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Secondary mitochondrial dysfunction in propionic aciduria: a pathogenic role for endogenous mitochondrial toxins.丙酸血症中的继发性线粒体功能障碍:内源性线粒体毒素的致病作用。
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2
Methylmalonic acid, a biochemical hallmark of methylmalonic acidurias but no inhibitor of mitochondrial respiratory chain.甲基丙二酸是甲基丙二酸尿症的生化标志,但不是线粒体呼吸链的抑制剂。
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3
Propionate-induced changes in cardiac metabolism, notably CoA trapping, are not altered by l-carnitine.丙酸盐引起的心脏代谢变化,特别是 CoA 捕获,不受左旋肉碱的影响。
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On the mechanism of action of the antifungal agent propionate.关于抗真菌剂丙酸盐的作用机制
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Propionate mitochondrial toxicity in liver and skeletal muscle: acyl CoA levels.丙酸在肝脏和骨骼肌中的线粒体毒性:酰基辅酶A水平
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Neurodegeneration and chronic renal failure in methylmalonic aciduria--a pathophysiological approach.甲基丙二酸血症中的神经退行性变和慢性肾衰竭——一种病理生理学方法
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Inhibition of pyruvate dehydrogenase complex activity by 3-bromopyruvate affects blood platelets responses in type 2 diabetes.3-溴丙酮酸抑制丙酮酸脱氢酶复合物活性影响 2 型糖尿病患者的血小板反应。
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Contribution of odd-numbered fatty acid oxidation to propionate production in neonates with methylmalonic and propionic acidaemias.奇数脂肪酸氧化对患有甲基丙二酸血症和丙酸血症新生儿丙酸生成的作用。
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Accumulation of odd-numbered long-chain fatty acids in fetuses and neonates with inherited disorders of propionate metabolism.患有遗传性丙酸代谢紊乱的胎儿和新生儿中奇数碳链长链脂肪酸的蓄积。
Pediatr Res. 1991 Apr;29(4 Pt 1):403-5. doi: 10.1203/00006450-199104000-00015.
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Effects of propionate and carnitine on the hepatic oxidation of short- and medium-chain-length fatty acids.丙酸酯和肉碱对短链及中链脂肪酸肝脏氧化的影响。
Biochem J. 1988 Mar 15;250(3):819-25. doi: 10.1042/bj2500819.

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本文引用的文献

1
The mitochondrial genome in human adaptive radiation and disease: on the road to therapeutics and performance enhancement.人类适应性辐射与疾病中的线粒体基因组:通往治疗与性能提升之路。
Gene. 2005 Jul 18;354:169-80. doi: 10.1016/j.gene.2005.05.001.
2
Deficiency of the ADP-forming succinyl-CoA synthase activity is associated with encephalomyopathy and mitochondrial DNA depletion.生成二磷酸腺苷(ADP)的琥珀酰辅酶A合成酶活性缺乏与脑肌病和线粒体DNA耗竭有关。
Am J Hum Genet. 2005 Jun;76(6):1081-6. doi: 10.1086/430843. Epub 2005 Apr 22.
3
Bioenergetics in glutaryl-coenzyme A dehydrogenase deficiency: a role for glutaryl-coenzyme A.戊二酰辅酶A脱氢酶缺乏症中的生物能量学:戊二酰辅酶A的作用
J Biol Chem. 2005 Jun 10;280(23):21830-6. doi: 10.1074/jbc.M502845200. Epub 2005 Apr 19.
4
Methylmalonic acid--an endogenous toxin?甲基丙二酸——一种内源性毒素?
Cell Mol Life Sci. 2005 Mar;62(6):621-4. doi: 10.1007/s00018-005-4463-2.
5
Deoxyribonucleotides and disorders of mitochondrial DNA integrity.脱氧核糖核苷酸与线粒体DNA完整性障碍
DNA Cell Biol. 2004 Dec;23(12):797-806. doi: 10.1089/dna.2004.23.797.
6
Optimized spectrophotometric assay for the completely activated pyruvate dehydrogenase complex in fibroblasts.用于成纤维细胞中完全活化的丙酮酸脱氢酶复合物的优化分光光度测定法。
Clin Chem. 2005 Jan;51(1):151-60. doi: 10.1373/clinchem.2004.033852. Epub 2004 Nov 18.
7
On the mechanism of action of the antifungal agent propionate.关于抗真菌剂丙酸盐的作用机制
Eur J Biochem. 2004 Aug;271(15):3227-41. doi: 10.1111/j.1432-1033.2004.04255.x.
8
Protein measurement with the Folin phenol reagent.使用福林酚试剂进行蛋白质测定。
J Biol Chem. 1951 Nov;193(1):265-75.
9
Methylmalonic acid, a biochemical hallmark of methylmalonic acidurias but no inhibitor of mitochondrial respiratory chain.甲基丙二酸是甲基丙二酸尿症的生化标志,但不是线粒体呼吸链的抑制剂。
J Biol Chem. 2003 Nov 28;278(48):47388-93. doi: 10.1074/jbc.M308861200. Epub 2003 Sep 12.
10
Defects of pyruvate metabolism and the Krebs cycle.丙酮酸代谢和三羧酸循环的缺陷。
J Child Neurol. 2002 Dec;17 Suppl 3:3S26-33; discussion 3S33-4.

丙酸血症中的继发性线粒体功能障碍:内源性线粒体毒素的致病作用。

Secondary mitochondrial dysfunction in propionic aciduria: a pathogenic role for endogenous mitochondrial toxins.

作者信息

Schwab Marina A, Sauer Sven W, Okun Jürgen G, Nijtmans Leo G J, Rodenburg Richard J T, van den Heuvel Lambert P, Dröse Stefan, Brandt Ulrich, Hoffmann Georg F, Ter Laak Henk, Kölker Stefan, Smeitink Jan A M

机构信息

Department of General Pediatrics, Division of Inborn Metabolic Diseases, University Children's Hospital Heidelberg, Im Neuenheimer Feld 150, D-69120 Heidelberg, Germany.

出版信息

Biochem J. 2006 Aug 15;398(1):107-12. doi: 10.1042/BJ20060221.

DOI:10.1042/BJ20060221
PMID:16686602
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC1525008/
Abstract

Mitochondrial dysfunction during acute metabolic crises is considered an important pathomechanism in inherited disorders of propionate metabolism, i.e. propionic and methylmalonic acidurias. Biochemically, these disorders are characterized by accumulation of propionyl-CoA and metabolites of alternative propionate oxidation. In the present study, we demonstrate uncompetitive inhibition of PDHc (pyruvate dehydrogenase complex) by propionyl-CoA in purified porcine enzyme and in submitochondrial particles from bovine heart being in the same range as the inhibition induced by acetyl-CoA, the physiological product and known inhibitor of PDHc. Evaluation of similar monocarboxylic CoA esters showed a chain-length specificity for PDHc inhibition. In contrast with CoA esters, non-esterified fatty acids did not inhibit PDHc activity. In addition to PDHc inhibition, analysis of respiratory chain and tricarboxylic acid cycle enzymes also revealed an inhibition by propionyl-CoA on respiratory chain complex III and alpha-ketoglutarate dehydrogenase complex. To test whether impairment of mitochondrial energy metabolism is involved in the pathogenesis of propionic aciduria, we performed a thorough bioenergetic analysis in muscle biopsy specimens of two patients. In line with the in vitro results, oxidative phosphorylation was severely compromised in both patients. Furthermore, expression of respiratory chain complexes I-IV and the amount of mitochondrial DNA were strongly decreased, and ultrastructural mitochondrial abnormalities were found, highlighting severe mitochondrial dysfunction. In conclusion, our results favour the hypothesis that toxic metabolites, in particular propionyl-CoA, are involved in the pathogenesis of inherited disorders of propionate metabolism, sharing mechanistic similarities with propionate toxicity in micro-organisms.

摘要

急性代谢危机期间的线粒体功能障碍被认为是丙酸代谢遗传性疾病(即丙酸血症和甲基丙二酸血症)的重要发病机制。从生化角度来看,这些疾病的特征是丙酰辅酶A和丙酸替代氧化代谢产物的积累。在本研究中,我们证明了在纯化的猪酶和牛心脏亚线粒体颗粒中,丙酰辅酶A对丙酮酸脱氢酶复合体(PDHc)具有非竞争性抑制作用,其抑制程度与乙酰辅酶A(PDHc的生理产物和已知抑制剂)诱导的抑制程度处于同一范围。对类似单羧酸辅酶A酯的评估显示了PDHc抑制的链长特异性。与辅酶A酯不同,未酯化脂肪酸不抑制PDHc活性。除了抑制PDHc外,对呼吸链和三羧酸循环酶的分析还显示丙酰辅酶A对呼吸链复合体III和α-酮戊二酸脱氢酶复合体有抑制作用。为了测试线粒体能量代谢受损是否参与丙酸血症的发病机制,我们对两名患者的肌肉活检标本进行了全面的生物能量分析。与体外结果一致,两名患者的氧化磷酸化均严重受损。此外,呼吸链复合体I-IV的表达和线粒体DNA的量均大幅下降,并且发现了线粒体超微结构异常,突出了严重的线粒体功能障碍。总之,我们的结果支持这样一种假说,即有毒代谢产物,特别是丙酰辅酶A,参与了丙酸代谢遗传性疾病的发病机制,这与微生物中丙酸毒性具有相似的机制。