Regulator DegU can remarkably influence alkaline protease AprE biosynthesis in Bacillus licheniformis 2709

碱性蛋白酶 调节器 地衣芽孢杆菌 生物合成 蛋白酶 枯草芽孢杆菌 生物 化学 生物化学 基因 遗传学 细菌
作者
Cuixia Zhou,Ying Kong,Na Zhang,Weishuai Qin,Yanyan Li,Huitu Zhang,Guangcheng Yang,Lu Fuping
出处
期刊:International Journal of Biological Macromolecules [Elsevier BV]
卷期号:266 (Pt 1): 130818-130818 被引量:5
标识
DOI:10.1016/j.ijbiomac.2024.130818
摘要

Alkaline protease AprE, produced by Bacillus licheniformis 2709 is an important edible hydrolase, which has potential applications in nutrient acquisition and medicine. The expression of AprE is finely regulated by a complex transcriptional regulation system. However, there is little study on transcriptional regulation mechanism of AprE biosynthesis in Bacillus licheniformis, which limits system engineering and further enhancement of AprE. Here, the severely depressed expression of aprE in degU and degS deletion mutants illustrated that the regulator DegU and its phosphorylation played a crucial part in AprE biosynthesis. Further electrophoretic mobility shift assay (EMSA) in vitro indicated that phosphorylated DegU can directly bind to the regulatory region though the DNase I foot-printing experiments failed to observe protected region. The plasmid-mediated overexpression of degU32 (Hy) obviously improved the yield of AprE by 41.6 % compared with the control strain, which demonstrated the importance of phosphorylation state of DegU on the transcription of aprE in vivo. In this study, the putative binding sequence of aprE (5′-TAAAT……AAAAT…….AACAT…TAAAA-3′) located upstream −91 to −87 bp, −101 to −97 bp, −195 to −191 bp, −215 to −211 bp of the transcription start site (TSS) in B. licheniformis was computationally identified based on the DNA-binding sites of DegU in Bacillus subtilis. Overall, we systematically investigated the influence of the interplay between phosphorylated DegU and its cognate DNA sequence on expression of aprE, which not only contributes to the further AprE high-production in a genetically modified host in the future, but also significantly increases our understanding of the aprE transcription mechanism.
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