Goldman B S, Gabbert K K, Kranz R G
Department of Biology, Washington University, St. Louis, MO 63130, USA.
J Bacteriol. 1996 Nov;178(21):6338-47. doi: 10.1128/jb.178.21.6338-6347.1996.
Strains of Escherichia coli containing mutations in the cydDC genes are defective for synthesis of the heme proteins cytochrome bd and c-type cytochromes. The cydDC genes encode a putative heterodimeric ATP-binding cassette transporter that has been proposed to act as an exporter of heme to the periplasm. To more fully understand the role of this transporter (and other factors) in heme protein biosynthesis, we developed plasmids that produce various heme proteins (e.g., cytochrome b5, cytochrome b562, and hemoglobin) in the periplasm of E. coli. By using these reporters, it was shown that the steady-state levels of polypeptides of heme proteins known to be stable without heme (e.g., cytochrome b5 and hemoglobin apoprotein) are significantly reduced in a cydC mutant. Exogenous addition of hemin to the cydC mutant still resulted in < 10% of wild-type steady-state levels of apohemoglobin in the periplasm. Since the results of heme reporter studies are not consistent with lower heme availability (i.e., heme export) in a cydC mutant, we analyzed other properties of the periplasm in cydC mutants and compared them with those of the periplasm in cydAB (encoding cytochrome bd) mutants and wild-type cells. Our results led us to favor a hypothesis whereby cydDC mutants are defective in the reduction environment within the periplasmic space. Such an imbalance could lead to defects in the synthesis of heme-liganded proteins. The heme reporters were also used to analyze strains of E. coli with a defect in genes encoding homologs of a different ABC transporter (helABC). The helABC genes have previously been shown to be required for the assembly of c-type cytochromes in Rhodobacter capsulatus (R. G. Kranz, J. Bacteriol. 171:456-464, 1989; D. L. Beckman, D. R. Trawick, and R. G. Kranz, Genes Dev. 6:268-283, 1992). This locus was shown to be essential in E. coli for endogenous cytochrome c biogenesis but not cytochrome b562 synthesis. Consistent with these and previous results, it is proposed that the HelABC transporter is specifically involved in heme export for ligation (hel). This class of periplasmic cytochromes is proposed to require heme liganding before undergoing correct folding.
在cydDC基因中含有突变的大肠杆菌菌株,在合成血红素蛋白细胞色素bd和c型细胞色素方面存在缺陷。cydDC基因编码一种假定的异源二聚体ATP结合盒转运蛋白,有人提出它作为血红素向周质的输出蛋白。为了更全面地了解这种转运蛋白(以及其他因素)在血红素蛋白生物合成中的作用,我们构建了一些质粒,这些质粒能在大肠杆菌周质中产生各种血红素蛋白(如细胞色素b5、细胞色素b562和血红蛋白)。通过使用这些报告基因,发现已知在没有血红素时稳定的血红素蛋白多肽的稳态水平,在cydC突变体中显著降低。向cydC突变体中额外添加血红素后,周质中脱辅基血红蛋白的稳态水平仍低于野生型的10%。由于血红素报告基因研究的结果与cydC突变体中血红素可用性降低(即血红素输出)不一致,我们分析了cydC突变体周质的其他特性,并将其与cydAB(编码细胞色素bd)突变体和野生型细胞周质的特性进行了比较。我们的结果使我们倾向于一种假说,即cydDC突变体在周质空间内的还原环境中存在缺陷。这种失衡可能导致血红素结合蛋白合成的缺陷。血红素报告基因还用于分析在编码另一种ABC转运蛋白(helABC)同源物的基因中存在缺陷的大肠杆菌菌株。先前已表明,helABC基因是荚膜红细菌中c型细胞色素组装所必需的(R.G.Kranz,《细菌学杂志》171:456 - 464,1989;D.L.Beckman,D.R.Trawick和R.G.Kranz,《基因与发育》6:268 - 283,1992)。该位点在大肠杆菌中对于内源性细胞色素c的生物合成是必需的,但对于细胞色素b562的合成不是必需的。与这些以及先前的结果一致,有人提出HelABC转运蛋白专门参与血红素的输出以便进行结合(hel)。有人提出这类周质细胞色素在经历正确折叠之前需要血红素结合。