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Typology and Natural Kinds in Evo-Devo

In Nuño De La Rosa Laura & Müller Gerd (eds.), Evolutionary Developmental Biology: A Reference Guide. Springer. pp. 483-493 (2021)

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  1. Evolutionary Developmental Biology and the Limits of Philosophical Accounts of Mechanistic Explanation.Ingo Brigandt - 2015 - In P.-A. Braillard & C. Malaterre (eds.), Explanation in Biology: An Enquiry into the Diversity of Explanatory Patterns in the Life Sciences. Springer. pp. 135-173.
    Evolutionary developmental biology (evo-devo) is considered a ‘mechanistic science,’ in that it causally explains morphological evolution in terms of changes in developmental mechanisms. Evo-devo is also an interdisciplinary and integrative approach, as its explanations use contributions from many fields and pertain to different levels of organismal organization. Philosophical accounts of mechanistic explanation are currently highly prominent, and have been particularly able to capture the integrative nature of multifield and multilevel explanations. However, I argue that evo-devo demonstrates the need for a (...)
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  • Bodily Parts in the Structure-Function Dialectic.Ingo Brigandt - 2017 - In Scott Lidgard & Lynn K. Nyhart (eds.), Biological Individuality: Integrating Scientific, Philosophical, and Historical Perspectives. Chicago: University of Chicago Press. pp. 249-274.
    Understanding the organization of an organism by individuating meaningful parts and accounting for organismal properties by studying the interaction of bodily parts is a central practice in many areas of biology. While structures are obvious bodily parts and structure and function have often been seen as antagonistic principles in the study of organismal organization, my tenet is that structures and functions are on a par. I articulate a notion of function (functions as activities), according to which functions are bodily parts (...)
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  • The Architecture of Complexity.Herbert A. Simon - 1962 - Proceedings of the American Philosophical Society 106.
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  • A Radical Solution to the Species Problem.Michael T. Ghiselin - 1974 - Systematic Zoology 23 (4):536–544.
    Traditionally, species have been treated as classes. In fact they may be considered individuals. The logical term “individual” has been confused with a biological synonym for “organism.” If species are individuals, then: 1) their names are proper, 2) there cannot be instances of them, 3) they do not have defining properties, 4) their constituent organisms are parts, not members. “ Species " may be defined as the most extensive units in the natural economy such that reproductive competition occurs among their (...)
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  • The Growth of Biological Thought: Diversity, Evolution, and Inheritance. [REVIEW]Ernst Mayr - 1985 - Journal of the History of Biology 18 (1):145-153.
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  • Are there natural laws concerning particular biological species?Marc Lange - 1995 - Journal of Philosophy 92 (8):430-451.
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  • The Creation of the Essentialism Story: An Exercise in Metahistory.Mary P. Winsor - 2006 - History and Philosophy of the Life Sciences 28 (2):149 - 174.
    The essentialism story is a version of the history of biological classification that was fabricated between 1953 and 1968 by Ernst Mayr, who combined contributions from Arthur Cain and David Hull with his own grudge against Plato. It portrays pre-Darwinian taxonomists as caught in the grip of an ancient philosophy called essentialism, from which they were not released until Charles Darwin's 1859 Origin of Species. Mayr's motive was to promote the Modern Synthesis in opposition to the typology of idealist morphologists; (...)
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  • Units and levels of selection.Elisabeth Lloyd - 2008 - Stanford Encyclopedia of Philosophy.
    The theory of evolution by natural selection is, perhaps, the crowning intellectual achievement of the biological sciences. There is, however, considerable debate about which entity or entities are selected and what it is that fits them for that role. This article aims to clarify what is at issue in these debates by identifying four distinct, though often confused, concerns and then identifying how the debates on what constitute the units of selection depend to a significant degree on which of these (...)
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  • Levels of Organization in Biology.Markus Eronen & Daniel Stephen Brooks - unknown - Stanford Encyclopedia of Philosophy.
    Levels of organization are structures in nature, usually defined by part-whole relationships, with things at higher levels being composed of things at the next lower level. Typical levels of organization that one finds in the literature include the atomic, molecular, cellular, tissue, organ, organismal, group, population, community, ecosystem, landscape, and biosphere levels. References to levels of organization and related hierarchical depictions of nature are prominent in the life sciences and their philosophical study, and appear not only in introductory textbooks and (...)
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  • Homeostasis, species, and higher taxa.Richard Boyd - 1999 - In R. A. Wilson (ed.), Species: New Interdisciplinary Essays. MIT Press. pp. 141-85.
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  • Squaring the Circle: Natural Kinds with Historical Essences.Paul E. Griffiths - 1999 - In Robert A. Wilson (ed.), Species: New Interdisciplinary Essays. MIT Press. pp. 209-228.
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  • Process and Reality. By A. E. Murphy. [REVIEW]A. N. Whitehead - 1929 - International Journal of Ethics 40:433.
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  • Two neo-darwinisms.Denis M. Walsh - 2010 - History and Philosophy of the Life Sciences 32 (2/3).
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  • Genotype–phenotype mapping and the end of the ‘genes as blueprint’ metaphor.Massimo Pigliucci - 2010 - Philosophical Transactions Royal Society B 365:557–566.
    In a now classic paper published in 1991, Alberch introduced the concept of genotype–phenotype (G!P) mapping to provide a framework for a more sophisticated discussion of the integration between genetics and developmental biology that was then available. The advent of evo-devo first and of the genomic era later would seem to have superseded talk of transitions in phenotypic space and the like, central to Alberch’s approach. On the contrary, this paper shows that recent empirical and theoretical advances have only sharpened (...)
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  • Is evolvability evolvable?Massimo Pigliucci - 2008 - Nature Reviews Genetics 9:75-82.
    In recent years, biologists have increasingly been asking whether the ability to evolve — the evolvability — of biological systems, itself evolves, and whether this phenomenon is the result of natural selection or a by-product of other evolutionary processes. The concept of evolvability, and the increasing theoretical and empirical literature that refers to it, may constitute one of several pillars on which an extended evolutionary synthesis will take shape during the next few years, although much work remains to be done (...)
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  • Evolution of phenotypic plasticity: where are we going now?Massimo Pigliucci - 2005 - Trends in Ecology and Evolution 20 (9):481-486.
    The study of phenotypic plasticity has progressed significantly over the past few decades. We have moved from variation for plasticity being considered as a nuisance in evolutionary studies to it being the primary target of investigations that use an array of methods, including quantitative and molecular genetics, as well as of several approaches that model the evolution of plastic responses. Here, I consider some of the major aspects of research on phenotypic plasticity, assessing where progress has been made and where (...)
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  • Evolutionary novelty and the Evo-devo synthesis: field notes.I. Brigandt & Alan C. Love - 2010 - Evolutionary Biology 37:93–99.
    Accounting for the evolutionary origins of morphological novelty is one of the core challenges of contemporary evolutionary biology. A successful explanatory framework requires the integration of different biological disciplines, but the relationships between developmental biology and standard evolutionary biology remain contested. There is also disagreement about how to define the concept of evolutionary novelty. These issues were the subjects of a workshop held in November 2009 at the University of Alberta. We report on the discussion and results of this workshop, (...)
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  • Conceptualizing Evolutionary Novelty: Moving Beyond Definitional Debates.Ingo Brigandt & Alan C. Love - 2012 - Journal of Experimental Zoology Part B: Molecular and Developmental Evolution 318:417-427.
    According to many biologists, explaining the evolution of morphological novelty and behavioral innovation are central endeavors in contemporary evolutionary biology. These endeavors are inherently multidisciplinary but also have involved a high degree of controversy. One key source of controversy is the definitional diversity associated with the concept of evolutionary novelty, which can lead to contradictory claims (a novel trait according to one definition is not a novel trait according to another). We argue that this diversity should be interpreted in light (...)
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  • Evolutionary change and lawlikeness : Beatty on biological generalizations.Martin Carrier - unknown
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  • How many processes are responsible for phenotypic evolution?Giuseppe Fusco - 2001 - Evolution & Development 3 (4):279-286.
    In addressing phenotypic evolution, this article reconsiders natural selection, random drift, developmental constraints, and internal selection in the new extended context of evolutionary developmental biology. The change of perspective from the "evolution of phenotypes" toward an "evolution of ontogenies" (evo-devo perspective) affects the reciprocal relationships among these different processes. Random drift and natural selection are sibling processes: two forms of post-productional sorting among alternative developmental trajectories, the former random, the latter nonrandom. Developmental constraint is a compound concept; it contains even (...)
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  • The Mismeasure of Man.Stephen Jay Gould - 1983 - Ethics 94 (1):153-155.
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  • Unity of Science as a Working Hypothesis.Paul Oppenheim & Hilary Putnam - 1958 - Minnesota Studies in the Philosophy of Science 2:3-36.
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  • Knowing your ancestors: themes in the history of evo-devo. Raff - 2003 - Evolution & Development 5:327–330.
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  • Species: kinds of individuals or individuals of a kind.Olivier Rieppel - 2007 - Cladistics 23:373-384.
    The “species-as-individuals” thesis takes species, or taxa, to be individuals. On grounds of spatiotemporal boundedness, any biological entity at any level of complexity subject to evolutionary processes is an individual. From evolutionary theory flows an ontology that does not countenance universal properties shared by evolving entities. If austere nominalism were applied to evolving entities, however, nature would be reduced to a mere flow of passing events, each one a blob in space–time and hence of passing interest only. Yet if there (...)
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  • Evolutionary morphology and evo-devo: hierarchy and novelty.A. C. Love - 2006 - Theory in Biosciences 124:317–333.
    Although the role of morphology in evolutionary theory remains a subject of debate, assessing the contributions of morphological investigation to evolutionary developmental biology (Evo-devo) is a more circumscribed issue of direct relevance to ongoing research. Historical studies of morphologically oriented researchers and the formation of the Modern Synthesis in the Anglo-American context identify a recurring theme: the synthetic theory of evolution did not capture multiple levels of biological organization. When this feature is incorporated into a philosophical framework for explaining the (...)
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  • Natural Inheritance.Francis Galton - 1889 - Mind 14 (55):414-420.
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  • The emerging structure of the Extended Evolutionary Synthesis: where does Evo-Devo fit in?Alejandro Fábregas-Tejeda & Francisco Vergara-Silva - 2018 - Theory in Biosciences 137.
    The Extended Evolutionary Synthesis (EES) debate is gaining ground in contemporary evolutionary biology. In parallel, a number of philosophical standpoints have emerged in an attempt to clarify what exactly is represented by the EES. For Massimo Pigliucci, we are in the wake of the newest instantiation of a persisting Kuhnian paradigm; in contrast, Telmo Pievani has contended that the transition to an EES could be best represented as a progressive reformation of a prior Lakatosian scientific research program, with the extension (...)
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  • The Organism as the Subject and Object of Evolution.Richard C. Lewontin - 1983 - Scientia 77 (18):65.
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  • Form and function in Evo Devo: historical and conceptual reflections.Manfred D. Laubichler - 2009 - In Manfred Laubichler & Jane Maienschein (eds.), Form and Function in Developmental Evolution. Cambridge University Press. pp. 10.
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  • Toward a mechanistic Evo Devo.Andrew L. Hamilton - 2009 - In Manfred Laubichler & Jane Maienschein (eds.), Form and Function in Developmental Evolution. Cambridge University Press. pp. 213.
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  • Core knowledge.Elizabeth S. Spelke & Katherine D. Kinzler - 2007 - Developmental Science 10 (1):89-96.
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  • Three kinds of adaptationism.Peter Godfrey-Smith - unknown
    Debate about adaptationism in biology continues, in part because within “the” problem of assessing adaptationism, three distinct problems are mixed together. The three problems concern the assessment of three distinct adaptationist positions, each of which asserts the central importance of adaptation and natural selection to the study of evolution, but conceives this importance in a different way. As there are three kinds of adaptationism, there are three distinct "anti-adaptationist" positions as well. Or putting it more formally, there are three different (...)
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  • Developmental mechanisms.Alan Love - 2018 - In S. Glennan & P. Illari (eds.), The Routledge Handbook of the Philosophy of Mechanisms. New York: Routledge.
    The Routledge Handbook of Mechanisms and Mechanical Philosophy is an outstanding reference source to the key topics, problems, and debates in this exciting subject and is the first collection of its kind. Comprising over thirty chapters by a team of international contributors, the Handbook is divided into four Parts: Historical perspectives on mechanisms The nature of mechanisms Mechanisms and the philosophy of science Disciplinary perspectives on mechanisms. Within these Parts central topics and problems are examined, including the rise of mechanical (...)
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  • Natural Kinds and Conceptual Change.Joseph Laporte - 2005 - Philosophical Quarterly 55 (221):672-674.
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  • Perspectives on integrating genetic and physical explanations of evolution and development.Alan Love, Thomas Stewart, Gunter Wagner & Stuart Newman - 2017 - Integrative and Comparative Biology:icx121.
    In the 20th century, genetic explanatory approaches became dominant in both developmental and evolutionary biological research. By contrast, physical approaches, which appeal to properties such as mechanical forces, were largely relegated to the margins, despite important advances in modeling. Recently, there have been renewed attempts to find balanced viewpoints that integrate both biological physics and molecular genetics into explanations of developmental and evolutionary phenomena. Here we introduce the 2017 SICB symposium “Physical and Genetic Mechanisms for Evolutionary Novelty” that was dedicated (...)
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  • Interdisciplinarity: For what Purpose?Bengt Hansson - 1999 - Policy Science 32 (4):339-343.
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  • COMPARING PART-WHOLE REDUCTIVE EXPLANATIONS IN BIOLOGY AND PHYSICS.Alan C. Love & Andreas Hüttemann - 2011 - In Dennis Dieks, Wenceslao Gonzalo, Thomas Uebel, Stephan Hartmann & Marcel Weber (eds.), Explanation, Prediction, and Confirmation. Springer. pp. 183--202.
    Many biologists and philosophers have worried that importing models of reasoning from the physical sciences obscures our understanding of reasoning in the life sciences. In this paper we discuss one example that partially validates this concern: part-whole reductive explanations. Biology and physics tend to incorporate different models of temporality in part-whole reductive explanations. This results from differential emphases on compositional and causal facets of reductive explanations, which have not been distinguished reliably in prior philosophical analyses. Keeping these two facets distinct (...)
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  • The Perversion of Knowledge: The True Story of Soviet Science.Vadim J. Birstein - 2002 - Journal of the History of Biology 35 (2):389-392.
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  • Hierarchy, causation and explanation: ubiquity, locality, and pluralism.Alan C. Love - 2012 - Interface Focus 2 (1):115–125..
    The ubiquity of top-down causal explanations within and across the sciences is prima facie evidence for the existence of top-down causation. Much debate has been focused on whether top-down causation is coherent or in conflict with reductionism. Less attention has been given to the question of whether these representations of hierarchical relations pick out a single, common hierarchy. A negative answer to this question undermines a commonplace view that the world is divided into stratified ‘levels’ of organization and suggests that (...)
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  • The Mismeasure of Man.Stephen Jay Gould - 1984 - Journal of the History of Biology 17 (1):141-145.
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  • Ever since Darwin: Reflections in Natural History.Stephen Jay Gould - 1978 - Journal of the History of Biology 11 (2):399-400.
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  • The Structure of Biological Science.Alexander Rosenberg - 1987 - British Journal for the Philosophy of Science 38 (1):119-121.
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  • Evolution: The History of an Idea.Peter J. Bowler - 1987 - British Journal for the Philosophy of Science 38 (2):261-265.
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  • Discovering Complexity.William Bechtel, Robert C. Richardson & Scott A. Kleiner - 1996 - History and Philosophy of the Life Sciences 18 (3):363-382.
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  • Form and Function: A Contribution to the History of Animal Morphology.E. S. Russell - 1916 - Journal of the History of Biology 17 (1):151-151.
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  • Lives of a Biologist: Adventures in a Century of Extraordinary Science.John Tyler Bonner - 2002 - Journal of the History of Biology 35 (3):604-606.
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  • Keywords and Concepts in Evolutionary Developmental Biology.Brian Hall & Wendy Olson - 2007 - Journal of the History of Biology 40 (4):776-777.
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  • The Structure of Biological Science.Alexander Rosenberg - 1986 - Journal of the History of Biology 19 (1):161-162.
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  • Evolution and the Levels of Selection.Samir Okasha - 2009 - Critica 41 (123):162-170.
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  • Evolution. — The Modern Synthesis.J. Huxley & T. H. Huxley - 1950 - Revista Portuguesa de Filosofia 6 (2):207-207.
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