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组氨酸26的诱变证明了环-环和环-蛋白质相互作用对于同工酶-1-细胞色素c功能的重要性。

Mutagenesis of histidine 26 demonstrates the importance of loop-loop and loop-protein interactions for the function of iso-1-cytochrome c.

作者信息

Fetrow J S, Dreher U, Wiland D J, Schaak D L, Boose T L

机构信息

Department of Biological Sciences, Center for Biochemistry and Biophysical Chemistry, State University of New York, Albany 12222, USA.

出版信息

Protein Sci. 1998 Apr;7(4):994-1005. doi: 10.1002/pro.5560070417.

Abstract

In yeast iso-1-cytochrome c, the side chain of histidine 26 (His26) attaches omega loop A to the main body of the protein by forming a hydrogen bond to the backbone atom carbonyl of glutamic acid 44. The His26 side chain also forms a stabilizing intra-loop interaction through a hydrogen bond to the backbone amide of asparagine 31. To investigate the importance of loop-protein attachment and intra-loop interactions to the structure and function of this protein, a series of site-directed and random-directed mutations were produced at His26. Yeast strains expressing these variant proteins were analyzed for their ability to grow on non-fermentable carbon sources and for their intracellular production of cytochrome c. While the data show that mutations at His26 lead to slightly decreased intracellular amounts of cytochrome c, the level of cytochrome c function is decreased more. The data suggest that cytochrome c reductase binding is affected more than cytochrome c oxidase or lactate dehydrogenase binding. We propose that mutations at this residue increase loop mobility, which, in turn, decreases the protein's ability to bind redox partners.

摘要

在酵母异-1-细胞色素c中,组氨酸26(His26)的侧链通过与谷氨酸44的主链原子羰基形成氢键,将ω环A连接到蛋白质主体上。His26侧链还通过与天冬酰胺31的主链酰胺形成氢键,形成一种稳定的环内相互作用。为了研究环与蛋白质的连接以及环内相互作用对该蛋白质结构和功能的重要性,在His26处产生了一系列定点和随机定向突变。分析了表达这些变体蛋白的酵母菌株在非发酵碳源上生长的能力以及它们细胞内细胞色素c的产生情况。虽然数据表明His26处的突变导致细胞色素c的细胞内含量略有下降,但细胞色素c功能水平下降得更多。数据表明,细胞色素c还原酶结合受到的影响比细胞色素c氧化酶或乳酸脱氢酶结合受到的影响更大。我们提出,该残基处的突变增加了环的流动性,进而降低了蛋白质结合氧化还原伙伴的能力。

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