Results for 'genotype-phenotype map'

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  1. Genotypephenotype 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 genotypephenotype (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 The advent of evo-devo first and of the genomic era later would seem to have superseded talk of transitions in phenotypic space and the like, central to Alberch’s approach.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 (...)
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  2.  11
    Beyond genotypephenotype maps: Toward a phenotype‐centered perspective on evolution.Miguel Brun-Usan, Roland Zimm & Tobias Uller - 2022 - Bioessays 44 (9):2100225.
    Evolutionary biology is paying increasing attention to the mechanisms that enable phenotypic plasticity, evolvability, and extra‐genetic inheritance. Yet, there is a concern that these phenomena remain insufficiently integrated within evolutionary theory. Understanding their evolutionary implications would require focusing on phenotypes and their variation, but this does not always fit well with the prevalent genetic representation of evolution that screens off developmental mechanisms. Here, we instead use development as a starting point, and represent it in a way that allows genetic, environmental (...)
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  3.  59
    Genotype-Phenotype Maps.Peter F. Stadler & Bärbel M. R. Stadler - 2006 - Biological Theory 1 (3):268-279.
    The current implementation of the Neo-Darwinian model of evolution typically assumes that the set of possible phenotypes is organized into a highly symmetric and regular space. Most conveniently, a Euclidean vector space is used, representing phenotypic properties by real-valued variables. Computational work on the biophysical genotype-phenotype model of RNA folding, however, suggests a rather different picture. If phenotypes are organized according to genetic accessibility, the resulting space lacks a metric and can be formalized only in terms of a (...)
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  4. Robustness and the genotype phenotype maps.Philippe Huneman - unknown
     
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  5.  30
    Correlation of phenotype with genotype in inherited retinal degeneration.Stephen P. Daiger, Lori S. Sullivan & Joseph A. Rodriguez - 1995 - Behavioral and Brain Sciences 18 (3):452-467.
    Diseases causing inherited retinal degeneration in humans, such as retinitis pigmentosa and macular dystrophy, are genetically heterogeneous and clinically diverse. More than 40 genes causing retinal degeneration have been mapped to specific chromosomal sites; of these, at least 10 have been cloned and characterized. Mutations in two proteins, rhodopsin and peripherin/RDS, account for approximately 35% of all cases of autosomal dominant retinitis pigmentosa and a lesser fraction of other retinal conditions. This target article reviews the genes and mutations causing retinal (...)
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  6. Military Genomic Testing: Proportionality, Expected Benefits, and the Connection between Genotypes and Phenotypes.Charles H. Pence - 2015 - Journal of Law and the Biosciences 2 (1):85-91.
    Mehlman and Li offer a framework for approaching the bioethical issues raised by the military use of genomics that is compellingly grounded in both the contemporary civilian and military ethics of medical research, arguing that military commanders must be bound by the two principles of paternal- ism and proportionality. I agree fully. But I argue here that this is a much higher bar than we may fully realize. Just as the principle of proportionality relies upon a thorough assessment of harms (...)
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  7.  67
    The phenotypic gambit: selective pressures and ESS methodology in evolutionary game theory.Hannah Rubin - 2016 - Biology and Philosophy 31 (4):551-569.
    The ‘phenotypic gambit,’ the assumption that we can ignore genetics and look at the fitness of phenotypes to determine the expected evolutionary dynamics of a population, is often used in evolutionary game theory. However, as this paper will show, an overlooked genotype to phenotype map can qualitatively affect evolution in ways the phenotypic approach cannot predict or explain. This gives us reason to believe that, even in the long-term, correspondences between phenotypic predictions and dynamical outcomes are not robust (...)
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  8.  21
    Neutral Spaces and Topological Explanations in Evolutionary Biology: Lessons from Some Landscapes and Mappings.Philippe Huneman - 2018 - Philosophy of Science 85 (5):969-983.
    I consider recent uses of the notion of neutrality in evolutionary biology and ecology, questioning their relevance to the kind of explanation recently labeled ‘topological explanation’. Focusing on fitness landscapes and genotype-phenotype maps, I explore the explanatory uses of neutral subspaces, as modeled in two perspectives: hyperdimensional fitness landscapes and RNA sequence-structure maps. I argue that topological properties of such spaces account for features of evolutionary systems: respectively, capacity for adaptive evolution toward global optima and mutational robustness of (...)
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  9.  72
    Evolutionary systems biology: What it is and why it matters.Orkun S. Soyer & Maureen A. O'Malley - 2013 - Bioessays 35 (8):696-705.
    Evolutionary systems biology (ESB) is a rapidly growing integrative approach that has the core aim of generating mechanistic and evolutionary understanding of genotypephenotype relationships at multiple levels. ESB's more specific objectives include extending knowledge gained from model organisms to non‐model organisms, predicting the effects of mutations, and defining the core network structures and dynamics that have evolved to cause particular intracellular and intercellular responses. By combining mathematical, molecular, and cellular approaches to evolution, ESB adds new insights and methods (...)
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  10.  19
    The genotypephenotype distinction: from Mendelian genetics to 21st century biology.Gaëlle Pontarotti, Matteo Mossio & Arnaud Pocheville - unknown
    The Genotype-Phenotype (G-P) distinction was proposed in the context of Mendelian genetics, in the wake of late 19th century studies about heredity. In this paper, we provide a conceptual analysis that highlights that the G-P distinction was grounded on three pillars: observability, transmissibility, and causality. Originally, the genotype is the non-observable and transmissible cause of the phenotype, which is its observable and non-transmissible effect. We argue that the current developments of biology have called the validity of (...)
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  11. The genotype/phenotype distinction.Richard Lewontin - 2008 - Stanford Encyclopedia of Philosophy.
    The distinction between phenotype and genotype is fundamental to the understanding of heredity and development of organisms. The genotype of an organism is the class to which that organism belongs as determined by the description of the actual physical material made up of DNA that was passed to the organism by its parents at the organism's conception. For sexually reproducing organisms that physical material consists of the DNA contributed to the fertilized egg by the sperm and egg (...)
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  12.  76
    Establishing genotype/phenotype relationships: Gene targeting as an experimental approach.Sylvia Culp - 1997 - Philosophy of Science 64 (4):278.
    In this paper, I examine an experimental technique, gene targeting, used for establishing genotype/phenotype relationships. Through analyzing a case study, I identify many pitfalls that may lead to false conclusions about these relationships. I argue that some of these pitfalls may seriously affect gene targeting's usefulness for associating phenotypes with genes cataloged by the Human Genome Project. This case also shows the use of gene targeted mice as model systems for studying genotype/phenotype relationships in humans. Moreover, (...)
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  13.  6
    Evolution as an Unwrapping of the Gift of Freedom.Tom McLeish - 2020 - Scientia et Fides 8 (2):43-64.
    Extending the approach to a ‘theology of science’ developed in Faith and Wisdom in Science, I expand its theme of the tension between chaos and emergent order, within the arc of the Biblical story of creation, towards a theology of evolutionary science. In addition to the material in Job, the book of Wisdom provides a remarkable account of transmutation of species, within a recapitulation of the Exodus theme, that I juxtapose with a modern genotype-phenotype theory of evolutionary dynamics, (...)
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  14.  13
    Closing the genotypephenotype gap: Emerging technologies for evolutionary genetics in ecological model vertebrate systems.Claudius F. Kratochwil & Axel Meyer - 2015 - Bioessays 37 (2):213-226.
    The analysis of genetic and epigenetic mechanisms of the genotype–phenotypic connection has, so far, only been possible in a handful of genetic model systems. Recent technological advances, including next‐generation sequencing methods such as RNA‐seq, ChIP‐seq and RAD‐seq, and genome‐editing approaches including CRISPR‐Cas, now permit to address these fundamental questions of biology also in organisms that have been studied in their natural habitats. We provide an overview of the benefits and drawbacks of these novel techniques and experimental approaches that can (...)
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  15.  22
    Exploring Links between Genotypes, Phenotypes, and Clinical Predictors of Response to Early Intensive Behavioral Intervention in Autism Spectrum Disorder.Valsamma Eapen, Rudi Črnčec & Amelia Walter - 2013 - Frontiers in Human Neuroscience 7.
  16.  8
    The Complexity of the Genotype-Phenotype Relationship and the Limitations of Using Genetic “Markers” at the Individual Level.Alan R. Templeton - 1998 - Science in Context 11 (3-4):373-389.
    The ArgumentMany associations have recently been discovered between phenotypic variation and genetic loci, causing some to advocate what Robert Sinsheimer has called “a new eugenics” that would treat genetic “defects” in individuals prone to a disease. The first premise of this vision is that genetic association studies reveal the biological cause of the phenotypic variation. Once the responsible genes are known, the second premise is that we should focus upon changing “nature” rather than “nurture” by correcting the “defective” genes.The first (...)
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  17.  21
    Assumptions in studies of heritability and genotypephenotype association.Michael B. Miller, Colin G. DeYoung & Matt McGue - 2012 - Behavioral and Brain Sciences 35 (5):372-373.
    Charney's dismissal of well-established methods in behavioral genetic research is misguided. He claims that studies of heritability and genetic association depend for their validity on six assumptions, but he cites no sources to support this claim. We explain why none of the six assumptions is strictly necessary for the utility of either method of genetic analysis.
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  18.  43
    Beyond networks: mechanism and process in evo-devo.James DiFrisco & Johannes Jaeger - 2019 - Biology and Philosophy 34 (6):54.
    Explanation in terms of gene regulatory networks has become standard practice in evolutionary developmental biology. In this paper, we argue that GRNs fail to provide a robust, mechanistic, and dynamic understanding of the developmental processes underlying the genotypephenotype map. Explanations based on GRNs are limited by three main problems: the problem of genetic determinism, the problem of correspondence between network structure and function, and the problem of diachronicity, as in the unfolding of causal interactions over time. Overcoming these (...)
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  19.  41
    Modelling 'evo‐devo' with RNA.Walter Fontana - 2002 - Bioessays 24 (12):1164-1177.
    The folding of RNA sequences into secondary structures is a simple yet biophysically grounded model of a genotypephenotype map. Its computational and mathematical analysis has uncovered a surprisingly rich statistical structure characterized by shape space covering, neutral networks and plastogenetic congruence. I review these concepts and discuss their evolutionary implications. BioEssays 24:1164–1177, 2002. © 2002 Wiley‐Periodicals, Inc.
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  20.  71
    Why the (gene) counting argument fails in the massive modularity debate: The need for understanding gene concepts and genotype-phenotype relationships.Kathryn S. Plaisance, Thomas A. C. Reydon & Mehmet Elgin - 2012 - Philosophical Psychology 25 (6):873-892.
    A number of debates in philosophy of biology and psychology, as well as in their respective sciences, hinge on particular views about the relationship between genotypes and phenotypes. One such view is that the genotype-phenotype relationship is relatively straightforward, in the sense that a genome contains the ?genes for? the various traits that an organism exhibits. This leads to the assumption that if a particular set of traits is posited to be present in an organism, there must be (...)
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  21.  25
    Macroevolutionary Freezing and the Janusian Nature of Evolvability: Is the Evolution (of Profound Biological Novelty) Going to End?Jan Toman & Jaroslav Flegr - 2018 - Biosemiotics 11 (2):263-285.
    In a macroevolutionary timescale, evolvability itself evolves. Lineages are sorted based on their ability to generate adaptive novelties, which leads to the optimization of their genotype-phenotype map. The system of translation of genetic or epigenetic changes to the phenotype may reach significant horizontal and vertical complexity, and may even exhibit certain aspects of learning behaviour. This continuously evolving semiotic system probably enables the origin of complex yet functional and internally compatible adaptations. However, it also has a second, (...)
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  22.  36
    The Causality Horizon and the Developmental Bases of Morphological Evolution.Jukka Jernvall - 2013 - Biological Theory 8 (3):286-292.
    With the advent of evolutionary developmental research, or EvoDevo, there is hope of discovering the roles that the genetic bases of development play in morphological evolution. Studies in EvoDevo span several levels of organismal organization. Low-level studies identify the ultimate genetic changes responsible for morphological variation and diversity. High-level studies of development focus on how genetic differences affect the dynamics of gene networks and epigenetic interactions to modify morphology. Whereas an increasing number of studies link independent acquisition of homoplastic or (...)
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  23.  17
    Social Cognition in Williams Syndrome: Genotype/Phenotype Insights from Partial Deletion Patients.Annette Karmiloff-Smith, Hannah Broadbent, Emily K. Farran, Elena Longhi, Dean D’Souza, Kay Metcalfe, May Tassabehji, Rachel Wu, Atsushi Senju, Francesca Happé, Peter Turnpenny & Francis Sansbury - 2012 - Frontiers in Psychology 3.
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  24. General selection theory and economic evolution: The Price equation and the genotype/phenotype distinction, forthcoming in.T. Knudsen - forthcoming - Journal of Economic Methodology.
  25.  15
    The Phenotype/Genotype Distinction and the Disappearance of the Body.Gabriel Gudding - 1996 - Journal of the History of Ideas 57 (3):525-545.
    In lieu of an abstract, here is a brief excerpt of the content:The Phenotype/Genotype Distinction and the Disappearance of the BodyGabriel GuddingThe discipline of genetics has long been a rhetorical and heuristic locus for social and political issues. As such, the science has influenced culture through the avenues of law, medicine, warfare, social work, and even, since 1972 in California, the education of kindergarten students. It has affected how we view the body, morality, romance, biography, and agency—not to (...)
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  26.  27
    From genotype to phenotype: buffering mechanisms and the storage of genetic information.Suzanne L. Rutherford - 2000 - Bioessays 22 (12):1095-1105.
    DNA sequence variation is abundant in wild populations. While molecular biologists use genetically homogeneous strains of model organisms to avoid this variation, evolutionary biologists embrace genetic variation as the material of evolution since heritable differences in fitness drive evolutionary change. Yet, the relationship between the phenotypic variation affecting fitness and the genotypic variation producing it is complex. Genetic buffering mechanisms modify this relationship by concealing the effects of genetic and environmental variation on phenotype. Genetic buffering allows the build-up and (...)
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  27.  5
    Connecting phenotype to genotype: PheWAS-inspired analysis of autism spectrum disorder.John Matta, Daniel Dobrino, Dacosta Yeboah, Swade Howard, Yasser El-Manzalawy & Tayo Obafemi-Ajayi - 2022 - Frontiers in Human Neuroscience 16:960991.
    Autism Spectrum Disorder (ASD) is extremely heterogeneous clinically and genetically. There is a pressing need for a better understanding of the heterogeneity of ASD based on scientifically rigorous approaches centered on systematic evaluation of the clinical and research utility of both phenotype and genotype markers. This paper presents a holistic PheWAS-inspired method to identify meaningful associations between ASD phenotypes and genotypes. We generate two types of phenotype-phenotype (p-p) graphs: a direct graph that utilizes only phenotype (...)
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  28.  14
    Genotype Components as Predictors of Phenotype in Model Gene Regulatory Networks.S. Garte & A. Albert - 2019 - Acta Biotheoretica 67 (4):299-320.
    Models of gene regulatory networks have proven useful for understanding many aspects of the highly complex behavior of biological control networks. Randomly generated non-Boolean networks were used in experimental simulations to generate data on dynamic phenotypes as a function of several genotypic parameters. We found that predictive relationships between some phenotypes and quantitative genotypic parameters such as number of network genes, interaction density, and initial condition could be derived depending on the strength of the topological genotype on specific phenotypes. (...)
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  29. Phenotype-genotype dichotomy: an essay in theoretical biology.Piotr Lenartowicz - 1975 - Roma: Typis Pontificiae Universitatis Gregorianae.
  30.  17
    Linking genotypes with phenotypes in human retinal degenerations: Implications for future research and treatment.Michael W. Kaplan - 1995 - Behavioral and Brain Sciences 18 (3):478-479.
    Although undoubtedly it will be incomplete by the time it is published, the target article by Daiger et al. organizes mutations in genes that produce retinal degenerations in humans into categories of clinically relevant phenotypes. Such classifications should help us understand the link between altered photoreceptor cell proteins and subsequent cell death, and they may yield insight into methods for preventing consequent blindness.
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  31.  9
    Dimensional reduction in complex living systems: Where, why, and how.Jean-Pierre Eckmann & Tsvi Tlusty - 2021 - Bioessays 43 (9):2100062.
    The unprecedented prowess of measurement techniques provides a detailed, multi‐scale look into the depths of living systems. Understanding these avalanches of high‐dimensional data—by distilling underlying principles and mechanisms—necessitates dimensional reduction. We propose that living systems achieve exquisite dimensional reduction, originating from their capacity to learn, through evolution and phenotypic plasticity, the relevant aspects of a non‐random, smooth physical reality. We explain how geometric insights by mathematicians allow one to identify these genuine hallmarks of life and distinguish them from universal properties (...)
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  32.  21
    Grains of Description in Biological and Cultural Transmission.Pierrick Bourrat & Mathieu Charbonneau - 2022 - Journal of Cognition and Culture 22 (3-4):185-202.
    The question of whether cultural transmission is faithful has attracted significant debate over the last 30 years. The degree of fidelity with which an object is transmitted depends on 1) the features chosen to be relevant, and 2) the quantity of details given about those features. Once these choices have been made, an object is described at a particular grain. In the absence of conventions between different researchers and across different fields about which grain to use, transmission fidelity cannot be (...)
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  33.  89
    Developmental causation and the problem of homology.David A. Baum - 2013 - Philosophy, Theory, and Practice in Biology 5 (20150505).
    While it is generally agreed that the concept of homology refers to individuated traits that have been inherited from common ancestry, we still lack an adequate account of trait individuation or inheritance. Here I propose that we utilize a counterfactual criterion of causation to link each trait with a developmental-causal (DC) gene. A DC gene is made up of the genetic information (which might or might not be physically contiguous in the genome) that is needed for the production of the (...)
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  34. What are we to make of the concept of race? Thoughts of a philosopher–scientist.Massimo Pigliucci - 2013 - Studies in History and Philosophy of Science Part C: Studies in History and Philosophy of Biological and Biomedical Sciences 44 (3):272-277.
    Discussions about the biological bases (or lack thereof) of the concept of race in the human species seem to be never ending. One of the latest rounds is represented by a paper by Neven Sesardic, which attempts to build a strong scientific case for the existence of human races, based on genetic, morphometric and behavioral characteristics, as well as on a thorough critique of opposing positions. In this paper I show that Sesardic’s critique falls far short of the goal, and (...)
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  35.  30
    Examining the “Best of Both Worlds” of Grammatical Evolution.Peter Whigham, Grant Dick, James Maclaurin & Caitlin Owen - 2015 - Proceedings of the 2015 Genetic and Evolutionary Computation 2015:1111-1118.
    Grammatical Evolution (GE) has a long history in evolutionary computation. Central to the behaviour of GE is the use of a linear representation and grammar to map individuals from search spaces into problem spaces. This genotype to phenotype mapping is often argued as a distinguishing property of GE relative to other techniques, such as context-free grammar genetic programming (CFG-GP). Since its initial description, GE research has attempted to incorporate information from the grammar into crossover, mutation, and individual initialisation, (...)
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  36.  35
    Genethics 2.0: Phenotypes, Genotypes, and the Challenge of Databases Generated by Personal Genome Testing.Karin Esposito & Kenneth Goodman - 2009 - American Journal of Bioethics 9 (6-7):19-21.
  37.  82
    Evolutionary epistemology: What phenotype is selected and which genotype evolves?Raphael Falk - 1993 - Biology and Philosophy 8 (2):153-172.
    In 1941/42 Konrad Lorenz suggested that Kant's transcendental categories ofa priori knowledge could be given an empirical interpretation in Darwinian material evolutionary terms: a priori propositional knowledge was an organ subject to natural selection for adaptation to its specific environments. D. Campbell extended the conception, and termed evolution a process of knowledge. The philosophical problem of what knowledge is became a descriptive one of how knowledge developed, the normative semantic questions have been sidestepped, as if the descriptive insights would automatically (...)
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  38.  22
    Autism Spectrum Disorders: From Genotypes to Phenotypes.Valsamma Eapen & Raymond A. Clarke - 2014 - Frontiers in Human Neuroscience 8.
  39.  15
    Between the genotype and the phenotype lies the microbiome: symbiosis and the making of ‘postgenomic’ knowledge.Cécile Fasel & Luca Chiapperino - 2023 - History and Philosophy of the Life Sciences 45 (4):1-24.
    Emphatic claims of a “microbiome revolution” aside, the study of the gut microbiota and its role in organismal development and evolution is a central feature of so-called postgenomics; namely, a conceptual and/or practical turn in contemporary life sciences, which departs from genetic determinism and reductionism to explore holism, emergentism and complexity in biological knowledge-production. This paper analyses the making of postgenomic knowledge about developmental symbiosis in Drosophila melanogaster by a specific group of microbiome scientists. Drawing from both practical philosophy of (...)
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  40.  42
    It Takes Two to Tango: Genotyping and Phenotyping in Genome-Wide Association Studies.Ohad Nachtomy, Yaron Ramati, Ayelet Shavit & Zohar Yakhini - 2009 - Biological Theory 4 (3):294-301.
    In this article we examine the “phenotype” concept in light of recent technological advances in Genome-Wide Association Studies . By observing the technology and its presuppositions, we put forward the thesis that at least in this case genotype and phenotype are effectively coidentifled one by means of the other. We suggest that the coidentiflcation of genotype-phenotype couples in expression-based GWAS also indicates a conceptual dependence, which we call “co-deñnition.” We note that viewing these terms as (...)
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  41.  75
    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 (...)
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  42. An Invitation to Explore Unexamined Shifts and Variety in the Meanings of Genotype and Phenotype, and Their Distinction.Peter J. Taylor - 2018 - Philosophy, Theory, and Practice in Biology 10 (6).
    Noting minimal philosophical attention to the shift of the meanings of “genotype” and “phenotype,” and their distinction, as well as to the variety of meanings that have co-existed over the last hundred years, this note invites readers to join in exploring the implications of shifts that have been left unexamined.
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  43.  26
    Gene silencing is an ancient means of producing multiple phenotypes from the same genotype.Neil A. Youngson, Suyinn Chong & Emma Whitelaw - 2011 - Bioessays 33 (2):95-99.
  44.  11
    A Longitudinal Multilevel Study of the “Social” Genotype and Diversity of the Phenotype.Elli Oksman, Tom Rosenström, Mirka Hintsanen, Laura Pulkki-Råback, Jorma Viikari, Terho Lehtimäki, Olli Tuomas Raitakari & Liisa Keltikangas-Järvinen - 2018 - Frontiers in Psychology 9.
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  45. Individuals with sex chromosomal aneuploidies: Does the phenotype reflect the genotype?Susan B. Jimenez - 1991 - Nexus 9 (1):9.
     
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  46. Extended phenotypes and extended organisms.J. Scott Turner - 2004 - Biology and Philosophy 19 (3):327-352.
    Phenotype, whether conventional or extended, is defined as a reflectionof an underlying genotype. Adaptation and the natural selection thatfollows from it depends upon a progressively harmonious fit betweenphenotype and environment. There is in Richard Dawkins' notion ofthe extended phenotype a paradox that seems to undercut conventionalviews of adaptation, natural selection and adaptation. In a nutshell, ifthe phenotype includes an organism's environment, how then can theorganism adapt to itself? The paradox is resolvable through aphysiological, as opposed to (...)
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  47.  36
    Digital Phenotyping: an Epistemic and Methodological Analysis.Simon Coghlan & Simon D’Alfonso - 2021 - Philosophy and Technology 34 (4):1905-1928.
    Some claim that digital phenotyping will revolutionize understanding of human psychology and experience and significantly promote human wellbeing. This paper investigates the nature of digital phenotyping in relation to its alleged promise. Unlike most of the literature to date on philosophy and digital phenotyping, which has focused on its ethical aspects, this paper focuses on its epistemic and methodological aspects. The paper advances a tetra-taxonomy involving four scenario types in which knowledge may be acquired from human “digitypes” by digital phenotyping. (...)
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  48.  31
    Phenotypes from ancient DNA: Approaches, insights and prospects.Gloria G. Fortes, Camilla F. Speller, Michael Hofreiter & Turi E. King - 2013 - Bioessays 35 (8):690-695.
    The great majority of phenotypic characteristics are complex traits, complicating the identification of the genes underlying their expression. However, both methodological and theoretical progress in genome‐wide association studies have resulted in a much better understanding of the underlying genetics of many phenotypic traits, including externally visible characteristics (EVCs) such as eye and hair color. Consequently, it has become possible to predict EVCs from human samples lacking phenotypic information. Predicting EVCs from genetic evidence is clearly appealing for forensic applications involving the (...)
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  49.  15
    A special role for the genotype? Some comments on Keith Baverstock: “The gene: An appraisal”.Nils Roll-Hansen - forthcoming - Progress in Biophysics and Molecular Biology.
    There is at present uneasiness about the conceptual basis of genetics. The gene concept has become blurred and there are problems with the distinction between genotype and phenotype. In the present paper I go back to their role in the creation of modern genetics in the early twentieth century. The terms were introduced by the Danish botanist and geneticist Wilhelm Johannsen in his big textbook of 1909. Historical accounts usually concentrate on this book and his 1911 paper “The (...)
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  50.  15
    The Phenotype as the Level of Selection: Cave Organisms as Model Systems.Thomas C. Kane, Robert C. Richardson & Daniel W. Fong - 1990 - PSA: Proceedings of the Biennial Meeting of the Philosophy of Science Association 1990:151-164.
    Selection operates at many levels. Robert Brandon has distinguished the question of the level of selection from the unit of selection, arguing that the phenotype is commonly the target of selection, whatever the unit of selection might be. He uses "screening off" as a criterion for distinguishing the level of selection. Cave animals show a common morphological pattern which includes hypertrophy of some structures and reduction or loss of others. In a study of a cave dwelling crustacean, Gammarus minus, (...)
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