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首页> 外文期刊>General and comparative endocrinology >Ambient salinity modifies the action of triiodothyronine in the air-breathing fish Anabas testudineus Bloch: effects on mitochondria-rich cell distribution, osmotic and metabolic regulations.
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Ambient salinity modifies the action of triiodothyronine in the air-breathing fish Anabas testudineus Bloch: effects on mitochondria-rich cell distribution, osmotic and metabolic regulations.

机译:环境盐度改变了空气中呼吸的鱼类Anabas testudineus Bloch中的三碘甲状腺素的作用:对线粒体丰富的细胞分布,渗透和代谢调节的影响。

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The hydromineral and metabolic actions of thyroid hormone on osmotic acclimation in fish is less understood. We, therefore, studied the short-term action of triiodothyronine (T(3)), the potent thyroid hormone, on the distribution and the function of gill mitochondria-rich (MR) cells and on the whole body hydromineral and metabolic regulations of air-breathing fish (Anabas testudineus) adapted to either freshwater (FW) or acclimated to seawater (SA; 30 g L(-1)). As expected, 24 h T(3) injection (100 ng g(-1)) elevated (P<0.05) plasma T(3) but classically reduced (P<0.05) plasma T(4). The higher Na(+), K(+)-ATPase immunoreactivity and the varied distribution pattern of MR cells in the gills of T(3)-treated FW and SA fish, suggest an action of T(3) on gill MR cell migration, though the density of these cells remained unchanged after T(3) treatment. The ouabain-sensitive Na(+), K(+)-ATPase activity, a measure of hydromineral competence, showed increases (P<0.05) in the gills of both FW and SA fish after T(3) administration, but inhibited (P<0.05) in the kidney of the FW fish and not in the SA fish. Exogenous T(3) reduced glucose (P<0.05) and urea (P<0.05) in the plasma of FW fish, whereas these metabolites were elevated (P<0.05) in the SA fish, suggesting a modulatory effect of ambient salinity on the T(3)-driven metabolic actions. Our data identify gill MR cell as a target for T(3) action as it promotes the spatial distribution and the osmotic function of these cells in both fresh water and in seawater. The results besides confirming the metabolic and osmotic actions of T(3) in fish support the hypothesis that the differential actions of T(3) may be due to the direct influence of ambient salinity, a major environmental determinant that alters the osmotic and metabolic strategies of fish.
机译:甲状腺激素对鱼类渗透性驯化的水分和矿物质代谢作用尚不清楚。因此,我们研究了强力甲状腺激素三碘甲腺氨酸(T(3))对富含线粒体(MR)的细胞的分布和功能以及对全身水分和空气代谢规律的短期作用-适于淡水(FW)或适应海水(SA; 30 g L(-1))的呼吸鱼(Anabas testudineus)。如预期的那样,24小时T(3)注射(100 ng g(-1))升高(P <0.05)血浆T(3),但经典降低(P <0.05)血浆T(4)。较高的Na(+),K(+)-ATPase免疫反应性和T(3)处理的FW和SA鱼the中MR细胞的变化分布模式,表明T(3)对g MR细胞迁移的作用,尽管在T(3)处理后这些细胞的密度保持不变。哇巴因敏感的Na(+),K(+)-ATPase活性(一种矿物质的能力测量)显示,在施用T(3)后,FW和SA鱼both的ill均增加(P <0.05),但受到抑制(P <0.05)在FW鱼的肾脏中而不在SA鱼中。外源性T(3)降低了FW鱼血浆中的葡萄糖(P <0.05)和尿素(P <0.05),而SA鱼中这些代谢物却升高(P <0.05),表明环境盐度对鱼的调节作用。 T(3)驱动的代谢作用。我们的数据确定g MR细胞作为T(3)作用的靶标,因为它促进了淡水和海水中这些细胞的空间分布和渗透功能。结果除了证实鱼类中T(3)的代谢和渗透作用外,还支持T(3)的差异作用可能是由于环境盐度的直接影响这一假设,环境盐度是改变渗透和代谢策略的主要环境决定因素。鱼。

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