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本文引用的文献

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Novel gene regulation mediated by overproduction of secondary metabolite neotrehalosadiamine in Bacillus subtilis.枯草芽孢杆菌中次生代谢物新海藻糖二胺过量产生介导的新型基因调控
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2
Inactivation of KsgA, a 16S rRNA methyltransferase, causes vigorous emergence of mutants with high-level kasugamycin resistance.16S rRNA 甲基转移酶 KsgA 的失活会导致大量具有高水平春雷霉素抗性的突变体出现。
Antimicrob Agents Chemother. 2009 Jan;53(1):193-201. doi: 10.1128/AAC.00873-08. Epub 2008 Nov 10.
3
Dramatic activation of antibiotic production in Streptomyces coelicolor by cumulative drug resistance mutations.天蓝色链霉菌中累积的耐药性突变对抗生素生产的显著激活作用。
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4
From microbial differentiation to ribosome engineering.从微生物分化到核糖体工程。
Biosci Biotechnol Biochem. 2007 Jun;71(6):1373-86. doi: 10.1271/bbb.70007.
5
Identification of the RsmG methyltransferase target as 16S rRNA nucleotide G527 and characterization of Bacillus subtilis rsmG mutants.确定RsmG甲基转移酶的靶标为16S rRNA核苷酸G527并对枯草芽孢杆菌rsmG突变体进行表征。
J Bacteriol. 2007 Aug;189(16):6068-73. doi: 10.1128/JB.00558-07. Epub 2007 Jun 15.
6
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7
Mutations in rsmG, encoding a 16S rRNA methyltransferase, result in low-level streptomycin resistance and antibiotic overproduction in Streptomyces coelicolor A3(2).编码16S rRNA甲基转移酶的rsmG基因突变,会导致天蓝色链霉菌A3(2)产生低水平链霉素抗性和抗生素过量生产。
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8
Loss of a conserved 7-methylguanosine modification in 16S rRNA confers low-level streptomycin resistance in bacteria.16S核糖体RNA中保守的7-甲基鸟苷修饰缺失赋予细菌低水平链霉素抗性。
Mol Microbiol. 2007 Feb;63(4):1096-106. doi: 10.1111/j.1365-2958.2006.05585.x.
9
Increased expression of ribosome recycling factor is responsible for the enhanced protein synthesis during the late growth phase in an antibiotic-overproducing Streptomyces coelicolor ribosomal rpsL mutant.核糖体循环因子表达增加是抗生素高产天蓝色链霉菌核糖体rpsL突变体在生长后期蛋白质合成增强的原因。
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10
Improvement of alpha-amylase production by modulation of ribosomal component protein S12 in Bacillus subtilis 168.通过调节枯草芽孢杆菌168核糖体组成蛋白S12提高α-淀粉酶产量
Appl Environ Microbiol. 2006 Jan;72(1):71-7. doi: 10.1128/AEM.72.1.71-77.2006.

枯草芽孢杆菌新型多药耐药操纵子mdtRP(yusOP)的鉴定与表征

Identification and characterization of a novel multidrug resistance operon, mdtRP (yusOP), of Bacillus subtilis.

作者信息

Kim Ji-Yun, Inaoka Takashi, Hirooka Kazutaka, Matsuoka Hiroshi, Murata Makiko, Ohki Reiko, Adachi Yoshikazu, Fujita Yasutaro, Ochi Kozo

机构信息

National Food Research Institute, 2-1-12 Kannondai, Tsukuba, Ibaraki, 305-8642 Japan.

出版信息

J Bacteriol. 2009 May;191(10):3273-81. doi: 10.1128/JB.00151-09. Epub 2009 Mar 13.

DOI:10.1128/JB.00151-09
PMID:19286808
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC2687175/
Abstract

Using comparative genome sequencing analysis, we identified a novel mutation in Bacillus subtilis that confers a low level of resistance to fusidic acid. This mutation was located in the mdtR (formerly yusO) gene, which encodes a MarR-type transcriptional regulator, and conferred a low level of resistance to several antibiotics, including novobiocin, streptomycin, and actinomycin D. Transformation experiments showed that this mdtR mutation was responsible for multidrug resistance. Northern blot analysis revealed that the downstream gene mdtP (formerly yusP), which encodes a multidrug efflux transporter, is cotranscribed with mdtR as an operon. Disruption of the mdtP gene completely abolished the multidrug resistance phenotype observed in the mdtR mutant. DNase I footprinting and primer extension analyses demonstrated that the MdtR protein binds directly to the mdtRP promoter, thus leading to repression of its transcription. Moreover, gel mobility shift analysis indicated that an Arg83 --> Lys or Ala67 --> Thr substitution in MdtR significantly reduces binding affinity to DNA, resulting in derepression of mdtRP transcription. Low concentrations of fusidic acid induced the expression of mdtP, although the level of mdtP expression was much lower than that in the mdtR disruptant. These findings indicate that the MdtR protein is a repressor of the mdtRP operon and that the MdtP protein functions as a multidrug efflux transporter in B. subtilis.

摘要

通过比较基因组测序分析,我们在枯草芽孢杆菌中鉴定出一种新的突变,该突变赋予了对夫西地酸的低水平抗性。此突变位于mdtR(原yusO)基因中,该基因编码一种MarR型转录调节因子,并赋予了对包括新生霉素、链霉素和放线菌素D在内的几种抗生素的低水平抗性。转化实验表明,这种mdtR突变是多药耐药性的原因。Northern印迹分析显示,编码多药外排转运蛋白的下游基因mdtP(原yusP)与mdtR作为一个操纵子共转录。mdtP基因的破坏完全消除了在mdtR突变体中观察到的多药耐药表型。DNase I足迹分析和引物延伸分析表明,MdtR蛋白直接结合到mdtRP启动子上,从而导致其转录受到抑制。此外,凝胶迁移率变动分析表明,MdtR中的Arg83→Lys或Ala67→Thr取代显著降低了与DNA的结合亲和力,导致mdtRP转录去抑制。低浓度的夫西地酸诱导了mdtP的表达,尽管mdtP的表达水平远低于mdtR缺失突变体中的水平。这些发现表明,MdtR蛋白是mdtRP操纵子的阻遏物,并且MdtP蛋白在枯草芽孢杆菌中作为多药外排转运蛋白发挥作用。