Hoch Philipp G, Burenina Olga Y, Weber Michael H W, Elkina Daria A, Nesterchuk Mikhail V, Sergiev Petr V, Hartmann Roland K, Kubareva Elena A
Philipps-Universität Marburg, Fachbereich Pharmazie, Institut für Pharmazeutische Chemie, Marbacher Weg 6, D-35037 Marburg, Germany.
Chemistry Department and A.N. Belozersky Institute of Physico-Chemical Biology, M.V. Lomonosov Moscow State University, Leninskie Gory 1, 119991 Moscow, Russia.
Biochimie. 2015 Oct;117:87-99. doi: 10.1016/j.biochi.2014.12.019. Epub 2015 Jan 8.
6S RNA, a global regulator of transcription in bacteria, binds to housekeeping RNA polymerase (RNAP) holoenzymes to competitively inhibit transcription from DNA promoters. Bacillus subtilis encodes two 6S RNA homologs whose differential functions are as yet unclear. We constructed derivative strains of B. subtilis PY79 lacking 6S-1 RNA (ΔbsrA), 6S-2 RNA (ΔbsrB) or both (ΔbsrAB) to study the physiological role of the two 6S RNAs. We observed two growth phenotypes of mutant strains: (i) accelerated decrease of optical density toward extended stationary phase and (ii) faster outgrowth from stationary phase under alkaline stress conditions (pH 9.8). The first phenotype was observed for bacteria lacking bsrA, and even more pronounced for ΔbsrAB bacteria, but not for those lacking bsrB. The magnitude of the second phenotype was relatively weak for ΔbsrB, moderate for ΔbsrA and again strongest for ΔbsrAB bacteria. Whereas ΔbsrAB bacteria complemented with bsrB or bsrA (strains ΔbsrAB + B and ΔbsrAB + A) mimicked the phenotypes of the ΔbsrA and ΔbsrB strains, respectively, complementation with the gene ssrS encoding Escherichia coli 6S RNA failed to cure the "low stationary optical density" phenotype of the double mutant, despite ssrS expression, in line with previous findings. Finally, proteomics (two-dimensional differential gel electrophoresis, 2D-DIGE) of B. subtilis 6S RNA deletion strains unveiled a set of proteins that were expressed at higher levels particularly during exponential growth and preferentially in mutant strains lacking 6S-2 RNA. Several of these proteins are involved in metabolism and stress responses.
6S RNA是细菌转录的全局调节因子,它与管家RNA聚合酶(RNAP)全酶结合,竞争性抑制DNA启动子的转录。枯草芽孢杆菌编码两种6S RNA同源物,其不同功能尚不清楚。我们构建了缺乏6S-1 RNA(ΔbsrA)、6S-2 RNA(ΔbsrB)或两者都缺乏(ΔbsrAB)的枯草芽孢杆菌PY79衍生菌株,以研究这两种6S RNA的生理作用。我们观察到突变菌株的两种生长表型:(i)在稳定期延长时,光密度加速下降;(ii)在碱性胁迫条件(pH 9.8)下,从稳定期更快地生长。第一种表型在缺乏bsrA的细菌中观察到,在ΔbsrAB细菌中更明显,但在缺乏bsrB的细菌中未观察到。第二种表型的程度在ΔbsrB中相对较弱,在ΔbsrA中适中,在ΔbsrAB细菌中再次最强。虽然用bsrB或bsrA互补的ΔbsrAB细菌(菌株ΔbsrAB + B和ΔbsrAB + A)分别模拟了ΔbsrA和ΔbsrB菌株的表型,但用编码大肠杆菌6S RNA的基因ssrS互补未能治愈双突变体的“低稳定期光密度”表型,尽管ssrS表达,这与先前的发现一致。最后,枯草芽孢杆菌6S RNA缺失菌株的蛋白质组学(二维差异凝胶电泳,2D-DIGE)揭示了一组蛋白质,这些蛋白质在指数生长期特别是在缺乏6S-2 RNA的突变菌株中表达水平更高。其中几种蛋白质参与代谢和应激反应。