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丙酮酸、α-酮戊二酸和支链α-酮酸对大鼠肝线粒体甘氨酸氧化的抑制作用:甘氨酸裂解系统与α-酮酸脱氢酶复合物之间存在相互作用。

Inhibition of glycine oxidation by pyruvate, alpha-ketoglutarate, and branched-chain alpha-keto acids in rat liver mitochondria: presence of interaction between the glycine cleavage system and alpha-keto acid dehydrogenase complexes.

作者信息

Kochi H, Seino H, Ono K

出版信息

Arch Biochem Biophys. 1986 Sep;249(2):263-72. doi: 10.1016/0003-9861(86)90002-0.

Abstract

Pyruvate, alpha-ketoglutarate, and branched-chain alpha-keto acids which were transaminated products of valine, leucine, and isoleucine inhibited glycine decarboxylation by rat liver mitochondria. However, glycine synthesis (the reverse reaction of glycine decarboxylation) was stimulated by those alpha-keto acids with the concomitant decarboxylation of alpha-keto acid added in the absence of NADH. Both the decarboxylation and the synthesis of glycine by mitochondrial extract were affected similarly by alpha-ketoglutarate and branched-chain alpha-keto acids in the absence of pyridine nucleotide, but not by pyruvate. This failure of pyruvate to have an effect was due to the lack of pyruvate oxidation activity in the mitochondrial extract employed. It indicated that those alpha-keto acids exerted their effects by providing reducing equivalents to the glycine cleavage system, possibly through lipoamide dehydrogenase, a component shared by the glycine cleavage system and alpha-keto acid dehydrogenase complexes. On the decarboxylation of pyruvate, alpha-ketoglutarate, and branched-chain alpha-keto acids in intact mitochondria, those alpha-keto acids inhibited one another. In similar experiments with mitochondrial extract, decarboxylations of alpha-ketoglutarate and branched-chain alpha-keto acid were inhibited by branched-chain alpha-keto acid and alpha-ketoglutarate, respectively, but not by pyruvate. NADH was unlikely to account for the inhibition. We suggest that the lipoamide dehydrogenase component is an indistinguishable constituent among alpha-keto acid dehydrogenase complexes and the glycine cleavage system in mitochondria in nature, and that lipoamide dehydrogenase-mediated transfer of reducing equivalents might regulate alpha-keto acid oxidation as well as glycine oxidation.

摘要

缬氨酸、亮氨酸和异亮氨酸的转氨产物丙酮酸、α-酮戊二酸和支链α-酮酸可抑制大鼠肝线粒体的甘氨酸脱羧反应。然而,这些α-酮酸可刺激甘氨酸合成(甘氨酸脱羧反应的逆反应),同时在无NADH的情况下添加的α-酮酸会发生脱羧反应。在无吡啶核苷酸的情况下,线粒体提取物对甘氨酸的脱羧反应和合成反应受到α-酮戊二酸和支链α-酮酸的影响相似,但丙酮酸无此作用。丙酮酸无作用是由于所用线粒体提取物中缺乏丙酮酸氧化活性。这表明这些α-酮酸可能通过硫辛酰胺脱氢酶(甘氨酸裂解系统和α-酮酸脱氢酶复合物共有的一个组分)为甘氨酸裂解系统提供还原当量,从而发挥作用。在完整线粒体中,丙酮酸、α-酮戊二酸和支链α-酮酸发生脱羧反应时,这些α-酮酸之间会相互抑制。在对线粒体提取物进行的类似实验中,α-酮戊二酸和支链α-酮酸的脱羧反应分别受到支链α-酮酸和α-酮戊二酸的抑制,但丙酮酸无此作用。NADH不太可能是造成这种抑制的原因。我们认为,硫辛酰胺脱氢酶组分在本质上是线粒体中α-酮酸脱氢酶复合物和甘氨酸裂解系统中难以区分的一个组成部分,并且硫辛酰胺脱氢酶介导的还原当量转移可能会调节α-酮酸氧化以及甘氨酸氧化。

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