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气体递质在鱼类呼吸控制和离子调节中的新作用。

An emerging role for gasotransmitters in the control of breathing and ionic regulation in fish.

作者信息

Perry Steve, Kumai Y, Porteus C S, Tzaneva V, Kwong R W M

机构信息

Department of Biology, University of Ottawa, 30 Marie Curie, Ottawa, ON, K1N6N5, Canada.

Biosciences, College of Life and Environmental Sciences, University of Exeter, Exeter, EX4 4QD, UK.

出版信息

J Comp Physiol B. 2016 Feb;186(2):145-59. doi: 10.1007/s00360-015-0949-x. Epub 2015 Dec 11.

DOI:10.1007/s00360-015-0949-x
PMID:26660653
Abstract

Three gases comprising nitric oxide, carbon monoxide and hydrogen sulphide, collectively are termed gasotransmitters. The gasotransmitters control several physiological functions in fish by acting as intracellular signaling molecules. Hydrogen sulphide, first implicated in vasomotor control in fish, plays a critical role in oxygen chemoreception owing to its production and downstream effects within the oxygen chemosensory cells, the neuroepithelial cells. Indeed, there is emerging evidence that hydrogen sulphide may contribute to oxygen sensing in both fish and mammals by promoting membrane depolarization of the chemosensory cells. Unlike hydrogen sulphide which stimulates breathing in zebrafish, carbon monoxide inhibits ventilation in goldfish and zebrafish whereas nitric oxide stimulates breathing in zebrafish larvae while inhibiting breathing in adults. Gasotransmitters also modulate ionic uptake in zebrafish. Though nothing is known about the role of CO, reduced activities of branchial Na(+)/K(+)-ATPase and H(+)-ATPase activities in the presence of NO donors suggest an inhibitory role of NO in fish osmoregulation. Hydrogen sulphide inhibits Na(+) uptake in zebrafish larvae and contributes to lowering Na(+) uptake capacity in fish acclimated to Na(+)-enriched water whereas it stimulates Ca(2+) uptake in larvae exposed to Ca(2+)-poor water.

摘要

一氧化氮、一氧化碳和硫化氢这三种气体统称为气体信号分子。气体信号分子作为细胞内信号分子,控制着鱼类的多种生理功能。硫化氢最初被认为与鱼类的血管运动控制有关,由于其在氧化学感受细胞(神经上皮细胞)内的产生及其下游效应,在氧化学感受中起着关键作用。事实上,越来越多的证据表明,硫化氢可能通过促进化学感受细胞膜去极化,在鱼类和哺乳动物的氧感知中发挥作用。与刺激斑马鱼呼吸的硫化氢不同,一氧化碳抑制金鱼和斑马鱼的通气,而一氧化氮刺激斑马鱼幼体的呼吸,同时抑制成体的呼吸。气体信号分子还调节斑马鱼的离子摄取。虽然对一氧化碳的作用尚不清楚,但在一氧化氮供体存在的情况下,鳃中钠钾ATP酶和氢ATP酶活性降低,这表明一氧化氮在鱼类渗透调节中起抑制作用。硫化氢抑制斑马鱼幼体的钠摄取,并有助于降低适应高钠水的鱼类的钠摄取能力,而它则刺激暴露于低钙水中的幼体摄取钙。

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