Ushimado Marine Institute, Faculty of Science, Okayama University, Setouchi, 701-4303, Japan.
Laboratory of Fish Physiology, Graduate School of Biosphere Science, Hiroshima University, Higashihiroshima, 739-8528, Japan.
Sci Rep. 2016 Nov 29;6:37991. doi: 10.1038/srep37991.
As in osmoregulation, mineralocorticoid signaling is implicated in the control of brain-behavior actions. Nevertheless, the understanding of this role is limited, partly due to the mortality of mineralocorticoid receptor (MR)-knockout (KO) mice due to impaired Na reabsorption. In teleost fish, a distinct mineralocorticoid system has only been identified recently. Here, we generated a constitutive MR-KO medaka as the first adult-viable MR-KO animal, since MR expression is modest in osmoregulatory organs but high in the brain of adult medaka as for most teleosts. Hyper- and hypo-osmoregulation were normal in MR-KO medaka. When we studied the behavioral phenotypes based on the central MR localization, however, MR-KO medaka failed to track moving dots despite having an increase in acceleration of swimming. These findings reinforce previous results showing a minor role for mineralocorticoid signaling in fish osmoregulation, and provide the first convincing evidence that MR is required for normal locomotor activity in response to visual motion stimuli, but not for the recognition of these stimuli per se. We suggest that MR potentially integrates brain-behavioral and visual responses, which might be a conserved function of mineralocorticoid signaling through vertebrates. Importantly, this fish model allows for the possible identification of novel aspects of mineralocorticoid signaling.
如同在渗透调节中一样,盐皮质激素信号在控制脑-行为活动中起作用。然而,由于盐皮质激素受体 (MR) 敲除 (KO) 小鼠因钠吸收受损而死亡,因此对这种作用的理解是有限的。在硬骨鱼中,最近才发现了一个独特的盐皮质激素系统。在这里,我们生成了一个组成型 MR-KO 斑马鱼,这是第一种成年存活的 MR-KO 动物,因为在硬骨鱼中,MR 的表达在渗透压调节器官中适中,但在成年斑马鱼的大脑中很高,如大多数硬骨鱼一样。MR-KO 斑马鱼的高渗和低渗调节正常。然而,当我们根据中央 MR 定位研究行为表型时,尽管 MR-KO 斑马鱼的游泳速度加速增加,但它们无法跟踪移动的点。这些发现强化了先前的结果,表明盐皮质激素信号在鱼类渗透压调节中的作用较小,并首次提供了令人信服的证据,表明 MR 是对视觉运动刺激正常运动活动所必需的,但不是对这些刺激本身的识别所必需的。我们认为,MR 可能整合了脑-行为和视觉反应,这可能是盐皮质激素信号通过脊椎动物的保守功能。重要的是,这种鱼类模型允许可能确定盐皮质激素信号的新方面。