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首页> 外文期刊>Archives of microbiology >Occurrence and regulation of the ferric citrate transport system in Escherichia coli B, Klebsiella pneumoniae, Enterobacter aerogenes, and Photorhabdus luminescens
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Occurrence and regulation of the ferric citrate transport system in Escherichia coli B, Klebsiella pneumoniae, Enterobacter aerogenes, and Photorhabdus luminescens

机译:大肠杆菌B,肺炎克雷伯菌,产气肠杆菌和光致发光杆菌中柠檬酸铁运输系统的发生和调控

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In Escherichia coli K-12, transcription of the ferric citrate transport genes fecABCDE is initiated by binding of diferric dicitrate to the outer membrane protein FecA which elicits a signaling cascade from the cell surface to the cytoplasm. The FecI sigma factor is only active in the presence of FecR, which transfers the signal across the cytoplasmic membrane. In other bacteria, fecIRA homologues control iron transport gene transcription by siderophores other than citrate. However, in most cases, the FecI homologues are active in the absence of the FecR homologues, which might function as anti-sigma factors. Since not all E. coli strains contain a fec system, we determined the occurrence of fec genes in selected Enterobacteriaceae and the dependence of FecI activity on FecR. Incomplete FecIRA systems were chromosomally encoded in Enterobacter aerogenes strains and plasmid-encoded in K. pneumoniae. E. coli B, Photorhabdus luminescens and one of three Klebsiella pneumoniae strains had a functional FecIRA regulatory system as in E. coli K-12. The cytoplasmic N-terminal FecR fragments caused constitutive FecI activity in the absence of ferric citrate. The PCR-generated mutant FecI(D40G) was inactive and FecI(S15P) was partially active. FecR of E. coli K-12 activated FecI of all tested strains except FecI encoded on the virulence plasmid pLVPK of K. pneumoniae, which differed from E. coli K-12 FecI by having mutations in region 4, which is important for interaction with FecR. The C-terminally truncated FecR homologue of pLVPK was inactive. pLVPK-encoded FecA contains a 38-residue sequence in front of the signal sequence that did not prevent processing and proper integration of FecA into the outer membrane of E. coli and lacks the signaling sequence required for transcription initiation of the fec transport genes, making it induction-incompetent but transport-competent. The evidence indicates that fecIRABCDE genes are acquired by horizontal DNA transfer and can undergo debilitating mutations.
机译:在大肠杆菌K-12中,柠檬酸铁转运基因fecABCDE的转录是通过二柠檬酸二铁与外膜蛋白FecA结合而引发的,该蛋白引起从细胞表面到细胞质的信号级联。 FecI sigma因子仅在FecR存在时才起作用,它会在细胞质膜上传递信号。在其他细菌中,fecIRA同源物通过除柠檬酸盐以外的铁载体控制铁转运基因的转录。但是,在大多数情况下,在不存在FecR同源物的情况下,FecI同源物是有活性的,而FecR同源物可能起着抗西格玛因子的作用。由于并非所有大肠杆菌菌株都包含fec系统,因此我们确定了所选肠杆菌科中fec基因的出现以及FecI活性对FecR的依赖性。不完整的FecIRA系统在产气肠杆菌菌株中进行了染色体编码,并在肺炎克雷伯氏菌中进行了质粒编码。大肠杆菌B,光致发光杆菌和三种肺炎克雷伯菌菌株之一具有与大​​肠杆菌K-12相同的功能性FecIRA调节系统。在不存在柠檬酸铁的情况下,胞质N末端FecR片段引起本构FecI活性。 PCR产生的突变FecI(D40G)无效,而FecI(S15P)部分活跃。大肠杆菌K-12的FecR激活了所有测试菌株的FecI,除了在肺炎克雷伯菌的致病性质粒pLVPK上编码的FecI外,它与大肠杆菌K-12 FecI的不同之处在于在区域4中具有突变,这对于与细菌相互作用具有重要意义FecR。 pLVPK的C端截短的FecR同源是无效的。 pLVPK编码的FecA在信号序列之前包含38个残基序列,该序列不会阻止FecA的加工和正确整合到大肠杆菌的外膜中,并且缺少fec转运基因转录起始所需的信号序列,它没有感应能力但有运输能力。证据表明,fecIRABCDE基因是通过水平DNA转移获得的,并且可能经历使人衰弱的突变。

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