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Genetics and Reductionism

Philosophical Quarterly 50 (198):128-130 (2000)

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  1. Mechanistic Explanations and Models in Molecular Systems Biology.Fred C. Boogerd, Frank J. Bruggeman & Robert C. Richardson - 2013 - Foundations of Science 18 (4):725-744.
    Mechanistic models in molecular systems biology are generally mathematical models of the action of networks of biochemical reactions, involving metabolism, signal transduction, and/or gene expression. They can be either simulated numerically or analyzed analytically. Systems biology integrates quantitative molecular data acquisition with mathematical models to design new experiments, discriminate between alternative mechanisms and explain the molecular basis of cellular properties. At the heart of this approach are mechanistic models of molecular networks. We focus on the articulation and development of mechanistic (...)
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  • Aspects of Reductive Explanation in Biological Science: Intrinsicality, Fundamentality, and Temporality.Andreas Hüttemann & Alan C. Love - 2011 - British Journal for the Philosophy of Science 62 (3):519-549.
    The inapplicability of variations on theory reduction in the context of genetics and their irrelevance to ongoing research has led to an anti-reductionist consensus in philosophy of biology. One response to this situation is to focus on forms of reductive explanation that better correspond to actual scientific reasoning (e.g. part–whole relations). Working from this perspective, we explore three different aspects (intrinsicality, fundamentality, and temporality) that arise from distinct facets of reductive explanation: composition and causation. Concentrating on these aspects generates new (...)
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  • Fuzzy Empiricism and Fuzzy‐Set Causality: What Is All the Fuzz About?Jordi Cat - 2006 - Philosophy of Science 73 (1):26-41.
    This paper examines a novel notion of causality, namely, fuzzy-set-theoretic causality. Over the last decade, a number of conceptual models of causality, in the language of fuzzy-set theory, have appeared in the scientific literature and have been applied to empirical research. They have circulated widely from one scientific discipline to another, weaving a unifying thread through them. However, they have received no philosophical attention. In this paper, I will discuss the value and limitations of this type of model and will (...)
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  • Philosophies of particular biological research programs.Ulrich Krohs - 2006 - Biological Theory 1 (2):182-187.
    There is a trend within philosophy of biology to concentrate on questions that are strongly related to particular biological research programs rather than on the general scope of the field and its relation to other sciences. Projects of the latter kind, of course, are followed as well but will not be the topic of this review. Shifting the focus to particular research programs reflects philosophers’ increased interest in knowledge of, and contribution to, actual biological research, which is organized in such (...)
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  • Molecular genetics.Ken Waters - 2008 - Stanford Encyclopedia of Philosophy.
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  • Explanatory loops and the limits of genetic reductionism.Martin Carrier & Patrick Finzer - 2006 - International Studies in the Philosophy of Science 20 (3):267 – 283.
    We reconstruct genetic determinism as a reductionist thesis to the effect that the molecular properties of cells can be accounted for to a great extent by their genetic outfit. The non-reductionist arguments offered at this molecular level often use the relationship between structure and function as their point of departure. By contrast, we develop a non-reductionist argument that is confined to the structural characteristics of biomolecules; no appeal to functions is made. We raise two kinds of objections against the reducibility (...)
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  • A Scientific Metaphysical Naturalisation of Information.Bruce Long - 2018 - Dissertation, University of Sydney
    The objective of this thesis is to present a naturalised metaphysics of information, or to naturalise information, by way of deploying a scientific metaphysics according to which contingency is privileged and a-priori conceptual analysis is excluded (or at least greatly diminished) in favour of contingent and defeasible metaphysics. The ontology of information is established according to the premises and mandate of the scientific metaphysics by inference to the best explanation, and in accordance with the idea that the primacy of physics (...)
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  • Biology meets Physics: Reductionism and Multi-scale Modeling of Morphogenesis.Sara Green & Robert Batterman - 2017 - Studies in History and Philosophy of Science Part C: Studies in History and Philosophy of Biological and Biomedical Sciences 7161:20-34.
    A common reductionist assumption is that macro-scale behaviors can be described "bottom-up" if only sufficient details about lower-scale processes are available. The view that an "ideal" or "fundamental" physics would be sufficient to explain all macro-scale phenomena has been met with criticism from philosophers of biology. Specifically, scholars have pointed to the impossibility of deducing biological explanations from physical ones, and to the irreducible nature of distinctively biological processes such as gene regulation and evolution. This paper takes a step back (...)
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  • Reduction.A. Hütterman & A. C. Love - 2014 - In Paul Humphreys (ed.), The Oxford Handbook of Philosophy of Science. New York, NY, USA: Oxford University Press. pp. 460-484.
    Reduction and reductionism have been central philosophical topics in analytic philosophy of science for more than six decades. Together they encompass a diversity of issues from metaphysics and epistemology. This article provides an introduction to the topic that illuminates how contemporary epistemological discussions took their shape historically and limns the contours of concrete cases of reduction in specific natural sciences. The unity of science and the impulse to accomplish compositional reduction in accord with a layer-cake vision of the sciences, the (...)
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  • Sahotra Sarkar, Molecular models of life: philosophical papers on molecular biology: MIT Press, Cambridge, MA, 2005, xvi + 396 pp, (Hb) ISBN-10: 0-262-19512-7, ISBN-13: 978-0-262-19512-6, $38.00; (Pb) ISBN-10: 0-262-69350-X, ISBN-13: 978-0-262-69350-9, $25.00. [REVIEW]Daniel Sirtes - 2007 - Acta Biotheoretica 55 (1):91-94.
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  • A New Insight into Sanger’s Development of Sequencing: From Proteins to DNA, 1943–1977. [REVIEW]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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  • The Unity of Science.Jordi Cat - 2013 - Stanford Encyclopedia of Philosophy.
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  • From heritability to probability.Omri Tal - 2009 - Biology and Philosophy 24 (1):81-105.
    Can a heritability value tell us something about the weight of genetic versus environmental causes that have acted in the development of a particular individual? Two possible questions arise. Q1: what portion of the phenotype of X is due to its genes and what portion to its environment? Q2: what portion of X’s phenotypic deviation from the mean is a result of its genetic deviation and what portion a result of its environmental deviation? An answer to Q1 provides the full (...)
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  • Population genetics.Samir Okasha - unknown - Stanford Encyclopedia of Philosophy.
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  • Scrutinizing microbiome determinism: why deterministic hypotheses about the microbiome are conceptually ungrounded.Javier Suárez - 2024 - History and Philosophy of the Life Sciences 46 (1):1-26.
    This paper addresses the topic of determinism in contemporary microbiome research. I distinguish two types of deterministic claims about the microbiome, and I show evidence that both types of claims are present in the contemporary literature. First, the idea that the host genetics determines the composition of the microbiome which I call “host-microbiome determinism”. Second, the idea that the genetics of the holobiont (the individual unit composed by a host plus its microbiome) determines the expression of certain phenotypic traits, which (...)
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  • An Early History of the Heritability Coefficient Applied to Humans.Stephen M. Downes & Eric Turkheimer - 2022 - Biological Theory 17 (2):126-137.
    Fisher’s 1918 paper accomplished two distinct goals: unifying discrete Mendelian genetics with continuous biometric phenotypes and quantifying the variance components of variation in complex human characteristics. The former contributed to the foundation of modern quantitative genetics; the latter was adopted by social scientists interested in the pursuit of Galtonian nature-nurture questions about the biological and social origins of human behavior, especially human intelligence. This historical divergence has produced competing notions of the estimation of variance ratios referred to as heritability. Jay (...)
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  • Integrating Philosophy of Science into Research on Ethical, Legal and Social Issues in the Life Sciences.Simon Lohse, Martin S. Wasmer & Thomas A. C. Reydon - 2020 - Perspectives on Science 28 (6):700-736.
    This paper argues that research on normative issues in the life sciences will benefit from a tighter integration of philosophy of science. We examine research on ethical, legal and social issues in the life sciences (“ELSI”) and discuss three illustrative examples of normative issues that arise in different areas of the life sciences. These examples show that important normative questions are highly dependent on epistemic issues which so far have not been addressed sufficiently in ELSI, RRI and related areas of (...)
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  • Schizophrenia and the Dysfunctional Brain.Justin Garson - 2010 - Journal of Cognitive Science 11:215-246.
    Scientists, philosophers, and even the lay public commonly accept that schizophrenia stems from a biological or internal ‘dysfunction.’ However, this assessment is typically accompanied neither by well-defined criteria for determining that something is dysfunctional nor empirical evidence that schizophrenia satisfies those criteria. In the following, a concept of biological function is developed and applied to a neurobiological model of schizophrenia. It concludes that current evidence does not warrant the claim that schizophrenia stems from a biological dysfunction, and, in fact, that (...)
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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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  • 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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  • R. A. Fisher, Lancelot Hogben, and the Origin of Genotype–Environment Interaction.James Tabery - 2008 - Journal of the History of Biology 41 (4):717-761.
    This essay examines the origin of genotype-environment interaction, or G×E. "Origin" and not "the origin" because the thesis is that there were actually two distinct concepts of G×E at this beginning: a biometric concept, or \[G \times E_B\], and a developmental concept, or \[G \times E_D \]. R. A. Fisher, one of the founders of population genetics and the creator of the statistical analysis of variance, introduced the biometric concept as he attempted to resolve one of the main problems in (...)
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  • Who’s Afraid of Nagelian Reduction?Foad Dizadji-Bahmani, Roman Frigg & Stephan Hartmann - 2010 - Erkenntnis 73 (3):393-412.
    We reconsider the Nagelian theory of reduction and argue that, contrary to a widely held view, it is the right analysis of intertheoretic reduction. The alleged difficulties of the theory either vanish upon closer inspection or turn out to be substantive philosophical questions rather than knock-down arguments.
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  • The rich detail of cultural symbol systems.Dwight W. Read - 2014 - Behavioral and Brain Sciences 37 (4):434-435.
    The goal of forming a science of intentional behavior requires a more richly detailed account of symbolic systems than is assumed by the authors. Cultural systems are not simply the equivalent in the ideational domain of culture of the purported Baldwin Effect in the genetic domain. © 2014 Cambridge University Press.
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  • Philosophy of science that ignores science: race, IQ and heritability.Neven Sesardictt - 2000 - Philosophy of Science 67 (4):580-602.
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  • Explanation in Biology: Reduction, Pluralism, and Explanatory Aims.Ingo Brigandt - 2011 - Science & Education 22 (1):69-91.
    This essay analyzes and develops recent views about explanation in biology. Philosophers of biology have parted with the received deductive-nomological model of scientific explanation primarily by attempting to capture actual biological theorizing and practice. This includes an endorsement of different kinds of explanation (e.g., mathematical and causal-mechanistic), a joint study of discovery and explanation, and an abandonment of models of theory reduction in favor of accounts of explanatory reduction. Of particular current interest are philosophical accounts of complex explanations that appeal (...)
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  • A note on frequency dependence and the levels/units of selection.Sahotra Sarkar - 2008 - Biology and Philosophy 23 (2):217-228.
    On the basis of distinctions between those properties of entities that can be defined without reference to other entities and those that (in different ways) cannot, this note argues that non-trivial forms of frequency-dependent selection of entities should be interpreted as selection occurring at a level higher than that of those entities. It points out that, except in degenerately simple cases, evolutionary game-theoretic models of selection are not models of individual selection. Similarly, models of genotypic selection such as heterosis cannot (...)
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  • Emergence and reduction in chemistry: Ontological or epistemological concepts?Lee McIntyre - 2007 - Synthese 155 (3):337-343.
    In this paper I argue that the ontological interpretation of the concepts of reduction and emergence is often misleading in the philosophy of science and should nearly always be eschewed in favor of an epistemological interpretation. As a paradigm case, an example is drawn from the philosophy of chemistry to illustrate the drawbacks of “ontological reduction” and “ontological emergence,” and the virtues of an epistemological interpretation of these concepts.
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  • In Memoriam: Raphael Falk, 1929–2019.Sahotra Sarkar - 2021 - Biological Theory 16 (1):1-4.
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  • The Modern Synthesis.Anya Plutynski - 2006 - In Sahotra Sarkar & Jessica Pfeiffer (eds.), Routledge Encyclopedia of Philosophy of Science.
    Huxley coined the phrase, the “evolutionary synthesis” to refer to the acceptance by a vast majority of biologists in the mid-20th Century of a “synthetic” view of evolution. According to this view, natural selection acting on minor hereditary variation was the primary cause of both adaptive change within populations and major changes, such as speciation and the evolution of higher taxa, such as families and genera. This was, roughly, a synthesis of Mendelian genetics and Darwinian evolutionary theory; it was a (...)
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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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  • Constant factors and hedgeless Hedges: On heuristics and biases developmental biology.Jason Scott Robert - unknown
    How does a complex organism develop from a relatively simple, homogeneous mass? The usual answer is: through the execution of species-specific genetic instructions specifying the development of that organism. Commentators are sometimes sceptical of this usual answer, but of course not all commentators. Some biologists refer to master control genes responsible for the activation of all the genes responsible for every aspect of organismal development; and some philosophers, most notoriously Rosenberg, buy this claim hook, line, and sinker. Here I explore (...)
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  • From the reaktionsNorm to the adaptive Norm: The Norm of reaction, 1909–1960. [REVIEW]Sahotra Sarkar - 1999 - Biology and Philosophy 14 (2):235-252.
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  • That was the Philosophy of Biology that was: Mainx, Woodger, Nagel, and Logical Empiricism, 1929–1961.Sahotra Sarkar - 2023 - Biological Theory 18 (3):153-174.
    This article is a systematic critical survey of work done in the philosophy of biology within the logical empiricist tradition, beginning in the 1930s and until the end of the 1950s. It challenges a popular view that the logical empiricists either ignored biology altogether or produced analyses of little value. The earliest work on the philosophy of biology within the logical empiricist corpus was that of Philipp Frank, Ludwig von Bertalanffy, and Felix Mainx. Mainx, in particular, provided a detailed analysis (...)
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  • Reduction.Marie I. Kaiser - 2013 - In Dubitzky W., Wolkenhauer O., Cho K.-H. & Yokota H. (eds.), Encyclopedia of Systems Biology, Vol. X. Springer. pp. 1827-1830.
    This is a contribution to the encyclopedia of systems biology on reduction.
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  • Making sense of the nature–nurture debate. [REVIEW]James Tabery - 2009 - Biology and Philosophy 24 (5):711-723.
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  • Is “Genetic Information” a Metaphor?「遺伝情報」はメタファーか.Tomoko Ishida - 2019 - Kagaku Tetsugaku 52 (1):67-91.
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  • ¿Estrategia reductiva? De la Ecología de Sistemas a la Fisiología.Federico di Pasquo, Christian Francese & Guillermo Folguera - 2017 - Principia: An International Journal of Epistemology 21 (1):99-123.
    The main objective of this work is to analyze the intention to reduce some areas of Ecology to Physiology. The origin of this research of reduction was done through consolidation of metabolic ecological theory in first years of XXIst century. Considering this objective, general framework was based on the proposal of Sahotra Sarkar.
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  • Scientific Reasoning Is Material Inference: Combining Confirmation, Discovery, and Explanation.Ingo Brigandt - 2010 - International Studies in the Philosophy of Science 24 (1):31-43.
    Whereas an inference (deductive as well as inductive) is usually viewed as being valid in virtue of its argument form, the present paper argues that scientific reasoning is material inference, i.e., justified in virtue of its content. A material inference is licensed by the empirical content embodied in the concepts contained in the premises and conclusion. Understanding scientific reasoning as material inference has the advantage of combining different aspects of scientific reasoning, such as confirmation, discovery, and explanation. This approach explains (...)
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  • Characters as units and the case of the presence and absence hypothesis.Sara Schwartz - 2002 - Biology and Philosophy 17 (3):369-388.
    This paper discusses the individuation of characters for the use asunits by geneticists at the beginning of the 20th century. Thediscussion involves the Presence and Absence Hypothesis as a case study. It issuggested that the gap between conceptual consideration and etiological factorsof individuating of characters is being handled by way of mutual adjustment.Confrontation of a suggested morphological unit character with experimentresults molded the final boundaries of it.
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  • Aggregate, composed, and evolved systems: Reductionistic heuristics as means to more holistic theories. [REVIEW]William C. Wimsatt - 2006 - Biology and Philosophy 21 (5):667-702.
    Richard Levins’ distinction between aggregate, composed and evolved systems acquires new significance as we recognize the importance of mechanistic explanation. Criteria for aggregativity provide limiting cases for absence of organization, so through their failure, can provide rich detectors for organizational properties. I explore the use of failures of aggregativity for the analysis of mechanistic systems in diverse contexts. Aggregativity appears theoretically desireable, but we are easily fooled. It may be exaggerated through approximation, conditions of derivation, and extrapolating from some conditions (...)
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  • Explaining how and explaining why: Developmental and evolutionary explanations of dominance.Anya Plutynski - 2008 - Biology and Philosophy 23 (3):363-381.
    There have been two different schools of thought on the evolution of dominance. On the one hand, followers of Wright [Wright S. 1929. Am. Nat. 63: 274–279, Evolution: Selected Papers by Sewall Wright, University of Chicago Press, Chicago; 1934. Am. Nat. 68: 25–53, Evolution: Selected Papers by Sewall Wright, University of Chicago Press, Chicago; Haldane J.B.S. 1930. Am. Nat. 64: 87–90; 1939. J. Genet. 37: 365–374; Kacser H. and Burns J.A. 1981. Genetics 97: 639–666] have defended the view that dominance (...)
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  • Remembering Richard Lewontin.Stuart A. Newman, Peter Godfrey-Smith, Daniel L. Hartl, Philip Kitcher, Diane B. Paul, John Beatty, Sahotra Sarkar, Elliott Sober & William C. Wimsatt - 2021 - Biological Theory 16 (4):257-267.
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  • When is it Safe to Edit the Human Germline?Janella Baxter - 2021 - Science and Engineering Ethics 27 (4):1-21.
    In the fall of 2018 Jiankui He shocked the international community with the following announcement: two female babies, “Lulu” and “Nana,” whose germlines had been modified by the cutting edge, yet profoundly unsafe CRISPR-Cas9 technology had been born. This event galvanized policy makers and scientists to advocate for more explicit and firm regulation of human germline gene editing. Recent policy proposals attempt to integrate safety considerations and public input to identify specific types of diseases that may be safe targets for (...)
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  • What was Fisher’s fundamental theorem of natural selection and what was it for?Anya Plutynski - 2004 - Studies in History and Philosophy of Science Part C: Studies in History and Philosophy of Biological and Biomedical Sciences 37 (1):59-82.
    Fisher’s ‘fundamental theorem of natural selection’ is notoriously abstract, and, no less notoriously, many take it to be false. In this paper, I explicate the theorem, examine the role that it played in Fisher’s general project for biology, and analyze why it was so very fundamental for Fisher. I defend Ewens and Lessard in the view that the theorem is in fact a true theorem if, as Fisher claimed, ‘the terms employed’ are ‘used strictly as defined’. Finally, I explain the (...)
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  • Biological and Physicochemical Explanations in Experimental Biology.William A. Rottschaefer - 2008 - Biological Theory 3 (4):380-390.
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  • Ethischer Diskurs zu Epigenetik und Genomeditierung: die Gefahr eines (epi-)genetischen Determinismus und naturwissenschaftlich strittiger Grundannahmen.Karla Karoline Sonne Kalinka Alex & Eva C. Winkler - 2021 - In Boris Fehse, Ferdinand Hucho, Sina Bartfeld, Stephan Clemens, Tobias Erb, Heiner Fangerau, Jürgen Hampel, Martin Korte, Lilian Marx-Stölting, Stefan Mundlos, Angela Osterheider, Anja Pichl, Jens Reich, Hannah Schickl, Silke Schicktanz, Jochen Taupitz, Jörn Walter, Eva Winkler & Martin Zenke (eds.), Fünfter Gentechnologiebericht: Sachstand und Perspektiven für Forschung und Anwendung. pp. 299-323.
    Slightly modified excerpt from the section 13.4 Zusammenfassung und Ausblick (translated into englisch): This chapter is based on an analysis of ethical debates on epigenetics and genome editing, debates, in which ethical arguments relating to future generations and justice play a central role. The analysis aims to contextualize new developments in genetic engineering, such as genome and epigenome editing, ethically. At the beginning, the assumptions of "genetic determinism," on which "genetic essentialism" is based, of "epigenetic determinism" as well as "genetic" (...)
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  • Generalizing Contextual Analysis.Pierrick Bourrat - 2016 - Acta Biotheoretica 64 (2):197-217.
    Okasha, in Evolution and the Levels of Selection, convincingly argues that two rival statistical decompositions of covariance, namely contextual analysis and the neighbour approach, are better causal decompositions than the hierarchical Price approach. However, he claims that this result cannot be generalized in the special case of soft selection and argues that the Price approach represents in this case a better option. He provides several arguments to substantiate this claim. In this paper, I demonstrate that these arguments are flawed and (...)
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  • Special Issue: Philosophical Considerations in the Teaching of Biology. Part I, Philosophy of Biology and Biological Explanation.Kostas Kampourakis (ed.) - 2013 - Springer (Science & Education).
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