of the Gene are greatly exaggerated.Rob Knight - 2007 - Biology and Philosophy 22 (2):293-306.
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  • Genes in the postgenomic era.Paul E. Griffiths & Karola Stotz - 2006 - Theoretical Medicine and Bioethics 27 (6):499-521.
    We outline three very different concepts of the gene—instrumental, nominal, and postgenomic. The instrumental gene has a critical role in the construction and interpretation of experiments in which the relationship between genotype and phenotype is explored via hybridization between organisms or directly between nucleic acid molecules. It also plays an important theoretical role in the foundations of disciplines such as quantitative genetics and population genetics. The nominal gene is a critical practical tool, allowing stable communication between bioscientists in a wide (...)
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  • Realism and Lexical Flexibility.Christopher A. Vogel - 2020 - Theoria 86 (2):145-186.
    Metaphysical investigation often proceeds by way of linguistic meaning. This tradition relies on an assumption about meanings, namely that they can be given in terms of referential relations and truth. Chomsky and others have illustrated the difficulty with this externalist hypothesis regarding natural language meanings, which implies that natural languages are ill‐suited for the purposes of metaphysical investigation. In reply to this discordance between the features of natural languages and the goals of metaphysical investigation, metaphysicians propose that we look to (...)
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  • Model systems in stem cell biology.Jason Scott Robert - 2004 - Bioessays 26 (9):1005-1012.
    Stem cell scientists and ethicists have focused intently on questions relevant to the developmental stage and developmental capacities of stem cells. Comparably less attention has been paid to an equally important set of questions about the nature of stem cells, their common characteristics, their non‐negligible differences and their possible developmental species specificity. Answers to these questions are essential to the project of justly inferring anything about human stem cell biology from studies in non‐human model systems—and so to the possibility of (...)
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  • Unlocking the Black box between genotype and phenotype: Cell condensations as morphogenetic (modular) units. [REVIEW]Brian K. Hall - 2003 - Biology and Philosophy 18 (2):219-247.
    Embryonic development and ontogeny occupy whatis often depicted as the black box betweengenes – the genotype – and the features(structures, functions, behaviors) of organisms– the phenotype; the phenotype is not merelya one-to-one readout of the genotype. Thegenes home, context, and locus of operation isthe cell. Initially, in ontogeny, that cell isthe single-celled zygote. As developmentensues, multicellular assemblages of like cells(modules) progressively organized as germlayers, embryonic fields, anlage,condensations, or blastemata, enable genes toplay their roles in development and evolution.As modules, condensations are (...)
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  • Reductionism and its heuristics: Making methodological reductionism honest.William C. Wimsatt - 2006 - Synthese 151 (3):445-475.
    Methodological reductionists practice ‘wannabe reductionism’. They claim that one should pursue reductionism, but never propose how. I integrate two strains in prior work to do so. Three kinds of activities are pursued as “reductionist”. “Successional reduction” and inter-level mechanistic explanation are legitimate and powerful strategies. Eliminativism is generally ill-conceived. Specific problem-solving heuristics for constructing inter-level mechanistic explanations show why and when they can provide powerful and fruitful tools and insights, but sometimes lead to erroneous results. I show how traditional metaphysical (...)
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  • Genes, Genomes, and Genomics.Evelyn Fox Keller - 2011 - Biological Theory 6 (2):132-140.
    While scientific terms lack the stability of physical objects, they are generally far more stable than the various meanings associated with them. As a consequence, they tend to carry older conceptions alongside those more recently acquired, thereby exerting an effective drag against conceptual change. I illustrate this claim with an analysis of the shifting meanings of the term genome, originally used to refer to a collectivity of genes, but more recently to an organism’s complement of DNA. While genes were originally (...)
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  • Book review: Lenny Moss (2003). What genes can't do. [REVIEW]Pieter Lemmens - 2003 - Acta Biotheoretica 51 (2):141-150.
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  • (1 other version)Special Issue: Philosophical Considerations in the Teaching of Biology. Part II, Evolution, Development and Genetics.Kostas Kampourakis (ed.) - 2013 - Springer (Science & Education).
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  • Where Does Pattee’s “How Does a Molecule Become a Message?” Belong in the History of Biosemiotics?Jon Umerez - 2009 - Biosemiotics 2 (3):269-290.
    Recalling the title of Yoxen’s classical paper on the influence of Schrödinger’s book, I analyze the role that the work of H. Pattee might have played, if any, in the development of Biosemiotics. I take his 1969 paper “How does a molecule become a message?” (Developmental Biology Supplement) as a first target due to several circumstances that make it especially salient. On the one hand, even if Pattee has obviously developed further his ideas on later papers, the significance of this (...)
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  • Experimental philosophy of science.Paul E. Griffiths & Karola Stotz - 2008 - Philosophy Compass 3 (3):507–521.
    Experimental philosophy of science gathers empirical data on how key scientific concepts are understood by particular scientific communities. In this paper we briefly describe two recent studies in experimental philosophy of biology, one investigating the concept of the gene, the other the concept of innateness. The use of experimental methods reveals facts about these concepts that would not be accessible using the traditional method of intuitions about possible cases. It also contributes to the study of conceptual change in science, which (...)
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  • Verantwortung ohne verständnis? Wie die ethikdebatte zur gentechnik Von deren wissenschaftstheorie abhängt.Peter Janich & Michael Weingarten - 2002 - Journal for General Philosophy of Science / Zeitschrift für Allgemeine Wissenschaftstheorie 33 (1):85-120.
    Responsibility Without Understanding? How the Debate on the Ethics of Genetic Engineering Depends on Its Philosophy of Science. The main thesis in this paper is that bioethics has no own criteria to judge the chances and risks of genetic engineering. But if we distinguish (1) between different types of genetic, (2) between genetic engineering as a set of methods for experimentation and genetic engineering as an industrial technique and (3) reconstruct the metaphors and the terminology in general, which are used (...)
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  • Replication and reproduction.John Wilkins & Pierrick Bourrat - 2018 - Stanford Encyclopedia of Philosophy.
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  • Not Such Nature.Hilton F. Japyassú - 2015 - Science & Education 24 (9-10):1271-1283.
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  • Gene.Hans-Jörg Rheinberger - 2008 - Stanford Encyclopedia of Philosophy.
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  • What range of future scenarios should climate policy be based on? Modal falsificationism and its limitations.Gregor Betz - 2009 - Philosophia Naturalis 46 (1):133-158.
    Climate policy decisions are decisions under uncertainty and are, therefore, based on a range of future climate scenarios, describing possible consequences of alternative policies. Accordingly, the methodology for setting up such a scenario range becomes pivotal in climate policy advice. The preferred methodology of the Intergovernmental Panel on Climate Change will be characterised as ,,modal verificationism"; it suffers from severe shortcomings which disqualify it for scientific policy advice. Modal falsificationism, as a more sound alternative, would radically alter the way the (...)
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  • Wie frei sind wir eigentlich empirisch?Sven Walter - 2009 - Philosophia Naturalis 46 (1):8-35.
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