4.5 Article

Neuronal membrane glycoprotein (nmgp-1) gene deficiency affects chemosensation-related behaviors, dauer exit and egg-laying in Caenorhabditis elegans

期刊

JOURNAL OF NEUROCHEMISTRY
卷 160, 期 2, 页码 234-255

出版社

WILEY
DOI: 10.1111/jnc.15543

关键词

pheromone-sensing ASJ neurons; bag-of-worms; chemotaxis; gene expression; GPM6A; nervous system; neuropsychiatric diseases; PLP family; stress

资金

  1. Fondo para la Investigacion Cientifica y Tecnologica [PICT 2016-0170, PICT 2017-1736]
  2. Comision Nacional de Investigacion Cientifica y Tecnologica [PIP-2012]

向作者/读者索取更多资源

This study used C. elegans to elucidate the role of GPM6A in stress responses, highlighting the importance of nmgp-1 in neuronal morphology and behaviors associated with chemosensation. These findings propose nmgp-1 mutants as a potential tool for screening drugs for human nervous system pathologies.
The nervous system monitors the environment to maintain homeostasis, which can be affected by stressful conditions. Using mammalian models of chronic stress, we previously observed altered brain levels of GPM6A, a protein involved in neuronal morphology. However, GPM6A's role in systemic stress responses remains unresolved. The nematode Caenorhabditis elegans expresses a GPM6A ortholog, the neuronal membrane glycoprotein 1 (NMGP-1). Because of the shared features between nematode and mammalian nervous systems and the vast genetic tools available in C. elegans, we used the worm to elucidate the role of GPM6A in the stress response. We first identified nmgp-1 expression in different amphid and phasmid neurons. To understand the nmgp-1 role, we characterized the behavior of nmgp-1(RNAi) animals and two nmgp-1 mutant alleles. Compared to control animals, mutant and RNAi-treated worms exhibited increased recovery time from the stress-resistant dauer stage, altered SDS chemosensation and reduced egg-laying rate resulting in egg retention (bag-of-worms phenotype). Silencing of nmgp-1 expression induced morphological abnormalities in the ASJ sensory neurons, partly responsible for dauer exit. These results indicate that nmgp-1 is required for neuronal morphology and for behaviors associated with chemosensation. Finally, we propose nmgp-1 mutants as a tool to screen drugs for human nervous system pathologies.

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