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  1. How Biology Became Social and What It Means for Social Theory.Maurizio Meloni - 2014 - The Sociological Review 62:593-614.
    In this paper I first offer a systematic outline of a series of conceptual novelties in the life-sciences that have favoured, over the last three decades, the emergence of a more social view of biology. I focus in particular on three areas of investigation: (1) technical changes in evolutionary literature that have provoked a rethinking of the possibility of altruism, morality and prosocial behaviours in evolution; (2) changes in neuroscience, from an understanding of the brain as an isolated data processor (...)
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  • Epigenetic Responsibility.Maria Hedlund - 2012 - Medicine Studies 3 (3):171-183.
    The purpose of this article is to argue for a position holding that epigenetic responsibility primarily should be a political and not an individual responsibility. Epigenetic is a rapidly growing research field studying regulations of gene expression that do not change the DNA sequence. Knowledge about these mechanisms is still uncertain in many respects, but main presumptions are that they are triggered by environmental factors and life style and, to a certain extent, heritable to subsequent generations, thereby reminding of aspects (...)
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  • Developmental Systems and Evolutionary Explanation.P. E. Griffiths & R. D. Gray - 1994 - Journal of Philosophy 91 (6):277-304.
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  • Epigenetic Inheritance and Evolution: The Lamarckian Dimension.Eva Jablonka & Marion J. Lamb - 1995 - Oxford University Press UK.
    '...a challenging and useful book, both because it provokes a careful scrutiny of one's own basic ideas regarding evolutionary theory, and because it cuts across so many biological disciplines.' -The Quarterly Review of Biology 'In my view, this work exemplifies Theoretical Biology at its best...here is rampant speculation that is consistently based on cautious reasoning from the available data. Even more refreshing is the absence of sloganeering, grandstanding, and 'isms'.' -Biology and Philosophy 'Epigenetics is fundamental to understanding both development and (...)
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  • Genetics and philosophy : an introduction.Paul Griffiths & Karola Stotz - 2013 - Cambridge: Cambridge University Press.
    In the past century, nearly all of the biological sciences have been directly affected by discoveries and developments in genetics, a fast-evolving subject with important theoretical dimensions. In this rich and accessible book, Paul Griffiths and Karola Stotz show how the concept of the gene has evolved and diversified across the many fields that make up modern biology. By examining the molecular biology of the 'environment', they situate genetics in the developmental biology of whole organisms, and reveal how the molecular (...)
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  • (1 other version)Moralizing biology: The appeal and limits of the new compassionate view of nature.Maurizio Meloni - 2013 - History of the Human Sciences 26 (3):82-106.
    In recent years, a proliferation of books about empathy, cooperation and pro-social behaviours (Brooks, 2011a) has significantly influenced the discourse of the life-sciences and reversed consolidated views of nature as a place only for competition and aggression. In this article I describe the recent contribution of three disciplines – moral psychology (Jonathan Haidt), primatology (Frans de Waal) and the neuroscience of morality – to the present transformation of biology and evolution into direct sources of moral phenomena, a process here named (...)
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  • Phenotypic Plasticity: Beyond Nature and Nurture.Massimo Pigliucci - 2001 - Johns Hopkins University Press.
    Phenotypic plasticity integrates the insights of ecological genetics, developmental biology, and evolutionary theory. Plasticity research asks foundational questions about how living organisms are capable of variation in their genetic makeup and in their responses to environmental factors. For instance, how do novel adaptive phenotypes originate? How do organisms detect and respond to stressful environments? What is the balance between genetic or natural constraints (such as gravity) and natural selection? The author begins by defining phenotypic plasticity and detailing its history, including (...)
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  • (1 other version)Processes of Life: Essays in the Philosophy of Biology.John Dupré - 2011 - Oxford, GB: Oxford University Press.
    John Dupr explores recent revolutionary developments in biology and considers their relevance for our understanding of human nature and society. He reveals how the advance of genetic science is changing our view of the constituents of life, and shows how an understanding of microbiology will overturn standard assumptions about the living world.
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  • (1 other version)Evolution – the Extended Synthesis.Massimo Pigliucci & Gerd B. Muller (eds.) - 2010 - MIT Press.
    In the six decades since the publication of Julian Huxley's Evolution: The Modern Synthesis, spectacular empirical advances in the biological sciences have been accompanied by equally significant developments within the core theoretical framework of the discipline. As a result, evolutionary theory today includes concepts and even entire new fields that were not part of the foundational structure of the Modern Synthesis. In this volume, sixteen leading evolutionary biologists and philosophers of science survey the conceptual changes that have emerged since Huxley's (...)
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  • Transformations of Lamarckism: From Subtle Fluids to Molecular Biology.Eva Jablonka & Snait Gissis (eds.) - 2011 - MIT Press.
    In 1809--the year of Charles Darwin's birth--Jean-Baptiste Lamarck published Philosophie zoologique, the first comprehensive and systematic theory of biological evolution. The Lamarckian approach emphasizes the generation of developmental variations; Darwinism stresses selection. Lamarck's ideas were eventually eclipsed by Darwinian concepts, especially after the emergence of the Modern Synthesis in the twentieth century. The different approaches--which can be seen as complementary rather than mutually exclusive--have important implications for the kinds of questions biologists ask and for the type of research they conduct. (...)
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  • The extended mind and cognitive integration.Richard Menary - 2010 - In The Extended Mind. Cambridge, MA, USA: MIT Press.
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  • The distinction between innate and acquired characteristics.Paul Griffiths - 2010 - Stanford Encyclopedia of Philosophy.
    The idea that some characteristics of an organism are explained by the organism's intrinsic nature, whilst others reflect the influence of the environment is an ancient one. It has even been argued that this distinction is itself part of the evolved psychology of the human species. The distinction played an important role in the history of philosophy as the locus of the dispute between Rationalism and Empiricism discussed in another entry in this encyclopedia. This entry, however, focuses on twentieth-century accounts (...)
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  • The Extended Mind.Richard Menary (ed.) - 2010 - Cambridge, MA, USA: MIT Press.
    Leading scholars respond to the famous proposition by Andy Clark and David Chalmers that cognition and mind are not located exclusively in the head.
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  • Supersizing the mind: embodiment, action, and cognitive extension.Andy Clark (ed.) - 2008 - New York: Oxford University Press.
    In Supersizing the Mind, Andy Clark argues that the human mind is not bound inside the head but extends into body and environment.
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  • Post-genomics, between reduction and emergence.Michel Morange - 2006 - Synthese 151 (3):355 - 360.
    It is frequently said that biology is emerging from a long phase of reductionism. It would be certainly more correct to say that biologists are abandoning a certain form of reductionism. We describe this past form, and the experiments which challenged the previous vision. To face the difficulties which were met, biologists use a series of concepts and metaphors - pleiotropy, tinkering, epigenetics - the ambiguity of which masks the difficulties, instead of solving them. In a similar way, the word (...)
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  • Mind in Life: Biology, Phenomenology, and the Sciences of Mind.Evan Thompson - 2007 - Cambridge, Mass.: Harvard University Press.
    The question has long confounded philosophers and scientists, and it is this so-called explanatory gap between biological life and consciousness that Evan ...
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  • (1 other version)What is innateness?Paul E. Griffiths - 2001 - The Monist 85 (1):70-85.
    In behavioral ecology some authors regard the innateness concept as irretrievably confused whilst others take it to refer to adaptations. In cognitive psychology, however, whether traits are 'innate' is regarded as a significant question and is often the subject of heated debate. Several philosophers have tried to define innateness with the intention of making sense of its use in cognitive psychology. In contrast, I argue that the concept is irretrievably confused. The vernacular innateness concept represents a key aspect of 'folkbiology', (...)
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  • The extended mind.Andy Clark & David J. Chalmers - 1998 - Analysis 58 (1):7-19.
    Where does the mind stop and the rest of the world begin? The question invites two standard replies. Some accept the demarcations of skin and skull, and say that what is outside the body is outside the mind. Others are impressed by arguments suggesting that the meaning of our words "just ain't in the head", and hold that this externalism about meaning carries over into an externalism about mind. We propose to pursue a third position. We advocate a very different (...)
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  • (1 other version)Moralizing biology.Maurizio Meloni - 2013 - History of the Human Sciences 26 (3):82-106.
    In recent years, a proliferation of books about empathy, cooperation and pro-social behaviours (Brooks, 2011a) has significantly influenced the discourse of the life-sciences and reversed consolidated views of nature as a place only for competition and aggression. In this article I describe the recent contribution of three disciplines – moral psychology (Jonathan Haidt), primatology (Frans de Waal) and the neuroscience of morality – to the present transformation of biology and evolution into direct sources of moral phenomena, a process here named (...)
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  • Evolution in Four Dimensions: Genetic, Epigenetic, Behavioral, and Symbolic Variation in the History of Life.Eva Jablonka, Marion J. Lamb & Anna Zeligowski - 2005 - Bradford.
    Ideas about heredity and evolution are undergoing a revolutionary change. New findings in molecular biology challenge the gene-centered version of Darwinian theory according to which adaptation occurs only through natural selection of chance DNA variations. In Evolution in Four Dimensions, Eva Jablonka and Marion Lamb argue that there is more to heredity than genes. They trace four "dimensions" in evolution -- four inheritance systems that play a role in evolution: genetic, epigenetic, behavioral, and symbolic. These systems, they argue, can all (...)
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  • Epigenetics and parental effects.Laurent Kappeler & Michael J. Meaney - 2010 - Bioessays 32 (9):818-827.
    Parental effects are a major source of phenotypic plasticity and may influence offspring phenotype in concert with environmental demands. Studies of “environmental epigenetics” suggest that (1) DNA methylation states are variable and that both demethylation and remethylation occur in post‐mitotic cells, and (2) that remodeling of DNA methylation can occur in response to environmentally driven intracellular signaling pathways. Studies of mother‐offspring interactions in rodents suggest that parental signals influence the DNA methylation, leading to stable changes in gene expression. If parental (...)
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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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  • Out of our heads: why you are not your brain, and other lessons from the biology of consciousness.Alva Noë - 2009 - New York: Hill & Wang.
    A noted philosopher and member of the Institute for Cognitive and Brain Science examines flaws in current understandings about consciousness while proposing a radical solution that argues that consciousness must not be limited to the confines of the brain.
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  • With ‘Genes’ Like That, Who Needs an Environment? Postgenomics’s Argument for the ‘Ontogeny of Information’.Karola Stotz - 2006 - Philosophy of Science 73 (5):905-917.
    The linear sequence specification of a gene product is not provided by the target DNA sequence alone but by the mechanisms of gene expressions. The main actors of these mechanisms, proteins and functional RNAs, relay environmental information to the genome with important consequences to sequence selection and processing. This `postgenomic' reality has implications for our understandings of development not as predetermined by genes but as an epigenetic process. Critics of genetic determinism have long argued that the activity of `genes' and (...)
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  • What should we do with our brain?Catherine Malabou - 2008 - New York: Fordham University Press.
    But in this book, Catherine Malabou proposes a more radical meaning for plasticity, one that not only adapts itself to existing circumstances, but forms a ...
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  • Embryology, Epigenesis and Evolution: Taking Development Seriously.Jason Scott Robert - 2004 - Cambridge University Press.
    Historically, philosophers of biology have tended to sidestep the problem of development by focusing primarily on evolutionary biology and, more recently, on molecular biology and genetics. Quite often too, development has been misunderstood as simply, or even primarily, a matter of gene activation and regulation. Nowadays a growing number of philosophers of science are focusing their analyses on the complexities of development, and in Embryology, Epigenesis and Evolution Jason Scott Robert explores the nature of development against current trends in biological (...)
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  • What Genes Can't Do.Lenny Moss - 2003 - MIT Press.
    A historical and critical analysis of the concept of the gene that attempts to provide new perspectives and metaphors for the transformation of biology and its philosophy.
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  • E. W. MacBride's Lamarckian eugenics and its implications for the social construction of scientific knowledge.Peter J. Bowler - 1984 - Annals of Science 41 (3):245-260.
    SummaryE. W. MacBride was one of the last supporters of Lamarckian evolution, and played a prominent role in the ‘case of the midwife toad’. Unlike most Lamarckians, however, he adopted a very conservative political stance, advocating the permanent inferiority of some races and the necessity of restricting the breeding of the unfit. This article shows how MacBride turned Lamarckism into a plausible means of supporting these positions, by arguing that progressive evolution is a slow process, and that degeneration of the (...)
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  • Is Non-genetic Inheritance Just a Proximate Mechanism? A Corroboration of the Extended Evolutionary Synthesis.Alex Mesoudi, Simon Blanchet, Anne Charmantier, Étienne Danchin, Laurel Fogarty, Eva Jablonka, Kevin N. Laland, Thomas J. H. Morgan, Gerd B. Müller, F. John Odling-Smee & Benoît Pujol - 2013 - Biological Theory 7 (3):189-195.
    What role does non-genetic inheritance play in evolution? In recent work we have independently and collectively argued that the existence and scope of non-genetic inheritance systems, including epigenetic inheritance, niche construction/ecological inheritance, and cultural inheritance—alongside certain other theory revisions—necessitates an extension to the neo-Darwinian Modern Synthesis (MS) in the form of an Extended Evolutionary Synthesis (EES). However, this argument has been challenged on the grounds that non-genetic inheritance systems are exclusively proximate mechanisms that serve the ultimate function of calibrating organisms (...)
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  • The ingredients for a postgenomic synthesis of nature and nurture.Karola Stotz - 2008 - Philosophical Psychology 21 (3):359 – 381.
    This paper serves as an introduction to the special issue on “Reconciling Nature and Nurture in Behavior and Cognition Research” and sets its agenda to resolve the 'interactionist' dichotomy of nature as the genetic, and stable, factors of development, and nurture as the environmental, and plastic influences. In contrast to this received view it promotes the idea that all traits, no matter how developmentally fixed or universal they seem, contingently develop out of a single-cell state through the interaction of a (...)
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  • (2 other versions)Mental mechanisms: Philosophical perspectives on the sciences of cognition and the brain.William P. Bechtel - manuscript
    1. The Naturalistic Turn in Philosophy of Science 2. The Framework of Mechanistic Explanation: Parts, Operations, and Organization 3. Representing and Reasoning About Mechanisms 4. Mental Mechanisms: Mechanisms that Process Information 5. Discovering Mental Mechanisms 6 . Summary.
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  • Naturalism as an Ontology of Ourselves.Maurizio Meloni - 2011 - Telos: Critical Theory of the Contemporary 2011 (155):151-174.
    ExcerptAs Jürgen Habermas has recently pointed out, scientific naturalism represents one of the “two countervailing trends that mark the intellectual tenor of our age,” the other being religious worldviews.1 In a broader intellectual landscape dominated by research programs in neuro- and cognitive science, evolutionary psychology, behavioral genetics and so on, contemporary naturalism symbolizes not only the meta-philosophical framework of these leading intellectual enterprises, but more fundamentally a sort of zeitgeist for our epoch. This is true not only at an epistemological (...)
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  • Epigenetics and the Environment in Bioethics.Charles Dupras, Vardit Ravitsky & Bryn Williams-Jones - 2012 - Bioethics 28 (7):327-334.
    A rich literature in public health has demonstrated that health is strongly influenced by a host of environmental factors that can vary according to social, economic, geographic, cultural or physical contexts. Bioethicists should, we argue, recognize this and – where appropriate – work to integrate environmental concerns into their field of study and their ethical deliberations. In this article, we present an argument grounded in scientific research at the molecular level that will be familiar to – and so hopefully more (...)
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  • The Human Sciences in a Biological Age.Nikolas Rose - 2013 - Theory, Culture and Society 30 (1):3-34.
    We live, according to some, in the century of biology, where we now understand ourselves in radically new ways as the insights of genomics and neuroscience have opened up the workings of our bodies and our minds to new kinds of knowledge and intervention. Is a new figure of the human, and of the social, taking shape in the 21st century? With what consequences for the politics of life today? And with what implications, if any, for the social, cultural and (...)
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  • What Genes Can’t Do.Lenny Moss - 2003 - Journal of the History of Biology 38 (2):383-384.
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  • Cycles of Contingency: Developmental Systems and Evolution.Susan Oyama, Paul Griffiths & Russell D. Gray (eds.) - 2001 - MIT Press.
    The nature/nurture debate is not dead. Dichotomous views of development still underlie many fundamental debates in the biological and social sciences. Developmental systems theory offers a new conceptual framework with which to resolve such debates. DST views ontogeny as contingent cycles of interaction among a varied set of developmental resources, no one of which controls the process. These factors include DNA, cellular and organismic structure, and social and ecological interactions. DST has excited interest from a wide range of researchers, from (...)
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  • Towards a Theoretical Biology.Michael Ruse - 1972 - Philosophy of Science 39 (1):105-106.
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  • (2 other versions)Mental mechanisms: What are the operations?William P. Bechtel - 2005
    trying to explain these reactions in terms of changes in ele- began trying to characterize physiological processes in.
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