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线粒体还原二硫键的机制。

The mechanism of disulphide reduction by mitochondria.

作者信息

Skrede S

出版信息

Biochem J. 1968 Jul;108(4):693-9. doi: 10.1042/bj1080693.

DOI:10.1042/bj1080693
PMID:4299131
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC1198870/
Abstract
  1. Cystamine was reduced to the corresponding thiol by rat liver mitochondria, even in the presence of rotenone or antimycin A. 2. The reduction of disulphides was stimulated by the accumulation of NADH or by the addition of NADH to osmotically ;shocked' mitochondria. 3. Energy made available by oxidative phosphorylation was not essential for the reduction of disulphides. 4. Cystamine was not reduced during the oxidation of NADH by ultrasonically treated particles, which had lost their capacity for oxidation of alpha-oxo acids. 5. In intact mitochondria, arsenite and other inhibitors of vicinal dithiols caused a decrease in the capacity for reduction of disulphides concomitantly with an inhibition of the oxidation of alpha-oxo acids. 6. Isolated lipoamide dehydrogenase reduced cystamine at the expense of NADH, provided that lipoic acid was also present. 7. It is concluded that in mitochondria the reduction of cystamine and related disulphides is probably brought about by interaction with reduced lipoic acid, generated by the alpha-oxo acid dehydrogenase complexes during the oxidation of alpha-oxo acids or by reaction of lipoamide dehydrogenase with NADH.
摘要
  1. 即使存在鱼藤酮或抗霉素A,胱胺仍能被大鼠肝脏线粒体还原为相应的硫醇。2. 二硫化物的还原受到NADH积累或向渗透“休克”线粒体中添加NADH的刺激。3. 氧化磷酸化产生的能量对于二硫化物的还原并非必不可少。4. 经超声处理后失去氧化α-氧代酸能力的颗粒在氧化NADH的过程中,胱胺未被还原。5. 在完整的线粒体中,亚砷酸盐和其他邻二硫醇抑制剂会导致二硫化物还原能力下降,同时抑制α-氧代酸的氧化。6. 分离出的硫辛酰胺脱氢酶在有硫辛酸存在的情况下,以NADH为代价还原胱胺。7. 得出的结论是,在线粒体中,胱胺和相关二硫化物的还原可能是通过与还原型硫辛酸相互作用实现的,还原型硫辛酸由α-氧代酸脱氢酶复合物在α-氧代酸氧化过程中产生,或者是由硫辛酰胺脱氢酶与NADH反应产生。

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2
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引用本文的文献

1
Cystinosis. Intracellular cystine depletion by aminothiols in vitro and in vivo.胱氨酸病。体外和体内通过氨基硫醇使细胞内胱氨酸耗竭。
J Clin Invest. 1976 Jul;58(1):180-9. doi: 10.1172/JCI108448.

本文引用的文献

1
A permeability barrier in mitochondria in ;high-energy states' against positively charged disulphides.线粒体在高能状态下对带正电荷的二硫键具有通透性屏障。
Biochem J. 1968 May;107(5):645-54. doi: 10.1042/bj1070645.
2
Glutathione reductase of animal tissues.动物组织中的谷胱甘肽还原酶。
J Biol Chem. 1952 Jan;194(1):119-30.
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THE EFFECT OF DISULPHIDES ON MITOCHONDRIAL OXIDATIONS.二硫化物对线粒体氧化作用的影响
Biochem J. 1965 Jun;95(3):838-46. doi: 10.1042/bj0950838.
4
LIPOYL DEHYDROGENASE. FREE AND COMPLEXED FORMS IN MAMMALIAN MITOCHONDRIA.硫辛酰脱氢酶。哺乳动物线粒体中的游离形式和复合形式
J Biol Chem. 1964 Nov;239:3733-42.
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THE BIOLOGICAL ACTION OF COBALT AND OTHER METALS. IV. INHIBITION OF ALPHA-OXOGLUTARATE DEHYDROGENASE.钴及其他金属的生物学作用。IV. α-酮戊二酸脱氢酶的抑制作用
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The effect of glutathione on protein sulphydryl groups in rat-liver homogenates.谷胱甘肽对大鼠肝脏匀浆中蛋白质巯基的影响。
Biochem J. 1962 Dec;85(3):480-5. doi: 10.1042/bj0850480.
7
The effect of radioprotective agents on tissue nonprotein sulfhydryl and disulfide levels.辐射防护剂对组织非蛋白巯基和二硫键水平的影响。
Arch Biochem Biophys. 1962 Aug;98:342-4. doi: 10.1016/0003-9861(62)90193-5.
8
alpha-Ketoglutaric dehydrogenase. VII. The role of thioctic acid.α-酮戊二酸脱氢酶。VII.硫辛酸的作用。
J Biol Chem. 1959 Jan;234(1):183-7.
9
alpha-Ketoglutaric dehydrogenase. VI. Reversible oxidation of dihydrothioctamide by diphosphopyridine nucleotide.α-酮戊二酸脱氢酶。VI. 二磷酸吡啶核苷酸对二氢硫辛酰胺的可逆氧化作用。
J Biol Chem. 1959 Jan;234(1):178-82.
10
The sulfhydryl groups of crystalline proteins. I. Some albumins, enzymes, and hemoglobins.结晶蛋白质的巯基。I. 一些白蛋白、酶和血红蛋白。
J Biol Chem. 1955 Oct;216(2):663-76.