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犬肾内髓集合管中的葡萄糖代谢

Glucose metabolism in dog inner medullary collecting ducts.

作者信息

Meury L, Noël J, Tejedor A, Sénécal J, Gougoux A, Vinay P

机构信息

Département de Physiologie, Univeristé de Montréal, Qué., Canada.

出版信息

Ren Physiol Biochem. 1994 Sep-Oct;17(5):246-66. doi: 10.1159/000173829.

Abstract

The adenosine triphosphate (ATP) generating pathways of dog inner medullary collecting ducts (IMCD) were examined in vitro using suspensions of dog IMCD tubules incubated under aerobic and anaerobic conditions. Glucose is always the preferred substrate for this tissue, even if lactate can be oxidized under aerobic conditions. The metabolism of glucose proceeds largely towards lactate accumulation in the presence or absence of oxygen. Glycogen is also consumed and more markedly so during anoxia. The pentose shunt represents a minor pathway for glucose metabolism in this tissue. Under aerobic conditions, the net oxidation of glucose to CO2 contributes significantly to the cell energetics, mitochondrial and cytoplasmic mechanisms sharing equally the ATP synthesis. In the absence of oxygen, only the cytoplasmic routes of ATP synthesis are used, but the apparent ATP turnover is markedly reduced. A marked inhibition of the activity of the Na-K-ATPase during anoxia explains this observation. The utilization of glucose for osmolyte synthesis is a minor process and appears to be suppressed under anaerobic conditions. It is concluded that the ATP turnover is low in dog IMCD cells as compared with that of other nephron segments and is largely dependent upon glucose availability under aerobic or anaerobic conditions.

摘要

利用狗肾内髓集合管(IMCD)小管悬浮液,在有氧和无氧条件下进行体外培养,研究了狗肾内髓集合管生成三磷酸腺苷(ATP)的途径。葡萄糖始终是该组织的首选底物,即使乳酸在有氧条件下也可被氧化。无论有无氧气,葡萄糖的代谢主要导致乳酸积累。糖原也会被消耗,在缺氧时更为明显。戊糖磷酸途径是该组织中葡萄糖代谢的次要途径。在有氧条件下,葡萄糖净氧化为二氧化碳对细胞能量代谢有显著贡献,线粒体和细胞质机制在ATP合成中贡献相当。在无氧条件下,仅使用细胞质中的ATP合成途径,但表观ATP周转率明显降低。缺氧时钠钾ATP酶活性受到显著抑制可以解释这一现象。葡萄糖用于渗透溶质合成的过程是次要的,并且在厌氧条件下似乎受到抑制。得出的结论是,与其他肾单位节段相比,狗肾内髓集合管细胞中的ATP周转率较低,并且在有氧或无氧条件下很大程度上取决于葡萄糖的可用性。

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