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The First Prokaryotic Trehalose Synthase Complex Identified in the Hyperthermophilic Crenarchaeon Thermoproteus tenax

机译:在嗜热的鱼蜡状嗜热变形杆菌tenax中鉴定出第一个原核生物海藻糖合酶复合体

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摘要

The role of the disaccharide trehalose, its biosynthesis pathways and their regulation in Archaea are still ambiguous. In Thermoproteus tenax a fused trehalose-6-phosphate synthase/phosphatase (TPSP), consisting of an N-terminal trehalose-6-phosphate synthase (TPS) and a C-terminal trehalose-6-phosphate phosphatase (TPP) domain, was identified. The tpsp gene is organized in an operon with a putative glycosyltransferase (GT) and a putative mechanosensitive channel (MSC). The T. tenax TPSP exhibits high phosphatase activity, but requires activation by the co-expressed GT for bifunctional synthase-phosphatase activity. The GT mediated activation of TPS activity relies on the fusion of both, TPS and TPP domain, in the TPSP enzyme. Activation is mediated by complex-formation in vivo as indicated by yeast two-hybrid and crude extract analysis. In combination with first evidence for MSC activity the results suggest a sophisticated stress response involving TPSP, GT and MSC in T. tenax and probably in other Thermoproteales species. The monophyletic prokaryotic TPSP proteins likely originated via a single fusion event in the Bacteroidetes with subsequent horizontal gene transfers to other Bacteria and Archaea. Furthermore, evidence for the origin of eukaryotic TPSP fusions via HGT from prokaryotes and therefore a monophyletic origin of eukaryotic and prokaryotic fused TPSPs is presented. This is the first report of a prokaryotic, archaeal trehalose synthase complex exhibiting a much more simple composition than the eukaryotic complex described in yeast. Thus, complex formation and a complex-associated regulatory potential might represent a more general feature of trehalose synthesizing proteins.
机译:二糖海藻糖的作用,其生物合成途径及其在古细菌中的调控仍不清楚。在Thermoproteus tenax中,确定了一个融合的海藻糖6-磷酸合酶/磷酸酶(TPSP),它由一个N末端海藻糖-6-磷酸合酶(TPS)和一个C末端海藻糖-6-磷酸磷酸酶(TPP)域组成。 。 tpsp基因在操纵子中由推定的糖基转移酶(GT)和推定的机械敏感通道(MSC)组成。 T. tenax TPSP表现出高磷酸酶活性,但需要被共表达的GT激活才能获得双功能合酶磷酸酶活性。 GT介导的TPS活性激活依赖于TPSP酶中TPS和TPP结构域的融合。如酵母双杂交和粗提物分析所示,活化是通过体内复合物形成来介导的。结合有关MSC活性的第一个证据,结果表明,在T. tenax和其他嗜热蛋白酶物种中,涉及TPSP,GT和MSC的复杂应激反应。单原核TPSP蛋白可能是通过拟杆菌中的一次融合事件起源的,随后水平基因转移到其他细菌和古细菌中。此外,提供了经由原核生物通过HGT进行真核TPSP融合的起源的证据,因此提出了真核和原核融合TPSP的单系起源。这是原核古细菌海藻糖合酶复合物的首次报道,该复合物的组成比酵母中描述的真核复合物简单得多。因此,复合物的形成和与复合物相关的调节潜力可能代表了海藻糖合成蛋白的一个更普遍的特征。

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