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首页> 外文期刊>The FEBS journal >Structural insights into N-terminal to C-terminal interactions and implications for thermostability of a (beta/alpha)(8)-triosephosphate isomerase barrel enzyme
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Structural insights into N-terminal to C-terminal interactions and implications for thermostability of a (beta/alpha)(8)-triosephosphate isomerase barrel enzyme

机译:N端到C端相互作用的结构见解和对(beta / alpha)(8)-三磷酸磷酸异构酶桶形酶的热稳定性的影响

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摘要

Although several factors have been suggested to contribute to thermostability, the stabilization strategies used by proteins are still enigmatic. Studies on a recombinant xylanase from Bacilllus sp. NG-27 (RBSX), which has the ubiquitous (beta/alpha)(8)-triosephosphate isomerase barrel fold, showed that just a single mutation, V1L, although not located in any secondary structural element, markedly enhanced the stability from 70 degrees C to 75 degrees C without loss of catalytic activity. Conversely, the V1A mutation at the same position decreased the stability of the enzyme from 70 degrees C to 68 degrees C. To gain structural insights into how a single extreme N-terminus mutation can markedly influence the thermostability of the enzyme, we determined the crystal structure of RBSX and the two mutants. On the basis of computational analysis of their crystal structures, including residue interaction networks, we established a link between N-terminal to C-terminal contacts and RBSX thermostability. Our study reveals that augmenting N-terminal to C-terminal noncovalent interactions is associated with enhancement of the stability of the enzyme. In addition, we discuss several lines of evidence supporting a connection between N-terminal to C-terminal noncovalent interactions and protein stability in different proteins. We propose that the strategy of mutations at the termini could be exploited with a view to modulate stability without compromising enzymatic activity, or in general, protein function in diverse folds where N and C termini are in close proximity.
机译:尽管有人提出了一些有助于热稳定性的因素,但蛋白质使用的稳定化策略仍然是个谜。枯草杆菌重组木聚糖酶的研究。 NG-27(RBSX)具有无处不在的(beta / alpha)(8)-磷酸三糖异构酶桶状折叠,表明只有一个突变,V1L,尽管不位于任何二级结构元件中,却从70度显着提高了稳定性。 C至75℃而没有失去催化活性。相反,在同一位置的V1A突变将酶的稳定性从70摄氏度降低到68摄氏度。要获得结构上的见解,以了解单个极端N末端突变如何显着影响酶的热稳定性,我们确定了晶体RBSX和两个突变体的结构。在对它们的晶体结构(包括残基相互作用网络)进行计算分析的基础上,我们建立了N端至C端触点与RBSX热稳定性之间的联系。我们的研究表明,增加N端至C端的非共价相互作用与增强酶的稳定性有关。此外,我们讨论了支持N端至C端非共价相互作用与不同蛋白质中蛋白质稳定性之间联系的几条证据。我们建议可以利用末端突变的策略来调节稳定性而不损害酶活性,或者通常在N和C末端非常接近的不同折叠中发挥蛋白质功能。

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