Prototypical pacemaker neurons interact with the resident microbiota

Pacemaker neurons exert control over neuronal circuit function by their intrinsic ability to generate rhythmic bursts of action potential. Recent work has identified rhythmic gut contractions in human, mice, and hydra to be dependent on both neurons and the resident microbiota. However, little is kn...

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Veröffentlicht in:Proceedings of the National Academy of Sciences - PNAS 2020-07, Vol.117 (30), p.17854-17863
Hauptverfasser: Klimovich, Alexander, Giacomello, Stefania, Björklund, Åsa, Faure, Louis, Kaucka, Marketa, Giez, Christoph, Murillo-Rincon, Andrea P., Matt, Ann-Sophie, Willoweit-Ohl, Doris, Crupi, Gabriele, de Anda, Jaime, Wong, Gerard C. L., D’Amato, Mauro, Adameyko, Igor, Bosch, Thomas C. G.
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Sprache:eng
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Zusammenfassung:Pacemaker neurons exert control over neuronal circuit function by their intrinsic ability to generate rhythmic bursts of action potential. Recent work has identified rhythmic gut contractions in human, mice, and hydra to be dependent on both neurons and the resident microbiota. However, little is known about the evolutionary origin of these neurons and their interaction with microbes. In this study, we identified and functionally characterized prototypical ANO/SCN/TRPMion channel-expressing pacemaker cells in the basal metazoan Hydra by using a combination of single-cell transcriptomics, immunochemistry, and functional experiments. Unexpectedly, these prototypical pacemaker neurons express a rich set of immune-related genes mediating their interaction with the microbial environment. Furthermore, functional experiments gave a strong support to a model of the evolutionary emergence of pacemaker cells as neurons using components of innate immunity to interact with the microbial environment and ion channels to generate rhythmic contractions
ISSN:0027-8424
1091-6490
1091-6490
DOI:10.1073/pnas.1920469117