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A role for axon–glial interactions and Netrin-G1 signaling in the formation of low-threshold mechanoreceptor end organs

Low-threshold mechanoreceptors (LTMRs) and their cutaneous end organs convert light mechanical forces acting on the skin into electrical signals that propagate to the central nervous system. In mouse hairy skin, hair follicle–associated longitudinal lanceolate complexes, which are end organs compris...

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Autores principales: Meltzer, Shan, Boulanger, Katelyn C., Osei-Asante, Emmanuella, Handler, Annie, Zhang, Qiyu, Sano, Chie, Itohara, Shigeyoshi, Ginty, David D.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: National Academy of Sciences 2022
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9618144/
https://www.ncbi.nlm.nih.gov/pubmed/36252008
http://dx.doi.org/10.1073/pnas.2210421119
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author Meltzer, Shan
Boulanger, Katelyn C.
Osei-Asante, Emmanuella
Handler, Annie
Zhang, Qiyu
Sano, Chie
Itohara, Shigeyoshi
Ginty, David D.
author_facet Meltzer, Shan
Boulanger, Katelyn C.
Osei-Asante, Emmanuella
Handler, Annie
Zhang, Qiyu
Sano, Chie
Itohara, Shigeyoshi
Ginty, David D.
author_sort Meltzer, Shan
collection PubMed
description Low-threshold mechanoreceptors (LTMRs) and their cutaneous end organs convert light mechanical forces acting on the skin into electrical signals that propagate to the central nervous system. In mouse hairy skin, hair follicle–associated longitudinal lanceolate complexes, which are end organs comprising LTMR axonal endings that intimately associate with terminal Schwann cell (TSC) processes, mediate LTMR responses to hair deflection and skin indentation. Here, we characterized developmental steps leading to the formation of Aβ rapidly adapting (RA)-LTMR and Aδ-LTMR lanceolate complexes. During early postnatal development, Aβ RA-LTMRs and Aδ-LTMRs extend and prune cutaneous axonal branches in close association with nascent TSC processes. Netrin-G1 is expressed in these developing Aβ RA-LTMR and Aδ-LTMR lanceolate endings, and Ntng1 ablation experiments indicate that Netrin-G1 functions in sensory neurons to promote lanceolate ending elaboration around hair follicles. The Netrin-G ligand (NGL-1), encoded by Lrrc4c, is expressed in TSCs, and ablation of Lrrc4c partially phenocopied the lanceolate complex deficits observed in Ntng1 mutants. Moreover, NGL-1–Netrin-G1 signaling is a general mediator of LTMR end organ formation across diverse tissue types demonstrated by the fact that Aβ RA-LTMR endings associated with Meissner corpuscles and Pacinian corpuscles are also compromised in the Ntng1 and Lrrc4c mutant mice. Thus, axon–glia interactions, mediated in part by NGL-1–Netrin-G1 signaling, promote LTMR end organ formation.
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spelling pubmed-96181442022-10-31 A role for axon–glial interactions and Netrin-G1 signaling in the formation of low-threshold mechanoreceptor end organs Meltzer, Shan Boulanger, Katelyn C. Osei-Asante, Emmanuella Handler, Annie Zhang, Qiyu Sano, Chie Itohara, Shigeyoshi Ginty, David D. Proc Natl Acad Sci U S A Biological Sciences Low-threshold mechanoreceptors (LTMRs) and their cutaneous end organs convert light mechanical forces acting on the skin into electrical signals that propagate to the central nervous system. In mouse hairy skin, hair follicle–associated longitudinal lanceolate complexes, which are end organs comprising LTMR axonal endings that intimately associate with terminal Schwann cell (TSC) processes, mediate LTMR responses to hair deflection and skin indentation. Here, we characterized developmental steps leading to the formation of Aβ rapidly adapting (RA)-LTMR and Aδ-LTMR lanceolate complexes. During early postnatal development, Aβ RA-LTMRs and Aδ-LTMRs extend and prune cutaneous axonal branches in close association with nascent TSC processes. Netrin-G1 is expressed in these developing Aβ RA-LTMR and Aδ-LTMR lanceolate endings, and Ntng1 ablation experiments indicate that Netrin-G1 functions in sensory neurons to promote lanceolate ending elaboration around hair follicles. The Netrin-G ligand (NGL-1), encoded by Lrrc4c, is expressed in TSCs, and ablation of Lrrc4c partially phenocopied the lanceolate complex deficits observed in Ntng1 mutants. Moreover, NGL-1–Netrin-G1 signaling is a general mediator of LTMR end organ formation across diverse tissue types demonstrated by the fact that Aβ RA-LTMR endings associated with Meissner corpuscles and Pacinian corpuscles are also compromised in the Ntng1 and Lrrc4c mutant mice. Thus, axon–glia interactions, mediated in part by NGL-1–Netrin-G1 signaling, promote LTMR end organ formation. National Academy of Sciences 2022-10-17 2022-10-25 /pmc/articles/PMC9618144/ /pubmed/36252008 http://dx.doi.org/10.1073/pnas.2210421119 Text en Copyright © 2022 the Author(s). Published by PNAS. https://creativecommons.org/licenses/by/4.0/This open access article is distributed under Creative Commons Attribution License 4.0 (CC BY) (https://creativecommons.org/licenses/by/4.0/) .
spellingShingle Biological Sciences
Meltzer, Shan
Boulanger, Katelyn C.
Osei-Asante, Emmanuella
Handler, Annie
Zhang, Qiyu
Sano, Chie
Itohara, Shigeyoshi
Ginty, David D.
A role for axon–glial interactions and Netrin-G1 signaling in the formation of low-threshold mechanoreceptor end organs
title A role for axon–glial interactions and Netrin-G1 signaling in the formation of low-threshold mechanoreceptor end organs
title_full A role for axon–glial interactions and Netrin-G1 signaling in the formation of low-threshold mechanoreceptor end organs
title_fullStr A role for axon–glial interactions and Netrin-G1 signaling in the formation of low-threshold mechanoreceptor end organs
title_full_unstemmed A role for axon–glial interactions and Netrin-G1 signaling in the formation of low-threshold mechanoreceptor end organs
title_short A role for axon–glial interactions and Netrin-G1 signaling in the formation of low-threshold mechanoreceptor end organs
title_sort role for axon–glial interactions and netrin-g1 signaling in the formation of low-threshold mechanoreceptor end organs
topic Biological Sciences
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9618144/
https://www.ncbi.nlm.nih.gov/pubmed/36252008
http://dx.doi.org/10.1073/pnas.2210421119
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