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MtrA 预测磷酸化位点的突变使其丧失作为链霉菌属中全局调控因子的作用。

Mutation of MtrA at the Predicted Phosphorylation Site Abrogates Its Role as a Global Regulator in Streptomyces venezuelae.

机构信息

The State Key Laboratory of Microbial Technology, Shandong Universitygrid.27255.37, Qingdao, China.

Qingdao Vland Biotech Group, Inc., Qingdao, China.

出版信息

Microbiol Spectr. 2022 Apr 27;10(2):e0213121. doi: 10.1128/spectrum.02131-21. Epub 2022 Mar 16.

Abstract

The global regulator MtrA controls development and primary and secondary metabolism in Streptomyces species. However, residues critical for its function have not yet been characterized. In this study, we identified residue D53 as the potential phosphorylation site of MtrA from Streptomyces venezuelae, a model Streptomyces strain. MtrA variants with amino acid substitutions at the D53 site were generated, and the effects of these substitutions were evaluated and . We showed that, although substitutions at D53 did not alter MtrA's secondary structure, the MtrA D53 protein variants lost the ability to bind known MtrA recognition sequences (MtrA sites) in electrophoretic mobility shift assays. Complementation of the Δ strain with MtrA D53 protein variants did not affect overall strain growth. However, in comparison to the wild-type strain, chloramphenicol and jadomycin production were aberrant in the D53 variant strains, with levels similar to the levels in the Δ strain. Transcriptional analysis showed that the expression patterns of genes were also similar in the Δ strain and the D53 variant strains. Although the D53 protein variants and wild-type MtrA were produced at similar levels in S. venezuelae, chromatin immunoprecipitation-quantitative PCR results indicated that replacing the D53 residue rendered the altered proteins unable to bind MtrA sites , including MtrA sites that regulate genes involved in nitrogen metabolism and in chloramphenicol and jadomycin biosynthesis. In conclusion, our study demonstrates that the predicted phosphorylation site D53 is critical for the role of MtrA in regulation and suggests that MtrA functions in a phosphorylated form in the genus Streptomyces. Although phosphorylation has been shown to be essential for the activation of many response regulator proteins of two-component systems, the role of the phosphorylation site in the function of the global regulator MtrA in the genus Streptomyces has not been reported. In this study, we generated Streptomyces mutants that had amino acid substitutions at the predicted phosphorylation site of MtrA, and the effects of the substitutions were investigated by comparing the phenotypes of the resulting strains and their gene expression patterns with those of the wild-type strain and an MtrA deletion mutant. The ability of the altered proteins to bind known promoter targets was also evaluated. Our analyses showed that the predicted phosphorylation site D53 is critical for MtrA binding and for the normal functioning of MtrA . These studies further demonstrate the importance of MtrA as a global regulator in the genus Streptomyces.

摘要

全球调节剂 MtrA 控制链霉菌属物种的发育和初级及次级代谢。然而,其功能的关键残基尚未被表征。在这项研究中,我们从链霉菌属模式菌株委内瑞拉链霉菌中鉴定出残基 D53 是 MtrA 的潜在磷酸化位点。生成了在 D53 位点具有氨基酸取代的 MtrA 变体,并评估了这些取代的效果。我们表明,尽管 D53 处的取代不改变 MtrA 的二级结构,但 MtrA D53 蛋白变体失去了在电泳迁移率变动分析中结合已知 MtrA 识别序列(MtrA 位点)的能力。用 MtrA D53 蛋白变体补充 Δ 株并不影响总菌株生长。然而,与野生型菌株相比,氯霉素和贾霉素的产量在 D53 变体菌株中异常,水平与 Δ 株相似。转录分析表明,Δ 株和 D53 变体菌株的基因表达模式也相似。尽管 D53 蛋白变体和野生型 MtrA 在委内瑞拉链霉菌中的产量相似,但染色质免疫沉淀定量 PCR 结果表明,取代 D53 残基使改变的蛋白无法结合 MtrA 位点,包括调节氮代谢以及氯霉素和贾霉素生物合成基因的 MtrA 位点。总之,我们的研究表明,预测的磷酸化位点 D53 对于 MtrA 在调控中的作用至关重要,并表明 MtrA 在链霉菌属中以磷酸化形式发挥作用。尽管磷酸化已被证明对于许多双组分系统的响应调节蛋白的激活是必不可少的,但在链霉菌属中,全球调节剂 MtrA 的磷酸化位点在其功能中的作用尚未被报道。在这项研究中,我们生成了链霉菌突变体,它们在 MtrA 的预测磷酸化位点具有氨基酸取代,并通过比较产生的菌株的表型及其基因表达模式与野生型菌株和 MtrA 缺失突变体来研究取代的影响。还评估了改变的蛋白结合已知启动子靶标的能力。我们的分析表明,预测的磷酸化位点 D53 对于 MtrA 结合和 MtrA 的正常功能至关重要。这些研究进一步证明了 MtrA 作为链霉菌属全局调节剂的重要性。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/9872/9045223/fe8cb1023c08/spectrum.02131-21-f001.jpg

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