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CI 样蛋白 SknR 对 sigK 插入(皮肤)元件基因表达的抑制作用及 SknR 缺失对枯草芽孢杆菌细胞生长的影响。

Repression of sigK intervening (skin) element gene expression by the CI-like protein SknR and effect of SknR depletion on growth of Bacillus subtilis cells.

机构信息

Department of Applied Biological Science, Tokyo University of Agriculture and Technology, Fuchu, Tokyo, Japan, USA.

出版信息

J Bacteriol. 2010 Dec;192(23):6209-16. doi: 10.1128/JB.00625-10. Epub 2010 Oct 1.

Abstract

The Bacillus subtilis phage DNA-like sigK intervening (skin) element (48 kb) is excised from the chromosome by DNA rearrangement, and a composite gene, sigK (spoIIIC and spoIVCB), is created on the chromosome during sporulation. In this study, we first focused on the role of sknR (skin repressor), which has homology with the gene encoding the Xre repressor of defective phage PBSX. The depletion of SknR caused overexpression of the region between yqaF and yqaN (the yqaF-yqaN operon) and a growth defect in B. subtilis. Point mutation analysis and an electrophoretic mobility shift assay (EMSA) suggested that SknR functions as a negative regulator of gene expression in the yqaF-yqaN operon of the skin element through direct interaction with operators of 2-fold symmetry located in the intergenic region between sknR and yqaF. Deletion analysis revealed that the lethal effect of depletion of SknR was related to overexpression of yqaH and yqaM, whose products were previously reported to associate with DnaA and DnaC, respectively. Furthermore, overexpression of either yqaH or yqaM caused cell filamentation and abnormal chromosome segregation, which suggested that overproduction of these proteins inhibits DNA replication. Moreover, overexpression of yqaM inhibited the initiation of replication. Taken together, these data demonstrate that the B. subtilis skin element carries lethal genes, which are induced by the depletion of sknR.

摘要

枯草芽孢杆菌噬菌体 DNA 样 sigK 间隔(skin)元件(48kb)通过 DNA 重排从染色体上切除,在孢子形成过程中,染色体上会产生一个复合基因 sigK(spoIIIC 和 spoIVCB)。在本研究中,我们首先关注 sknR(skin 阻遏物)的作用,它与编码缺陷噬菌体 PBSX 的 Xre 阻遏物的基因具有同源性。SknR 的缺失导致 yqaF 和 yqaN 之间区域(yqaF-yqaN 操纵子)的过表达和枯草芽孢杆菌的生长缺陷。点突变分析和电泳迁移率变动分析(EMSA)表明,SknR 通过与位于 sknR 和 yqaF 之间的基因间区域中的 2 倍对称操纵子直接相互作用,作为 skin 元件中 yqaF-yqaN 操纵子基因表达的负调控因子发挥作用。缺失分析表明,SknR 缺失的致死效应与 yqaH 和 yqaM 的过表达有关,它们的产物先前被报道分别与 DnaA 和 DnaC 相关。此外,yqaH 或 yqaM 的过表达导致细胞丝状化和异常染色体分离,这表明这些蛋白质的过表达抑制了 DNA 复制。此外,yqaM 的过表达抑制了复制的起始。总之,这些数据表明,枯草芽孢杆菌 skin 元件携带致死基因,这些基因可被 sknR 的缺失诱导。

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