The copper-responsive regulator CsoR is indirectly involved in Bradyrhizobium diazoefficiens denitrification.

IF 2.2 4区 生物学 Q3 MICROBIOLOGY Fems Microbiology Letters Pub Date : 2023-01-17 DOI:10.1093/femsle/fnad084
Pedro J Pacheco, Juan J Cabrera, Andrea Jiménez-Leiva, María J Torres, Andrew J Gates, Eulogio J Bedmar, David J Richardson, Socorro Mesa, Germán Tortosa, María J Delgado
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Abstract

The soybean endosymbiont Bradyrhizobium diazoefficiens harbours the complete denitrification pathway that is catalysed by a periplasmic nitrate reductase (Nap), a copper (Cu)-containing nitrite reductase (NirK), a c-type nitric oxide reductase (cNor), and a nitrous oxide reductase (Nos), encoded by the napEDABC, nirK, norCBQD, and nosRZDFYLX genes, respectively. Induction of denitrification genes requires low oxygen and nitric oxide, both signals integrated into a complex regulatory network comprised by two interconnected cascades, FixLJ-FixK2-NnrR and RegSR-NifA. Copper is a cofactor of NirK and Nos, but it has also a role in denitrification gene expression and protein synthesis. In fact, Cu limitation triggers a substantial down-regulation of nirK, norCBQD, and nosRZDFYLX gene expression under denitrifying conditions. Bradyrhizobium diazoefficiens genome possesses a gene predicted to encode a Cu-responsive repressor of the CsoR family, which is located adjacent to copA, a gene encoding a putative Cu+-ATPase transporter. To investigate the role of CsoR in the control of denitrification gene expression in response to Cu, a csoR deletion mutant was constructed in this work. Mutation of csoR did not affect the capacity of B. diazoefficiens to grow under denitrifying conditions. However, by using qRT-PCR analyses, we showed that nirK and norCBQD expression was much lower in the csoR mutant compared to wild-type levels under Cu-limiting denitrifying conditions. On the contrary, copA expression was significantly increased in the csoR mutant. The results obtained suggest that CsoR acts as a repressor of copA. Under Cu limitation, CsoR has also an indirect role in the expression of nirK and norCBQD genes.

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铜响应调节因子CsoR间接参与慢生根瘤菌重氮脱氮。
大豆内共生菌慢生根瘤菌重氮效率具有完整的反硝化途径,该途径由质周硝酸盐还原酶(Nap)、含铜亚硝酸盐还原酶(NirK)、c型一氧化氮还原酶(cNor)和一氧化氮还原酶(Nos)催化,分别由napEDABC、NirK、norCBQD和nosRZDFYLX基因编码。反硝化基因的诱导需要低氧和一氧化氮,这两个信号被整合到一个复杂的调控网络中,由两个相互连接的级联组成,FixLJ-FixK2-NnrR和RegSR-NifA。铜是NirK和Nos的辅助因子,但它也在反硝化基因表达和蛋白质合成中发挥作用。事实上,Cu限制触发了反硝化条件下nirK、norCBQD和nosRZDFYLX基因表达的大幅下调。重氮效率慢生根瘤菌基因组中有一个基因可编码CsoR家族的Cu反应抑制因子,该基因位于copA附近,copA基因编码一种假定的Cu+- atp酶转运体。为了研究CsoR在Cu胁迫下控制反硝化基因表达中的作用,本研究构建了一个CsoR缺失突变体。csoR突变不影响重氮双歧杆菌在反硝化条件下的生长能力。然而,通过qRT-PCR分析,我们发现在cu限制反硝化条件下,与野生型相比,csoR突变体中nirK和norCBQD的表达水平要低得多。相反,copA的表达在csoR突变体中显著增加。结果表明,CsoR是copA的抑制因子。在Cu限制下,CsoR也间接作用于nirK和norCBQD基因的表达。
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来源期刊
Fems Microbiology Letters
Fems Microbiology Letters 生物-微生物学
CiteScore
4.30
自引率
0.00%
发文量
112
审稿时长
1.9 months
期刊介绍: FEMS Microbiology Letters gives priority to concise papers that merit rapid publication by virtue of their originality, general interest and contribution to new developments in microbiology. All aspects of microbiology, including virology, are covered. 2019 Impact Factor: 1.987, Journal Citation Reports (Source Clarivate, 2020) Ranking: 98/135 (Microbiology) The journal is divided into eight Sections: Physiology and Biochemistry (including genetics, molecular biology and ‘omic’ studies) Food Microbiology (from food production and biotechnology to spoilage and food borne pathogens) Biotechnology and Synthetic Biology Pathogens and Pathogenicity (including medical, veterinary, plant and insect pathogens – particularly those relating to food security – with the exception of viruses) Environmental Microbiology (including ecophysiology, ecogenomics and meta-omic studies) Virology (viruses infecting any organism, including Bacteria and Archaea) Taxonomy and Systematics (for publication of novel taxa, taxonomic reclassifications and reviews of a taxonomic nature) Professional Development (including education, training, CPD, research assessment frameworks, research and publication metrics, best-practice, careers and history of microbiology) If you are unsure which Section is most appropriate for your manuscript, for example in the case of transdisciplinary studies, we recommend that you contact the Editor-In-Chief by email prior to submission. Our scope includes any type of microorganism - all members of the Bacteria and the Archaea and microbial members of the Eukarya (yeasts, filamentous fungi, microbial algae, protozoa, oomycetes, myxomycetes, etc.) as well as all viruses.
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