Soldo Blazenka, Lazarevic Vladimir, Karamata Dimitri
Institut de Génétique et de Biologie Microbiennes, Université de Lausanne, Rue César-Roux 19, CH-1005 Lausanne, Switzerland1.
Microbiology (Reading). 2002 Jul;148(Pt 7):2079-2087. doi: 10.1099/00221287-148-7-2079.
Sequence homologies suggest that the Bacillus subtilis 168 tagO gene encodes UDP-N-acetylglucosamine:undecaprenyl-P N-acetylglucosaminyl 1-P transferase, the enzyme responsible for catalysing the first step in the synthesis of the teichoic acid linkage unit, i.e. the formation of undecaprenyl-PP-N-acetylglucosamine. Inhibition of tagO expression mediated by an IPTG-inducible P(spac) promoter led to the development of a coccoid cell morphology, a feature characteristic of mutants blocked in teichoic acid synthesis. Indeed, analyses of the cell-wall phosphate content, as well as the incorporation of radioactively labelled precursors, revealed that the synthesis of poly(glycerol phosphate) and poly(glucosyl N-acetylgalactosamine 1-phosphate), the two strain 168 teichoic acids known to share the same linkage unit, was affected. Surprisingly, under phosphate limitation, deficiency of TagO precludes the synthesis of teichuronic acid, which is normally induced under these conditions. The regulatory region of tagO, containing two partly overlapping sigma(A)-controlled promoters, is similar to that of sigA, the gene encoding the major sigma factor responsible for growth. Here, the authors discuss the possibility that TagO may represent a pivotal element in the multi-enzyme complexes responsible for the synthesis of anionic cell-wall polymers, and that it may play one of the key roles in balanced cell growth.
序列同源性表明,枯草芽孢杆菌168株的tagO基因编码UDP-N-乙酰葡糖胺:十一异戊烯基-P N-乙酰葡糖胺基1-P转移酶,该酶负责催化磷壁酸连接单元合成的第一步,即十一异戊烯基-PP-N-乙酰葡糖胺的形成。由IPTG诱导型P(spac)启动子介导的tagO表达抑制导致了球菌样细胞形态的出现,这是磷壁酸合成受阻的突变体的一个特征。事实上,对细胞壁磷酸盐含量以及放射性标记前体掺入情况的分析表明,聚(甘油磷酸)和聚(N-乙酰半乳糖胺1-磷酸葡糖基)这两种已知共享相同连接单元的168株磷壁酸的合成受到了影响。令人惊讶的是,在磷酸盐限制条件下,TagO的缺乏会阻止磷壁酸的合成,而在正常情况下,磷壁酸在这些条件下会被诱导合成。tagO的调控区域包含两个部分重叠的受sigma(A)控制的启动子,与sigA的调控区域相似,sigA是编码负责生长的主要sigma因子的基因。在此,作者讨论了TagO可能是负责阴离子细胞壁聚合物合成的多酶复合物中的关键元件的可能性,并且它可能在细胞平衡生长中发挥关键作用之一。