Silvaggi Jessica M, Popham David L, Driks Adam, Eichenberger Patrick, Losick Richard
Department of Molecular and Cellular Biology, The Biological Laboratories, Harvard University, Cambridge, MA 02138, USA.
J Bacteriol. 2004 Dec;186(23):8089-95. doi: 10.1128/JB.186.23.8089-8095.2004.
The Bacillus subtilis transcription factor sigma(E) directs the expression of a regulon of 262 genes, but null mutations in only a small fraction of these genes severely impair sporulation. We have previously reported that mutations in seven sigma(E)-controlled genes cause a mild (2- to 10-fold) defect in sporulation. In this study, we found that pairwise combinations of some of these seven mutations led to strong synthetic sporulation phenotypes, especially those involving the ytrHI operon and ybaN. Double mutants of ybaN and ytrH and of ybaN and ytrI had >10,000-fold lower sporulation efficiencies than the wild type. Thin-section electron microscopy revealed a block in cortex formation for the ybaN ytrH double mutant and coat defects for the ybaN single and ybaN ytrI double mutants. Sporulating cells of a ybaN ytrI double mutant and of a ybaN ytrHI triple mutant exhibited a pronounced loss of dipicolinic acid (DPA) between hours 8 and 24 of sporulation, in contrast to the constant levels seen for the wild type. An analysis of the spore cortex peptidoglycans of the ybaN ytrI and ybaN ytrHI mutants showed striking decreases in the levels of total muramic acid by hour 24 of sporulation. These data, along with the loss of DPA in the mutants, suggest that the developing spores were unstable and that the cortex underwent degradation late in sporulation. The existence of otherwise hidden sporulation pathways indicates that functional redundancy may mask the role of hitherto unrecognized sporulation genes.
枯草芽孢杆菌转录因子σ(E)指导一个由262个基因组成的调控子的表达,但这些基因中只有一小部分的无效突变会严重损害孢子形成。我们之前报道过,7个受σ(E)控制的基因发生突变会导致孢子形成出现轻微(2至10倍)的缺陷。在本研究中,我们发现这7个突变中的一些两两组合会导致强烈的合成孢子形成表型,尤其是涉及ytrHI操纵子和ybaN的组合。ybaN与ytrH以及ybaN与ytrI的双突变体的孢子形成效率比野生型低10000倍以上。超薄切片电子显微镜显示,ybaN ytrH双突变体的皮层形成受阻,ybaN单突变体以及ybaN ytrI双突变体的芽孢衣存在缺陷。与野生型孢子形成过程中所见的恒定水平相比,ybaN ytrI双突变体和ybaN ytrHI三突变体的孢子形成细胞在孢子形成的8至24小时之间表现出明显的吡啶二羧酸(DPA)损失。对ybaN ytrI和ybaN ytrHI突变体的孢子皮层肽聚糖分析表明,在孢子形成24小时时,总胞壁酸水平显著下降。这些数据,连同突变体中DPA的损失,表明发育中的孢子不稳定,并且皮层在孢子形成后期发生降解。其他隐藏的孢子形成途径的存在表明,功能冗余可能掩盖了迄今未被认识的孢子形成基因的作用。