Gastric pouches and the mucociliary sole: setting the stage for nervous system evolution
Prerequisite for tracing nervous system evolution is understanding of the body plan, feeding behaviour and locomotion of the first animals in which neurons evolved. Here, a comprehensive scenario is presented for the diversification of cell types in early metazoans, which enhanced feeding efficiency...
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Veröffentlicht in: | Philosophical transactions of the Royal Society of London. Series B. Biological sciences 2015-12, Vol.370 (1684), p.20150286-20150286 |
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creator | Arendt, Detlev Benito-Gutierrez, Elia Brunet, Thibaut Marlow, Heather |
description | Prerequisite for tracing nervous system evolution is understanding of the body plan, feeding behaviour and locomotion of the first animals in which neurons evolved. Here, a comprehensive scenario is presented for the diversification of cell types in early metazoans, which enhanced feeding efficiency and led to the emergence of larger animals that were able to move. Starting from cup-shaped, gastraea-like animals with outer and inner choanoflagellate-like cells, two major innovations are discussed that set the stage for nervous system evolution. First, the invention of a mucociliary sole entailed a switch from intra- to extracellular digestion and increased the concentration of nutrients flowing into the gastric cavity. In these animals, an initial nerve net may have evolved via division of labour from mechanosensory-contractile cells in the lateral body wall, enabling coordinated movement of the growing body that involved both mucociliary creeping and changes of body shape. Second, the inner surface of the animals folded into metameric series of gastric pouches, which optimized nutrient resorption and allowed larger body sizes. The concomitant acquisition of bilateral symmetry may have allowed more directed locomotion and, with more demanding coordinative tasks, triggered the evolution of specialized nervous subsystems. Animals of this organizational state would have resembled Ediacarian fossils such as Dickinsonia and may have been close to the cnidarian–bilaterian ancestor. In the bilaterian lineage, the mucociliary sole was used mostly for creeping, or frequently lost. One possible remnant is the enigmatic Reissner's fibre in the ventral neural tube of cephalochordates and vertebrates. |
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Here, a comprehensive scenario is presented for the diversification of cell types in early metazoans, which enhanced feeding efficiency and led to the emergence of larger animals that were able to move. Starting from cup-shaped, gastraea-like animals with outer and inner choanoflagellate-like cells, two major innovations are discussed that set the stage for nervous system evolution. First, the invention of a mucociliary sole entailed a switch from intra- to extracellular digestion and increased the concentration of nutrients flowing into the gastric cavity. In these animals, an initial nerve net may have evolved via division of labour from mechanosensory-contractile cells in the lateral body wall, enabling coordinated movement of the growing body that involved both mucociliary creeping and changes of body shape. Second, the inner surface of the animals folded into metameric series of gastric pouches, which optimized nutrient resorption and allowed larger body sizes. The concomitant acquisition of bilateral symmetry may have allowed more directed locomotion and, with more demanding coordinative tasks, triggered the evolution of specialized nervous subsystems. Animals of this organizational state would have resembled Ediacarian fossils such as Dickinsonia and may have been close to the cnidarian–bilaterian ancestor. In the bilaterian lineage, the mucociliary sole was used mostly for creeping, or frequently lost. One possible remnant is the enigmatic Reissner's fibre in the ventral neural tube of cephalochordates and vertebrates.</description><identifier>ISSN: 0962-8436</identifier><identifier>EISSN: 1471-2970</identifier><identifier>DOI: 10.1098/rstb.2015.0286</identifier><identifier>PMID: 26554050</identifier><language>eng</language><publisher>England: The Royal Society</publisher><subject>Animals ; Bhlh ; Bilateria ; Biological Evolution ; Cephalochordata ; Fossils ; Fox Transcription Factors ; Gastric Pouches ; Gastrointestinal Tract - anatomy & histology ; Metazoa ; Mucociliary Sole ; Nerve Net ; Nervous System - anatomy & histology ; Nervous System Evolution ; Reissner's Fibre ; Review</subject><ispartof>Philosophical transactions of the Royal Society of London. Series B. 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Series B. Biological sciences</title><addtitle>Phil. Trans. R. Soc. B</addtitle><addtitle>Philos Trans R Soc Lond B Biol Sci</addtitle><description>Prerequisite for tracing nervous system evolution is understanding of the body plan, feeding behaviour and locomotion of the first animals in which neurons evolved. Here, a comprehensive scenario is presented for the diversification of cell types in early metazoans, which enhanced feeding efficiency and led to the emergence of larger animals that were able to move. Starting from cup-shaped, gastraea-like animals with outer and inner choanoflagellate-like cells, two major innovations are discussed that set the stage for nervous system evolution. First, the invention of a mucociliary sole entailed a switch from intra- to extracellular digestion and increased the concentration of nutrients flowing into the gastric cavity. In these animals, an initial nerve net may have evolved via division of labour from mechanosensory-contractile cells in the lateral body wall, enabling coordinated movement of the growing body that involved both mucociliary creeping and changes of body shape. Second, the inner surface of the animals folded into metameric series of gastric pouches, which optimized nutrient resorption and allowed larger body sizes. The concomitant acquisition of bilateral symmetry may have allowed more directed locomotion and, with more demanding coordinative tasks, triggered the evolution of specialized nervous subsystems. Animals of this organizational state would have resembled Ediacarian fossils such as Dickinsonia and may have been close to the cnidarian–bilaterian ancestor. In the bilaterian lineage, the mucociliary sole was used mostly for creeping, or frequently lost. One possible remnant is the enigmatic Reissner's fibre in the ventral neural tube of cephalochordates and vertebrates.</description><subject>Animals</subject><subject>Bhlh</subject><subject>Bilateria</subject><subject>Biological Evolution</subject><subject>Cephalochordata</subject><subject>Fossils</subject><subject>Fox Transcription Factors</subject><subject>Gastric Pouches</subject><subject>Gastrointestinal Tract - anatomy & histology</subject><subject>Metazoa</subject><subject>Mucociliary Sole</subject><subject>Nerve Net</subject><subject>Nervous System - anatomy & histology</subject><subject>Nervous System Evolution</subject><subject>Reissner's Fibre</subject><subject>Review</subject><issn>0962-8436</issn><issn>1471-2970</issn><fulltext>true</fulltext><rsrctype>article</rsrctype><creationdate>2015</creationdate><recordtype>article</recordtype><sourceid>EIF</sourceid><recordid>eNqFkc9rFDEcxYModq1ePUqOXmb9Jpn88iBo0SoUBK3gLWQymd3U2cmaZBbWv95stxaLqKcQ3iff9755CD0lsCSg1YuUS7ekQPgSqBL30IK0kjRUS7iPFqAFbVTLxAl6lPMVAGgu24fohArOW-CwQF_PbS4pOLyNs1v7jO3U47L2eDO76MIYbNrjHEf_EmdfSphW12ouduXxEBOefNrFOeO8z8VvsN_FcS4hTo_Rg8GO2T-5OU_Rl3dvL8_eNxcfzz-cvb5onGCsNIrWVIPjFHptre1lp6zoB9FzqUTHeSe5sM72XDnlKOihHzrpQHatBgZSs1P06jh3O3cb3zs_lWRHs01hU6ObaIO5q0xhbVZxZ1rBgbC2Dnh-MyDF77PPxWxCdn4c7eTrYoYoUEISoOL_qGSUayk1rejyiLoUc05-uE1EwByaM4fmzKE5c2iuPnj2-x63-K-qKvDtCKS4rx9ay_Flb67inKZ6NZ8-X77ZMQmBCNUaUIyA4KQF8yNsj15VNCHn2Ztr5K7_n3HYv9z-ssRPFCTLZQ</recordid><startdate>20151219</startdate><enddate>20151219</enddate><creator>Arendt, Detlev</creator><creator>Benito-Gutierrez, Elia</creator><creator>Brunet, Thibaut</creator><creator>Marlow, Heather</creator><general>The Royal Society</general><scope>CGR</scope><scope>CUY</scope><scope>CVF</scope><scope>ECM</scope><scope>EIF</scope><scope>NPM</scope><scope>AAYXX</scope><scope>CITATION</scope><scope>7X8</scope><scope>7SN</scope><scope>7TK</scope><scope>C1K</scope><scope>5PM</scope></search><sort><creationdate>20151219</creationdate><title>Gastric pouches and the mucociliary sole: setting the stage for nervous system evolution</title><author>Arendt, Detlev ; Benito-Gutierrez, Elia ; Brunet, Thibaut ; Marlow, Heather</author></sort><facets><frbrtype>5</frbrtype><frbrgroupid>cdi_FETCH-LOGICAL-c633t-82000fc520d9aaad7b8a6df6d5786b55b756acad58c8c209fdfb7c07b49030793</frbrgroupid><rsrctype>articles</rsrctype><prefilter>articles</prefilter><language>eng</language><creationdate>2015</creationdate><topic>Animals</topic><topic>Bhlh</topic><topic>Bilateria</topic><topic>Biological Evolution</topic><topic>Cephalochordata</topic><topic>Fossils</topic><topic>Fox Transcription Factors</topic><topic>Gastric Pouches</topic><topic>Gastrointestinal Tract - anatomy & histology</topic><topic>Metazoa</topic><topic>Mucociliary Sole</topic><topic>Nerve Net</topic><topic>Nervous System - anatomy & histology</topic><topic>Nervous System Evolution</topic><topic>Reissner's Fibre</topic><topic>Review</topic><toplevel>peer_reviewed</toplevel><toplevel>online_resources</toplevel><creatorcontrib>Arendt, Detlev</creatorcontrib><creatorcontrib>Benito-Gutierrez, Elia</creatorcontrib><creatorcontrib>Brunet, Thibaut</creatorcontrib><creatorcontrib>Marlow, Heather</creatorcontrib><collection>Medline</collection><collection>MEDLINE</collection><collection>MEDLINE (Ovid)</collection><collection>MEDLINE</collection><collection>MEDLINE</collection><collection>PubMed</collection><collection>CrossRef</collection><collection>MEDLINE - Academic</collection><collection>Ecology Abstracts</collection><collection>Neurosciences Abstracts</collection><collection>Environmental Sciences and Pollution Management</collection><collection>PubMed Central (Full Participant titles)</collection><jtitle>Philosophical transactions of the Royal Society of London. 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B</stitle><addtitle>Philos Trans R Soc Lond B Biol Sci</addtitle><date>2015-12-19</date><risdate>2015</risdate><volume>370</volume><issue>1684</issue><spage>20150286</spage><epage>20150286</epage><pages>20150286-20150286</pages><issn>0962-8436</issn><eissn>1471-2970</eissn><abstract>Prerequisite for tracing nervous system evolution is understanding of the body plan, feeding behaviour and locomotion of the first animals in which neurons evolved. Here, a comprehensive scenario is presented for the diversification of cell types in early metazoans, which enhanced feeding efficiency and led to the emergence of larger animals that were able to move. Starting from cup-shaped, gastraea-like animals with outer and inner choanoflagellate-like cells, two major innovations are discussed that set the stage for nervous system evolution. First, the invention of a mucociliary sole entailed a switch from intra- to extracellular digestion and increased the concentration of nutrients flowing into the gastric cavity. In these animals, an initial nerve net may have evolved via division of labour from mechanosensory-contractile cells in the lateral body wall, enabling coordinated movement of the growing body that involved both mucociliary creeping and changes of body shape. Second, the inner surface of the animals folded into metameric series of gastric pouches, which optimized nutrient resorption and allowed larger body sizes. The concomitant acquisition of bilateral symmetry may have allowed more directed locomotion and, with more demanding coordinative tasks, triggered the evolution of specialized nervous subsystems. Animals of this organizational state would have resembled Ediacarian fossils such as Dickinsonia and may have been close to the cnidarian–bilaterian ancestor. 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subjects | Animals Bhlh Bilateria Biological Evolution Cephalochordata Fossils Fox Transcription Factors Gastric Pouches Gastrointestinal Tract - anatomy & histology Metazoa Mucociliary Sole Nerve Net Nervous System - anatomy & histology Nervous System Evolution Reissner's Fibre Review |
title | Gastric pouches and the mucociliary sole: setting the stage for nervous system evolution |
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