Popham D L, Illades-Aguiar B, Setlow P
Department of Biochemistry, University of Connecticut Health Center, Farmington 06030-3305, USA.
J Bacteriol. 1995 Aug;177(16):4721-9. doi: 10.1128/jb.177.16.4721-4729.1995.
Studies of gene expression using fusions to lacZ demonstrated that the Bacillus subtilis dacB gene, encoding penicillin-binding protein 5*, is in an operon with two downstream genes, spmA and spmB. Mutations affecting any one of these three genes resulted in the production of spores with reduced heat resistance. The cortex peptidoglycan in dacB mutant spores had more peptide side chains, a higher degree of peptide cross-linking, and possibly less muramic acid lactam than that of wild-type spores. These cortex structure parameters were normal in spmA and spmB mutant spores, but these spores did not attain normal spore core dehydration. This defect in spore core dehydration was exaggerated by the additional loss of dacB expression. However, loss of dacB alone did not alter the spore core water content. Spores produced by spmA and spmB mutants germinated faster than did those of the wild type. Spores produced by dacB mutants germinated normally but were delayed in spore outgrowth. Electron microscopy revealed a drastically altered appearance of the cortex in dacB mutants and a minor alteration in an spmA mutant. Measurements of electron micrographs indicate that the ratio of the spore protoplast volume to the sporoplast (protoplast-plus-cortex) volume was increased in dacB and spmA mutants. These results are consistent with spore core water content being the major determinant of spore heat resistance. The idea that loosely cross-linked, flexible cortex peptidoglycan has a mechanical activity involved in achieving spore core dehydration is not consistent with normal core dehydration in spores lacking only dacB.
利用与lacZ融合进行基因表达研究表明,编码青霉素结合蛋白5*的枯草芽孢杆菌dacB基因与两个下游基因spmA和spmB位于一个操纵子中。影响这三个基因中任何一个的突变都会导致产生耐热性降低的孢子。dacB突变体孢子的皮层肽聚糖具有更多的肽侧链、更高程度的肽交联,并且可能比野生型孢子的胞壁酸内酰胺更少。这些皮层结构参数在spmA和spmB突变体孢子中是正常的,但这些孢子没有实现正常的孢子核心脱水。dacB表达的额外缺失加剧了孢子核心脱水的这一缺陷。然而,仅dacB的缺失并没有改变孢子核心的含水量。spmA和spmB突变体产生的孢子比野生型孢子萌发得更快。dacB突变体产生的孢子正常萌发,但在孢子生长方面延迟。电子显微镜显示dacB突变体中皮层的外观发生了巨大变化,而spmA突变体中有轻微变化。电子显微镜照片的测量表明,dacB和spmA突变体中孢子原生质体体积与芽孢体(原生质体加皮层)体积的比率增加。这些结果与孢子核心含水量是孢子耐热性的主要决定因素一致。关于松散交联、灵活的皮层肽聚糖具有参与实现孢子核心脱水的机械活性这一观点与仅缺乏dacB的孢子中的正常核心脱水不一致。