Department of Biology, York University, Toronto, ON M3J 1P3, Canada.
Int J Mol Sci. 2018 Apr 5;19(4):1087. doi: 10.3390/ijms19041087.
Zebrafish () have become an important model for integrative physiological research. Zebrafish inhabit a hypo-osmotic environment; to maintain ionic and acid-base homeostasis, they must actively take up ions and secrete acid to the water. The gills in the adult and the skin at larval stage are the primary sites of ionic regulation in zebrafish. The uptake of ions in zebrafish is mediated by specific ion transporting cells termed ionocytes. Similarly, in mammals, ion reabsorption and acid excretion occur in specific cell types in the terminal region of the renal tubules (distal convoluted tubule and collecting duct). Previous studies have suggested that functional regulation of several ion transporters/channels in the zebrafish ionocytes resembles that in the mammalian renal cells. Additionally, several mechanisms involved in regulating the epithelial ion transport during metabolic acidosis are found to be similar between zebrafish and mammals. In this article, we systemically review the similarities and differences in ionic regulation between zebrafish and mammals during metabolic acidosis. We summarize the available information on the regulation of epithelial ion transporters during acidosis, with a focus on epithelial Na⁺, Cl and Ca transporters in zebrafish ionocytes and mammalian renal cells. We also discuss the neuroendocrine responses to acid exposure, and their potential role in ionic compensation. Finally, we identify several knowledge gaps that would benefit from further study.
斑马鱼(Zebrafish)已成为综合生理学研究的重要模型。斑马鱼生活在低渗环境中;为了维持离子和酸碱平衡,它们必须主动从水中摄取离子并分泌酸。成年斑马鱼的鳃和幼鱼的皮肤是离子调节的主要部位。离子在斑马鱼中的摄取是由特定的离子转运细胞(称为离子细胞)介导的。同样,在哺乳动物中,离子重吸收和酸排泄发生在肾小管的末端区域(远曲小管和集合管)的特定细胞类型中。先前的研究表明,斑马鱼离子细胞中的几种离子转运体/通道的功能调节类似于哺乳动物肾细胞中的调节。此外,在代谢性酸中毒期间,调节上皮细胞离子转运的几种机制在斑马鱼和哺乳动物之间也被发现是相似的。在本文中,我们系统地综述了代谢性酸中毒期间斑马鱼和哺乳动物之间离子调节的异同。我们总结了关于酸中毒期间上皮细胞离子转运体调节的现有信息,重点介绍了斑马鱼离子细胞和哺乳动物肾细胞中的上皮 Na⁺、Cl 和 Ca 转运体。我们还讨论了对酸暴露的神经内分泌反应及其在离子补偿中的潜在作用。最后,我们确定了几个需要进一步研究的知识空白。