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  1. Events in Early Nervous System Evolution.Michael G. Paulin & Joseph Cahill-Lane - 2021 - Topics in Cognitive Science 13 (1):25-44.
    Paulin and Cahill‐Lane explore the origins of event processing and event prediction in animal evolution. They propose that the evolutionary benefit of being able to predict and thus to quickly react to anticipated events may have triggered the evolution of the earliest nervous systems.
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  • On an evolutionary foundation of neuroeconomics.Burkhard C. Schipper - 2008 - Economics and Philosophy 24 (3):495-513.
    Neuroeconomics focuses on brain imaging studies mapping neural responses to choice behaviour. Economic theory is concerned with choice behaviour but it is silent on neural activities. We present a game theoretic model in which players are endowed with an additional structure – a simple “nervous system” – and interact repeatedly in changing games. The nervous system constrains information processing functions and behavioural functions. By reinterpreting results from evolutionary game theory, we suggest that nervous systems can develop to “function well” in (...)
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  • Histories of molecules: Reconciling the past.Maureen A. O'Malley - 2016 - Studies in History and Philosophy of Science Part A 55 (C):69-83.
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  • (1 other version)The enigmatic Placozoa part 1: Exploring evolutionary controversies and poor ecological knowledge.Bernd Schierwater, Hans-Jürgen Osigus, Tjard Bergmann, Neil W. Blackstone, Heike Hadrys, Jens Hauslage, Patrick O. Humbert, Kai Kamm, Marc Kvansakul, Kathrin Wysocki & Rob DeSalle - 2021 - Bioessays 43 (10):2100080.
    The placozoan Trichoplax adhaerens is a tiny hairy plate and more simply organized than any other living metazoan. After its original description by F.E. Schulze in 1883, it attracted attention as a potential model for the ancestral state of metazoan organization, the “Urmetazoon”. Trichoplax lacks any kind of symmetry, organs, nerve cells, muscle cells, basal lamina, and extracellular matrix. Furthermore, the placozoan genome is the smallest (not secondarily reduced) genome of all metazoan genomes. It harbors a remarkably rich diversity of (...)
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  • The origin of Metazoa: a transition from temporal to spatial cell differentiation.Kirill V. Mikhailov, Anastasiya V. Konstantinova, Mikhail A. Nikitin, Peter V. Troshin, Leonid Yu Rusin, Vassily A. Lyubetsky, Yuri V. Panchin, Alexander P. Mylnikov, Leonid L. Moroz, Sudhir Kumar & Vladimir V. Aleoshin - 2009 - Bioessays 31 (7):758-768.
    For over a century, Haeckel's Gastraea theory remained a dominant theory to explain the origin of multicellular animals. According to this theory, the animal ancestor was a blastula‐like colony of uniform cells that gradually evolved cell differentiation. Today, however, genes that typically control metazoan development, cell differentiation, cell‐to‐cell adhesion, and cell‐to‐matrix adhesion are found in various unicellular relatives of the Metazoa, which suggests the origin of the genetic programs of cell differentiation and adhesion in the root of the Opisthokonta. Multicellular (...)
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  • (1 other version)The enigmatic Placozoa part 2: Exploring evolutionary controversies and promising questions on earth and in space.Bernd Schierwater, Hans-Jürgen Osigus, Tjard Bergmann, Neil W. Blackstone, Heike Hadrys, Jens Hauslage, Patrick O. Humbert, Kai Kamm, Marc Kvansakul, Kathrin Wysocki & Rob DeSalle - 2021 - Bioessays 43 (10):2100083.
    The placozoan Trichoplax adhaerens has been bridging gaps between research disciplines like no other animal. As outlined in part 1, placozoans have been subject of hot evolutionary debates and placozoans have challenged some fundamental evolutionary concepts. Here in part 2 we discuss the exceptional genetics of the phylum Placozoa and point out some challenging model system applications for the best known species, Trichoplax adhaerens.
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