Ishikawa S, Hara Y, Ohnishi R, Sekiguchi J
Department of Applied Biology, Faculty of Textile Science and Technology, Shinshu University, Nagano, Japan.
J Bacteriol. 1998 May;180(9):2549-55. doi: 10.1128/JB.180.9.2549-2555.1998.
Bacillus subtilis produces a 35-kDa cell wall hydrolase, CwlF, during vegetative growth. The CwlF protein was extracted from B. subtilis cwlB sigD mutant cells and separated by sodium dodecyl sulfate-polyacrylamide gel electrophoresis. N-terminal amino acid sequencing revealed that its sequence is completely identical to that of the internal region of the papQ gene product. Disruption of the papQ gene in the B. subtilis chromosome led to the complete loss of CwlF, indicating that papQ is identical to cwlF. CwlF exhibits high sequence similarity to the p60 proteins of Listeria species, NlpC proteins of Escherichia coli and Haemophilus influenzae, and Enp2 protein of Bacillus sphaericus. The beta-galactosidase activity of the cwlF-lacZ transcriptional fusion and Northern blot analysis of the cwlF gene indicated that the gene is expressed as a monocistronic operon during the exponential growth phase, and primer extension analysis suggested that the cwlF gene is transcribed mainly by EsigmaA RNA polymerase and weakly by EsigmaH RNA polymerase. While the cells of the cwlF-deficient mutant were about twice as long as those of the wild-type strain, the cwlF sigD double mutant cells exhibited extraordinary microfiber formation, in contrast to the filamentation of the sigD mutant. The CwlF production was not affected by the pleiotropic mutations flaD1 and degU32(Hy), which endow cells with the ability of extensive filamentation.
枯草芽孢杆菌在营养生长期间产生一种35 kDa的细胞壁水解酶CwlF。从枯草芽孢杆菌cwlB sigD突变体细胞中提取CwlF蛋白,并通过十二烷基硫酸钠-聚丙烯酰胺凝胶电泳进行分离。N端氨基酸测序显示其序列与papQ基因产物内部区域的序列完全相同。枯草芽孢杆菌染色体中papQ基因的破坏导致CwlF完全丧失,表明papQ与cwlF相同。CwlF与李斯特菌属的p60蛋白、大肠杆菌和流感嗜血杆菌的NlpC蛋白以及球形芽孢杆菌的Enp2蛋白具有高度的序列相似性。cwlF-lacZ转录融合的β-半乳糖苷酶活性和cwlF基因的Northern印迹分析表明,该基因在指数生长期作为单顺反子操纵子表达,引物延伸分析表明cwlF基因主要由σA RNA聚合酶转录,由σH RNA聚合酶转录较弱。虽然cwlF缺陷突变体的细胞长度约为野生型菌株细胞的两倍,但与sigD突变体的丝状化相反,cwlF sigD双突变体细胞表现出异常的微纤维形成。CwlF的产生不受多效性突变flaD1和degU32(Hy)的影响,这些突变赋予细胞广泛丝状化的能力。