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喂食及禁食大鼠肾小管中谷氨酰胺代谢的复杂性

Complexity of glutamine metabolism in kidney tubules from fed and fasted rats.

作者信息

Vercoutère Barbara, Durozard Daniel, Baverel Gabriel, Martin Guy

机构信息

Centre d'Etudes Métaboliques par Spectroscopie de Résonance Magnétique (INSERM U499), Pavillon P, Hôpital Edouard Herriot, place d'Arsonval, 69374 Lyon Cedex 03, France.

出版信息

Biochem J. 2004 Mar 1;378(Pt 2):485-95. doi: 10.1042/BJ20031088.

Abstract

Glutamine is an important renal glucose precursor and energy provider. In order to advance our understanding of the underlying metabolic processes, we studied the metabolism of variously labelled [13C]glutamine and [14C]glutamine molecules and the effects of fasting in isolated rat renal proximal tubules. Absolute fluxes through the enzymes involved, including enzymes of four different cycles operating concomitantly, were assessed by combining mainly the 13C NMR data with an appropriate model of glutamine metabolism. In both nutritional states, unidirectional glutamine removal by glutaminase was partially masked by the concomitant operation of glutamine synthetase; fasting accelerated glutamine removal by increasing flux solely through glutaminase, without changing that through glutamine synthetase. Fasting stimulated net glutamate degradation only by decreasing flux through glutamate dehydrogenase in the reductive amination direction, but surprisingly did not significantly alter complete oxidation of the glutamine carbon skeleton. Finally, gluconeogenesis from glutamine involved not only substantial recycling through the tricarboxylic acid cycle, but also an important anaplerotic flux through pyruvate carboxylase that was accelerated dramatically by fasting. Thus renal glutamine metabolism follows an unexpectedly complex route that is precisely regulated during fasting.

摘要

谷氨酰胺是一种重要的肾脏葡萄糖前体和能量提供者。为了加深我们对潜在代谢过程的理解,我们研究了各种标记的[13C]谷氨酰胺和[14C]谷氨酰胺分子的代谢以及禁食对离体大鼠肾近端小管的影响。通过主要将13C NMR数据与适当的谷氨酰胺代谢模型相结合,评估了通过所涉及的酶(包括同时运行的四个不同循环的酶)的绝对通量。在两种营养状态下,谷氨酰胺酶对谷氨酰胺的单向清除都被谷氨酰胺合成酶的同时运行部分掩盖;禁食仅通过增加谷氨酰胺酶的通量来加速谷氨酰胺的清除,而不改变通过谷氨酰胺合成酶的通量。禁食仅通过降低还原胺化方向上通过谷氨酸脱氢酶的通量来刺激净谷氨酸降解,但令人惊讶的是,并没有显著改变谷氨酰胺碳骨架的完全氧化。最后,谷氨酰胺的糖异生不仅涉及通过三羧酸循环的大量循环,还涉及通过丙酮酸羧化酶的重要回补通量,禁食可使其显著加速。因此,肾脏谷氨酰胺代谢遵循一条出乎意料的复杂途径,在禁食期间受到精确调节。

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The glutamine/glutamate couplet and cellular function.谷氨酰胺/谷氨酸对与细胞功能。
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