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首页> 外文期刊>International journal of biological sciences >Induction of Phosphoenolpyruvate Carboxykinase (PEPCK) during Acute Acidosis and Its Role in Acid Secretion by V-ATPase-Expressing Ionocytes
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Induction of Phosphoenolpyruvate Carboxykinase (PEPCK) during Acute Acidosis and Its Role in Acid Secretion by V-ATPase-Expressing Ionocytes

机译:急性酸中毒诱导磷酸烯醇丙酮酸羧激酶(PEPCK)及其在表达V-ATPase的离子细胞中在酸分泌中的作用

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Vacuolar-Type H+-ATPase (V-ATPase) takes the central role in pumping H+ through cell membranes of diverse organisms, which is essential for surviving acid-base fluctuating lifestyles or environments. In mammals, although glucose is believed to be an important energy source to drive V-ATPase, and phosphoenolpyruvate carboxykinase (PEPCK), a key enzyme for gluconeogenesis, is known to be activated in response to acidosis, the link between acid secretion and PEPCK activation remains unclear. In the present study, we used zebrafish larva as an in vivo model to show the role of acid-inducible PEPCK activity in glucose production to support higher rate of H+ secretion via V-ATPase, by utilizing gene knockdown, glucose supplementation, and non-invasive scanning ion-selective electrode technique (SIET). Zebrafish larvae increased V-ATPase-mediated acid secretion and transiently expression of Pck1, a zebrafish homolog of PEPCK, in response to acid stress. When pck1 gene was knocked down by specific morpholino, the H+ secretion via V-ATPase decreased, but this effect was rescued by supplementation of glucose into the yolk. By assessing changes in amino acid content and gene expression of respective enzymes, glutamine and glutamate appeared to be the major source for replenishment of Krebs cycle intermediates, which are subtracted by Pck1 activity. Unexpectedly, pck1 knockdown did not affect glutamine/glutamate catalysis, which implies that Pck1 does not necessarily drive this process. The present study provides the first in vivo evidence that acid-induced PEPCK provides glucose for acid-base homeostasis at an individual level, which is supported by rapid pumping of H+ via V-ATPase at the cellular level.
机译:液泡型H + -ATPase(V-ATPase)在通过各种生物体的细胞膜泵送H + 方面起着中心作用,这对于生存酸碱波动至关重要生活方式或环境。在哺乳动物中,尽管葡萄糖被认为是驱动V-ATPase的重要能源,并且磷酸烯醇丙酮酸羧激酶(PEPCK)是糖异生的关键酶,但已知会在酸中毒时被激活,这是酸分泌与PEPCK激活之间的联系还不清楚。在本研究中,我们使用斑马鱼幼虫作为体内模型,通过利用基因来显示酸诱导的PEPCK活性在葡萄糖生产中的作用,以通过V-ATPase支持更高的H + 分泌率。组合式,葡萄糖补充和无创扫描离子选择电极技术(SIET)。斑马鱼幼虫增加了V-ATPase介导的酸分泌和Pck1的瞬时表达,Pck1是PEPCK的斑马鱼同源物,以应对酸胁迫。当pck1基因被特定的吗啉代敲低时,通过V-ATPase的H + 分泌减少,但是通过向蛋黄中补充葡萄糖可以挽救这种效应。通过评估氨基酸含量和相应酶基因表达的变化,谷氨酰胺和谷氨酸盐似乎是补充Krebs循环中间体的主要来源,并被Pck1活性减去。出乎意料的是,pck1敲低并不影响谷氨酰胺/谷氨酸催化,这意味着Pck1不一定驱动该过程。本研究提供了第一个体内证据,表明酸诱导的PEPCK在单个水平上为葡萄糖提供了酸碱稳态,这通过在细胞水平上通过V-ATPase快速泵送H + 来支持。

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