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A trehalose biosynthetic enzyme doubles as an osmotic stress sensor to regulate bacterial morphogenesis

机译:海藻糖生物合成酶兼具渗透压力传感器的功能可调节细菌的形态发生

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摘要

The dissacharide trehalose is an important intracellular osmoprotectant and the OtsA/B pathway is the principal pathway for trehalose biosynthesis in a wide range of bacterial species. Scaffolding proteins and other cytoskeletal elements play an essential role in morphogenetic processes in bacteria. Here we describe how OtsA, in addition to its role in trehalose biosynthesis, functions as an osmotic stress sensor to regulate cell morphology in Arthrobacter strain A3. In response to osmotic stress, this and other Arthrobacter species undergo a transition from bacillary to myceloid growth. An otsA null mutant exhibits constitutive myceloid growth. Osmotic stress leads to a depletion of trehalose-6-phosphate, the product of the OtsA enzyme, and experimental depletion of this metabolite also leads to constitutive myceloid growth independent of OtsA function. In vitro analyses indicate that OtsA can self-assemble into protein networks, promoted by trehalose-6-phosphate, a property that is not shared by the equivalent enzyme from E. coli, despite the latter’s enzymatic activity when expressed in Arthrobacter. This, and the localization of the protein in non-stressed cells at the mid-cell and poles, indicates that OtsA from Arthrobacter likely functions as a cytoskeletal element regulating cell morphology. Recruiting a biosynthetic enzyme for this morphogenetic function represents an intriguing adaptation in bacteria that can survive in extreme environments.
机译:二糖海藻糖是一种重要的细胞内渗透保护剂,OtsA / B途径是海藻糖在各种细菌中进行生物合成的主要途径。支架蛋白和其他细胞骨架元素在细菌的形态发生过程中起着至关重要的作用。在这里,我们描述了OtsA,除了其在海藻糖生物合成中的作用外,还作为渗透压传感器来调节节杆菌菌株A3中的细胞形态。响应渗透压,该节杆菌和其他节杆菌物种经历了从细菌生长到髓样生长的转变。 otsA null突变体表现出组成型髓样生长。渗透胁迫导致OtsA酶产物海藻糖6-磷酸消耗,该代谢产物的实验消耗也导致独立于OtsA功能的组成型髓样生长。体外分析表明,OtsA可以自组装成蛋白质网络,并由6磷酸海藻糖促进,尽管当它在节杆菌中表达时具有酶促活性,但大肠杆菌的同等酶却不具有这种特性。这以及蛋白质在非应激细胞中细胞和极的定位,表明来自节杆菌的OtsA可能起调节细胞形态的细胞骨架元素的作用。为这种形态发生功能招募生物合成酶代表了一种对细菌的有趣适应,这种细菌可以在极端环境下生存。

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