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The N-Terminal β-Sheet of the Hyperthermophilic Endoglucanase from Pyrococcus horikoshii Is Critical for Thermostability

机译:嗜热球菌嗜热性内切葡聚糖酶的N末端β-Sheet对热稳定性至关重要

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The β-1,4-endoglucanase (EC 3.2.1.4) from the hyperthermophilic archaeon Pyrococcus horikoshii (EGPh) has strong hydrolyzing activity toward crystalline cellulose. When EGPh is used in combination with β-glucosidase (EC 3.2.1.21), cellulose is completely hydrolyzed to glucose at high temperature, suggesting great potential for EGPh in bioethanol industrial applications. The crystal structure of EGPh shows a triosephosphate isomerase (TIM) (β/α)_(8)-barrel fold with an N-terminal antiparallel β-sheet at the opposite side of the active site and a very short C-terminal sequence outside of the barrel structure. We describe here the function of the peripheral sequences outside of the TIM barrel core structure. Sequential deletions were performed from both N and C termini. The activity, thermostability, and pH stability of the expressed mutants were assessed and compared to the wild-type EGPh enzyme. Our results demonstrate that the TIM barrel core is essential for enzyme activity and that the N-terminal β-sheet is critical for enzyme thermostability. Bioinformatics analyses identified potential key residues which may contribute to enzyme hyperthermostability.
机译:来自超嗜热古生火球菌(EGPh)的β-1,4-内切葡聚糖酶(EC 3.2.1.4)对结晶纤维素具有很强的水解活性。当EGPh与β-葡萄糖苷酶(EC 3.2.1.21)结合使用时,纤维素在高温下会完全水解为葡萄糖,这表明EGPh在生物乙醇工业应用中具有巨大潜力。 EGPh的晶体结构显示了磷酸三糖异构酶(TIM)(β/α)_(8)-桶状折叠,在活性位点的相对侧具有N端反平行β-折叠,在外部具有非常短的C端序列桶结构。我们在这里描述TIM桶芯结构外部外围序列的功能。从N和C末端均进行了顺序删除。评价了所表达的突变体的活性,热稳定性和pH稳定性,并将其与野生型EGPh酶进行了比较。我们的结果表明,TIM桶形核对于酶的活性至关重要,而N末端的β-折叠对酶的热稳定性至关重要。生物信息学分析确定了可能导致酶超热稳定性的潜在关键残基。

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