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首页> 外文期刊>Microbiological Research >Catalytic activity of Peptidase N is required for adaptation of Escherichia coli to nutritional downshift and high temperature stress.
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Catalytic activity of Peptidase N is required for adaptation of Escherichia coli to nutritional downshift and high temperature stress.

机译:肽酶N的催化活性是大肠杆菌适应营养下降和高温胁迫所必需的。

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Peptidase N (PepN), the sole M1 family member in Escherichia coli, displays broad substrate specificity and modulates stress responses: it lowers resistance to sodium salicylate (NaSal)-induced stress but is required during nutritional downshift and high temperature (NDHT) stress. The expression of PepN does not significantly change during different growth phases in LB or NaSal-induced stress; however, PepN amounts are lower during NDHT stress. To gain mechanistic insights on the roles of catalytic activity of PepN in modulating these two stress responses, alanine mutants of PepN replacing E264 (GAMEN motif) and E298 (HEXXH motif) were generated. There are no major structural changes between purified wild type (WT) and mutant proteins, which are catalytically inactive. Importantly, growth profiles of DeltapepN upon expression of WT or mutant proteins demonstrated the importance of catalytic activity during NDHT but not NaSal-induced stress. Further fluorescamine reactivity studies demonstrated that the catalytic activity of PepN is required to generate higher intracellular amounts of free N-terminal amino acids; consequently, the lower growth of DeltapepN during NDHT stress increases with high amounts of casamino acids. Together, this study sheds insights on the expression and functional roles of the catalytic activity of PepN during adaptation to NDHT stress. All rights reserved, Elsevier.
机译:肽酶N(PepN)是大肠杆菌中唯一的M1家族成员,显示出广泛的底物特异性并调节应激反应:它降低了对水杨酸钠(NaSal)诱导的应激的抵抗力,但在营养下降和高温(NDHT)应激过程中是必需的。 PepN的表达在LB或NaSal诱导的胁迫的不同生长阶段期间没有显着变化;但是,在NDHT胁迫期间,PepN的含量较低。为了获得有关PepN催化活性在调节这两个应激反应中作用的机理的见解,生成了PepN的丙氨酸突变体,取代了E264(GAMEN主题)和E298(HEXXH主题)。纯化的野生型(WT)和无催化活性的突变蛋白之间没有重大的结构变化。重要的是,表达WT或突变蛋白后DeltapepN的生长情况证明了NDHT期间催化活性的重要性,而不是NaSal诱导的应激。进一步的荧光胺反应性研究表明,PepN的催化活性是产生更高细胞内数量的游离N端氨基酸所必需的。因此,NDHT胁迫期间DeltapepN的较低生长随着大量的酪蛋白氨基酸而增加。总之,本研究对适应NDHT胁迫期间PepN催化活性的表达和功能作用提供了见识。保留所有权利,Elsevier。

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