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抑制蛋白介导电味分子在神经元内的辨别作用。

Arrestin-mediated desensitization enables intraneuronal olfactory discrimination in .

机构信息

Institute for Medical Science, University of Toronto, Toronto, M5S 3E2 ON, Canada.

Department of Molecular Genetics, University of Toronto, Toronto, M5S 3E2 ON, Canada.

出版信息

Proc Natl Acad Sci U S A. 2022 Aug 2;119(31):e2116957119. doi: 10.1073/pnas.2116957119. Epub 2022 Jul 25.

Abstract

In the mammalian olfactory system, cross-talk between olfactory signals is minimized through physical isolation: individual neurons express one or few olfactory receptors among those encoded in the genome. Physical isolation allows for segregation of stimuli during signal transduction; however, in the nematode worm , ∼1,300 olfactory receptors are primarily expressed in only 32 neurons, precluding this strategy. Here, we report genetic and behavioral evidence that β-arrestin-mediated desensitization of olfactory receptors, working downstream of the kinase GRK-1, enables discrimination between intraneuronal olfactory stimuli. Our findings suggest that exploits β-arrestin desensitization to maximize responsiveness to novel odors, allowing for behaviorally appropriate responses to olfactory stimuli despite the large number of olfactory receptors signaling in single cells. This represents a fundamentally different solution to the problem of olfactory discrimination than that which evolved in mammals, allowing for economical use of a limited number of sensory neurons.

摘要

在哺乳动物的嗅觉系统中,嗅觉信号之间的串扰通过物理隔离来最小化:单个神经元在基因组编码的众多嗅觉受体中表达一个或少数几个嗅觉受体。物理隔离允许在信号转导过程中隔离刺激;然而,在线虫中,大约 1300 个嗅觉受体主要在仅 32 个神经元中表达,排除了这种策略。在这里,我们报告了遗传和行为证据,表明β-arrestin 介导的嗅觉受体脱敏作用,作用于激酶 GRK-1 的下游,能够在神经元内嗅觉刺激之间进行区分。我们的发现表明,线虫利用β-arrestin 脱敏作用来最大限度地提高对新气味的反应性,从而允许对嗅觉刺激做出适当的行为反应,尽管在单个细胞中信号传递的嗅觉受体数量众多。这代表了一种与哺乳动物进化中不同的嗅觉辨别问题的解决方案,允许对有限数量的感觉神经元进行经济有效的利用。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/9b5a/9351366/d931ea4d7b70/pnas.2116957119fig01.jpg

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