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  1. Evolutionism and Common Sense. Notes on the History of Biology.António B. Vieira - 2017 - Kairos 19 (1):15-35.
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  • An epistemological problem for evolutionary psychology.Matthew Ratcliffe - 2005 - International Studies in the Philosophy of Science 19 (1):47-63.
    This article draws out an epistemological tension implicit in Cosmides and Tooby's conception of evolutionary psychology. Cosmides and Tooby think of the mind as a collection of functionally individuated, domain-specific modules. Although they do not explicitly deny the existence of domain-general processes, it will be shown that their methodology commits them to the assumption that only domain-specific cognitive processes are capable of producing useful outputs. The resultant view limits the scope of biologically possible cognitive accomplishments and these limitations, it will (...)
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  • Bioética y tecnociencia.Victor B. Penchaszadeh - 2016 - Escritos 24 (53):447-466.
    El desarrollo de la tecnociencia en los últimos decenios ha sido vertiginoso y los problemas y dilemas bioéticos que plantea a la humanidad son incontables. Sin embargo, el pensamiento bioético está recién comenzando a analizar la trascendencia de los adelantos científico-técnicos; particularmente en relación a problemáticas de frontera, tales como: las tecnologías de fertilización asistida, las investigaciones con células madre, el mantenimiento de la vida con técnicas artificiales, entre otras. Temas cardinales como la humanización de la medicina, el derecho a (...)
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  • The Return of the Organism as a Fundamental Explanatory Concept in Biology.Daniel J. Nicholson - 2014 - Philosophy Compass 9 (5):347-359.
    Although it may seem like a truism to assert that biology is the science that studies organisms, during the second half of the twentieth century the organism category disappeared from biological theory. Over the past decade, however, biology has begun to witness the return of the organism as a fundamental explanatory concept. There are three major causes: (a) the realization that the Modern Synthesis does not provide a fully satisfactory understanding of evolution; (b) the growing awareness of the limits of (...)
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  • How the role of computing is driving new genetics public policy.Antonio Marturano & Ruth Chadwick - 2004 - Ethics and Information Technology 6 (1):43-53.
    In this paper we will examine some ethical aspects of the role that computers and computing increasingly play in new genetics. Our claim is that there is no new genetics without computer science. Computer science is important for the new genetics on two levels: from a theoretical perspective, and from the point of view of geneticists practice. With respect to , the new genetics is fully impregnate with concepts that are basic for computer science. Regarding , recent developments in the (...)
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  • The inheritance of features.Matteo Mameli - 2005 - Biology and Philosophy 20 (2-3):365-399.
    Since the discovery of the double helical structure of DNA, the standard account of the inheritance of features has been in terms of DNA-copying and DNA-transmission. This theory is just a version of the old theory according to which the inheritance of features is explained by the transfer at conception of some developmentally privileged material from parents to offspring. This paper does the following things: (1) it explains what the inheritance of features is; (2) it explains how the DNA-centric theory (...)
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  • The Organism is dead. Long live the organism!Manfred D. Laubichler - 2000 - Perspectives on Science 8 (3):286-315.
  • Race, IQ, and the search for statistical signals associated with so-called “X”-factors: environments, racism, and the “hereditarian hypothesis”.Jonathan Michael Kaplan - 2015 - Biology and Philosophy 30 (1):1-17.
    Some authors defending the “hereditarian” hypothesis with respect to differences in average IQ scores between populations have argued that the sorts of environmental variation hypothesized by some researchers rejecting the hereditarian position should leave discoverable statistical traces, namely changes in the overall variance of scores or in variance–covariance matrices relating scores to other variables. In this paper, I argue that the claims regarding the discoverability of such statistical signals are broadly mistaken—there is no good reason to suspect that the hypothesized (...)
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  • Genetic Information in the Age of Genohype.Péter Kakuk - 2006 - Medicine, Health Care and Philosophy 9 (3):325-337.
    We will analyse the representations and conceptualisation of genetics and genetic information in bioethical discourse. Genetics and genetic information is widely believed to be revolutionizing medicine and is sometimes misconceived as having a high predictive value compared to traditional diagnostics. We will attempt to present the inherent limitations of genetic information within its health care context. We␣will also argue against the exceptional treatment of genetic information that seems to govern bioethical reflection and regulatory approaches. And finally, we will make the (...)
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  • Genetic Determinism in the Genetics Curriculum.Annie Jamieson & Gregory Radick - 2017 - Science & Education 26 (10):1261-1290.
    Twenty-first-century biology rejects genetic determinism, yet an exaggerated view of the power of genes in the making of bodies and minds remains a problem. What accounts for such tenacity? This article reports an exploratory study suggesting that the common reliance on Mendelian examples and concepts at the start of teaching in basic genetics is an eliminable source of support for determinism. Undergraduate students who attended a standard ‘Mendelian approach’ university course in introductory genetics on average showed no change in their (...)
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  • Tractable genes, entrenched social structures.Lisa Gannett - 1997 - Biology and Philosophy 12 (3):403-419.
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  • The Culture‐Bound Brain: Epigenetic Proaction Revisited.Kathinka Evers - 2020 - Theoria 86 (6):783-800.
    Progress in neuroscience – notably, on the dynamic functions of neural networks – has deepened our understanding of decision‐making, acquisition of character and temperament, and the development of moral dispositions. The evolution of our cerebral architecture is both genetic and epigenetic: the nervous system develops in continuous interaction with the immediate physical and socio‐cultural environments. Each individual has a unique cerebral identity even in the relative absence of genetic distinction, and the development of this identity is strongly influenced by social (...)
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  • The Neoliberal Underpinnings of the Bioeconomy: the Ideological Discourses and Practices of Economic Competitiveness.Kean Birch - 2006 - Genomics, Society and Policy 2 (3):1-15.
    When we talk about ideology and new genetics we tend to think of concepts like geneticisation and genetic essentialism, which present genetics and biology in deterministic terms. However, the aim of this article is to consider how a particular economic ideology - neoliberalism - has affected the bioeconomy rather than assuming that it is the inherent qualities of biotechnology that determine market value. In order to do this, the paper focuses on the discourses and practices of economic competitiveness that pervade (...)
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  • Eugenics and the New Genetics in Britain: Examining Contemporary Professionals' Accounts.Amanda Amos, Sarah Cunningham-Burley & Anne Kerr - 1998 - Science, Technology and Human Values 23 (2):175-198.
    This article explores the accounts of eugenics made by a small but important group of British scientists and clinicians working on the new genetics as applied to human health. These scientists and clinicians used special rhetorical strategies for distancing the new genetics from eugenics and to sustain their professional autonomy. They drew a number of boundaries or distinctions between eugenics and their own field, describing eugenics as politically distorted "bad science, " as being technically unfeasible, a feature of totalitarian regimes, (...)
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  • Environmental Ethics.Roberta L. Millstein - 2013 - In K. Kampourakis (ed.), The Philosophy of Biology: A Companion for Educators. Springer.
    A number of areas of biology raise questions about what is of value in the natural environment and how we ought to behave towards it: conservation biology, environmental science, and ecology, to name a few. Based on my experience teaching students from these and similar majors, I argue that the field of environmental ethics has much to teach these students. They come to me with pent-up questions and a feeling that more is needed to fully engage in their subjects, and (...)
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