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参与同化性硫酸盐还原的谷氨酸棒杆菌fpr2-cysIXHDNYZ基因簇的功能基因组学与表达分析

Functional genomics and expression analysis of the Corynebacterium glutamicum fpr2-cysIXHDNYZ gene cluster involved in assimilatory sulphate reduction.

作者信息

Rückert Christian, Koch Daniel J, Rey Daniel A, Albersmeier Andreas, Mormann Sascha, Pühler Alfred, Kalinowski Jörn

机构信息

International NRW Graduate School in Bioinformatics & Genome Research, Universität Bielefeld, D-33594 Bielefeld, Germany.

出版信息

BMC Genomics. 2005 Sep 13;6:121. doi: 10.1186/1471-2164-6-121.

Abstract

BACKGROUND

Corynebacterium glutamicum is a high-GC Gram-positive soil bacterium of great biotechnological importance for the production of amino acids. To facilitate the rational design of sulphur amino acid-producing strains, the pathway for assimilatory sulphate reduction providing the necessary reduced sulfur moieties has to be known. Although this pathway has been well studied in Gram-negative bacteria like Escherichia coli and low-GC Gram-positives like Bacillus subtilis, little is known for the Actinomycetales and other high-GC Gram-positive bacteria.

RESULTS

The genome sequence of C. glutamicum was searched for genes involved in the assimilatory reduction of inorganic sulphur compounds. A cluster of eight candidate genes could be identified by combining sequence similarity searches with a subsequent synteny analysis between C. glutamicum and the closely related C. efficiens. Using mutational analysis, seven of the eight candidate genes, namely cysZ, cysY, cysN, cysD, cysH, cysX, and cysI, were demonstrated to be involved in the reduction of inorganic sulphur compounds. For three of the up to now unknown genes possible functions could be proposed: CysZ is likely to be the sulphate permease, while CysX and CysY are possibly involved in electron transfer and cofactor biosynthesis, respectively. Finally, the candidate gene designated fpr2 influences sulphur utilisation only weakly and might be involved in electron transport for the reduction of sulphite. Real-time RT-PCR experiments revealed that cysIXHDNYZ form an operon and that transcription of the extended cluster fpr2 cysIXHDNYZ is strongly influenced by the availability of inorganic sulphur, as well as L-cysteine. Mapping of the fpr2 and cysIXHDNYZ promoters using RACE-PCR indicated that both promoters overlap with binding-sites of the transcriptional repressor McbR, suggesting an involvement of McbR in the observed regulation. Comparative genomics revealed that large parts of the extended cluster are conserved in 11 of 17 completely sequenced members of the Actinomycetales.

CONCLUSION

The set of C. glutamicum genes involved in assimilatory sulphate reduction was identified and four novel genes involved in this pathway were found. The high degree of conservation of this cluster among the Actinomycetales supports the hypothesis that a different metabolic pathway for the reduction of inorganic sulphur compounds than that known from the well-studied model organisms E. coli and B. subtilis is used by members of this order, providing the basis for further biochemical studies.

摘要

背景

谷氨酸棒杆菌是一种高GC含量的革兰氏阳性土壤细菌,在氨基酸生产方面具有重要的生物技术意义。为了便于合理设计生产含硫氨基酸的菌株,必须了解提供必要还原态硫部分的同化硫酸盐还原途径。尽管该途径在大肠杆菌等革兰氏阴性细菌和枯草芽孢杆菌等低GC含量革兰氏阳性细菌中已得到充分研究,但对于放线菌目和其他高GC含量革兰氏阳性细菌却知之甚少。

结果

在谷氨酸棒杆菌的基因组序列中搜索参与无机硫化合物同化还原的基因。通过将序列相似性搜索与谷氨酸棒杆菌和密切相关的高效谷氨酸棒杆菌之间的后续共线性分析相结合,可鉴定出一个由八个候选基因组成的基因簇。通过突变分析,证实八个候选基因中的七个,即cysZ、cysY、cysN、cysD、cysH、cysX和cysI,参与无机硫化合物的还原。对于三个目前未知的基因,可提出可能的功能:CysZ可能是硫酸盐通透酶,而CysX和CysY可能分别参与电子传递和辅因子生物合成。最后,命名为fpr2的候选基因对硫利用的影响较弱,可能参与亚硫酸盐还原的电子传递。实时RT-PCR实验表明,cysIXHDNYZ形成一个操纵子,并且扩展基因簇fpr2 cysIXHDNYZ的转录受到无机硫以及L-半胱氨酸可用性的强烈影响。使用RACE-PCR对fpr2和cysIXHDNYZ启动子进行定位表明,这两个启动子与转录阻遏物McbR的结合位点重叠,表明McbR参与了观察到的调控。比较基因组学显示,在放线菌目的17个全序列成员中的11个中,扩展基因簇的大部分是保守的。

结论

鉴定出了谷氨酸棒杆菌中参与同化硫酸盐还原的基因集,并发现了该途径中四个新基因。该基因簇在放线菌目中的高度保守支持了这样一种假设,即该目成员使用的无机硫化合物还原代谢途径与在深入研究的模式生物大肠杆菌和枯草芽孢杆菌中已知的途径不同,这为进一步的生化研究提供了基础。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/f24d/1266029/cafed2c60f47/1471-2164-6-121-1.jpg

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