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弗拉他汀旁路 Isu1:细胞和线粒体旁路活性的表征。

Frataxin-bypassing Isu1: characterization of the bypass activity in cells and mitochondria.

机构信息

*Division of Hematology-Oncology, Department of Medicine, Perelman School of Medicine, University of Pennsylvania, Philadelphia, PA 19104, U.S.A.

†Department of Pharmacology and Physiology, New Jersey Medical School, Rutgers University, Newark, NJ 07101, U.S.A.

出版信息

Biochem J. 2014 Apr 1;459(1):71-81. doi: 10.1042/BJ20131273.

Abstract

Frataxin is a conserved mitochondrial protein, and deficiency underlies the neurodegenerative disease Friedreich's ataxia. Frataxin interacts with the core machinery for Fe-S cluster assembly in mitochondria. Recently we reported that in frataxin-deleted yeast strains, a spontaneously occurring mutation in one of two genes encoding redundant Isu scaffold proteins, bypassed the mutant phenotypes. In the present study we created strains expressing a single scaffold protein, either Isu1 or the bypass mutant M107I Isu1. Our results show that in the frataxin-deletion strain expressing the bypass mutant Isu1, cell growth, Fe-S cluster protein activities, haem proteins and iron homoeostasis were restored to normal or close to normal. The bypass effects were not mediated by changes in Isu1 expression level. The persulfide-forming activity of the cysteine desulfurase was diminished in the frataxin deletion (∆yfh1 ISU1) and was improved by expression of the bypass Isu1 (∆yfh1 M107I ISU1). The addition of purified bypass M107I Isu1 protein to a ∆yfh1 lysate conferred similar enhancement of cysteine desulfurase as did frataxin, suggesting that this effect contributed to the bypass mechanism. Fe-S cluster-forming activity in isolated mitochondria was stimulated by the bypass Isu1, albeit at a lower rate. The rescuing effects of the bypass Isu1 point to ways that the core defects in Friedreich's ataxia mitochondria can be restored.

摘要

铁蛋白是一种保守的线粒体蛋白,其缺乏是神经退行性疾病弗里德里希共济失调的基础。铁蛋白与线粒体中 Fe-S 簇组装的核心机制相互作用。最近我们报道说,在铁蛋白缺失的酵母菌株中,两个冗余 Isu 支架蛋白编码基因之一的一个自发突变,绕过了突变表型。在本研究中,我们创建了表达单个支架蛋白(Isu1 或旁路突变体 M107I Isu1)的菌株。我们的结果表明,在表达旁路突变体 Isu1 的铁蛋白缺失菌株中,细胞生长、Fe-S 簇蛋白活性、血红素蛋白和铁平衡恢复正常或接近正常。旁路效应不是通过 Isu1 表达水平的变化介导的。半胱氨酸脱硫酶的过硫化物形成活性在铁蛋白缺失(∆yfh1 ISU1)中减弱,并通过表达旁路 Isu1(∆yfh1 M107I ISU1)得到改善。将纯化的旁路 M107I Isu1 蛋白添加到∆yfh1 裂解物中赋予半胱氨酸脱硫酶类似的增强作用,这表明这种作用有助于旁路机制。分离线粒体中的 Fe-S 簇形成活性被旁路 Isu1 刺激,尽管速度较低。旁路 Isu1 的挽救作用表明,弗里德里希共济失调线粒体的核心缺陷可以得到恢复。

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