Caffrey M, Davidson E, Cusanovich M, Daldal F
Department of Biochemistry, University of Arizona, Tucson 85721.
Arch Biochem Biophys. 1992 Feb 1;292(2):419-26. doi: 10.1016/0003-9861(92)90011-k.
Although structurally related to other members of the class I c-type cytochromes, the cytochromes c2 have little amino acid sequence homology to the eukaryotic cytochromes c. Moreover, the cytochromes c2 exhibit distinct properties such as redox potential and an isoelectric point. In an effort to understand the differences between the cytochromes c2 and the other class I c-type cytochromes, we have developed a genetic system to study Rhodobacter capsulatus cytochrome c2 by site-directed mutagenesis. We describe here overproduction of R. capsulatus wild-type cytochrome c2 in cytochrome c2-minus strains of R. capsulatus and Rhodobacter sphaeroides. We demonstrate that R. capsulatus wild-type cytochrome c2 can transcomplement for photosynthetic growth in R. sphaeroides. Further, we describe the generation, expression, and in vivo functionality properties of nine R. capsulatus site-directed mutants. We show that mutants K12D, K14E, K32E, K14E/K32E, P35A, W67Y, and Y75F are overproduced and functional in vivo. In contrast, mutants Y75C and Y75S are expressed at low levels and exhibit poor functionality in vivo. These findings establish an effective system for the production of R. capsulatus site-directed mutants and demonstrate that interspecies complementation can be used to detect defective cytochrome c2 mutants.
尽管细胞色素c2在结构上与I类c型细胞色素的其他成员相关,但它与真核细胞色素c的氨基酸序列同源性很低。此外,细胞色素c2表现出不同的特性,如氧化还原电位和等电点。为了了解细胞色素c2与其他I类c型细胞色素之间的差异,我们开发了一种遗传系统,通过定点诱变来研究荚膜红细菌细胞色素c2。我们在此描述了荚膜红细菌野生型细胞色素c2在荚膜红细菌和球形红细菌的细胞色素c2缺失菌株中的过量表达。我们证明荚膜红细菌野生型细胞色素c2可以在球形红细菌中进行光合生长的反式互补。此外,我们描述了九个荚膜红细菌定点突变体的产生、表达和体内功能特性。我们表明,突变体K12D、K14E、K32E、K14E/K32E、P35A、W67Y和Y75F在体内过量表达且具有功能。相比之下,突变体Y75C和Y75S在体内表达水平较低且功能较差。这些发现建立了一个有效的系统来生产荚膜红细菌定点突变体,并证明种间互补可用于检测有缺陷的细胞色素c2突变体。