Growth produces coordination trade-offs in Trichoplax adhaerens , an animal lacking a central nervous system
How collectives remain coordinated as they grow in size is a fundamental challenge affecting systems ranging from biofilms to governments. This challenge is particularly apparent in multicellular organisms, where coordination among a vast number of cells is vital for coherent animal behavior. Howeve...
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Veröffentlicht in: | Proceedings of the National Academy of Sciences - PNAS 2023-03, Vol.120 (11), p.e2206163120-e2206163120 |
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Sprache: | eng |
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Zusammenfassung: | How collectives remain coordinated as they grow in size is a fundamental challenge affecting systems ranging from biofilms to governments. This challenge is particularly apparent in multicellular organisms, where coordination among a vast number of cells is vital for coherent animal behavior. However, the earliest multicellular organisms were decentralized, with indeterminate sizes and morphologies, as exemplified by
, arguably the earliest-diverged and simplest motile animal. We investigated coordination among cells in
by observing the degree of collective order in locomotion across animals of differing sizes and found that larger individuals exhibit increasingly disordered locomotion. We reproduced this effect of size on order through a simulation model of active elastic cellular sheets and demonstrate that this relationship is best recapitulated across all body sizes when the simulation parameters are tuned to a critical point in the parameter space. We quantify the trade-off between increasing size and coordination in a multicellular animal with a decentralized anatomy that shows evidence of criticality and hypothesize as to the implications of this on the evolution hierarchical structures such as nervous systems in larger organisms. |
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ISSN: | 0027-8424 1091-6490 |
DOI: | 10.1073/pnas.2206163120 |