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乳酸乳球菌CodY调控的支链氨基酸通透酶BcaP(CtrA)的鉴定与功能表征

Identification and functional characterization of the Lactococcus lactis CodY-regulated branched-chain amino acid permease BcaP (CtrA).

作者信息

den Hengst Chris D, Groeneveld Maarten, Kuipers Oscar P, Kok Jan

机构信息

Department of Molecular Genetics, Groningen Biomolecular Sciences and Biotechnology Institute, University of Groningen, Kerklaan 30, 9751 NN Haren, The Netherlands.

出版信息

J Bacteriol. 2006 May;188(9):3280-9. doi: 10.1128/JB.188.9.3280-3289.2006.

Abstract

Transcriptome analyses have previously revealed that a gene encoding the putative amino acid transporter CtrA (YhdG) is one of the major targets of the pleiotropic regulator CodY in Lactococcus lactis and Bacillus subtilis. The role of ctrA in L. lactis was further investigated with respect to both transport activity as well as CodY-mediated regulation. CtrA is required for optimal growth in media containing free amino acids as the only amino acid source. Amino acid transport studies showed that ctrA encodes a secondary amino acid transport system that is specific for branched-chain amino acids (BCAAs) (isoleucine, leucine, and valine) and methionine, which is in disagreement with its previously proposed function (a cationic amino acid transporter), which was assigned based on homology. We propose to rename CtrA BcaP, for branched-chain amino acid permease. BcaP is a member of a group of conserved transport systems, as homologs are widely distributed among gram-positive bacteria. Deletion of bcaP resulted in the loss of most of the BCAA uptake activity of L. lactis, indicating that BcaP is the major BCAA carrier of this organism. Deletion of bcaP together with a second (putative) BCAA permease, encoded by brnQ, further reduced the viability of the strain. DNA microarray analysis showed that deletion of bcaP predominantly affects genes belonging to the regulons of the transcriptional regulator CodY, which is involved in global nitrogen metabolism and needs BCAAs for its activation, and of CmbR, which is involved in sulfur amino acid metabolism.

摘要

转录组分析先前已揭示,编码假定氨基酸转运蛋白CtrA(YhdG)的基因是乳酸乳球菌和枯草芽孢杆菌中多效调节因子CodY的主要靶标之一。针对转运活性以及CodY介导的调控,对乳酸乳球菌中ctrA的作用进行了进一步研究。在以游离氨基酸作为唯一氨基酸来源的培养基中,CtrA是最佳生长所必需的。氨基酸转运研究表明,ctrA编码一种对支链氨基酸(BCAAs)(异亮氨酸、亮氨酸和缬氨酸)和蛋氨酸具有特异性的次生氨基酸转运系统,这与其先前基于同源性推测的功能(阳离子氨基酸转运蛋白)不一致。我们建议将CtrA重新命名为BcaP,即支链氨基酸通透酶。BcaP是一组保守转运系统的成员,因为其同源物在革兰氏阳性菌中广泛分布。缺失bcaP导致乳酸乳球菌的大部分BCAA摄取活性丧失,表明BcaP是该生物体的主要BCAA载体。缺失bcaP以及由brnQ编码的第二个(假定的)BCAA通透酶,进一步降低了菌株的活力。DNA微阵列分析表明,缺失bcaP主要影响属于转录调节因子CodY(参与全局氮代谢且需要BCAAs来激活)和CmbR(参与含硫氨基酸代谢)调控子的基因。

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