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单个活性位点诱变赋予来自sp. PSKA01的戊塔烯合酶更高的活性和/或改变的产物分布。

A Single Active-Site Mutagenesis Confers Enhanced Activity and/or Changed Product Distribution to a Pentalenene Synthase from sp. PSKA01.

作者信息

Liu Hongshuang, Fang Senbiao, Zhao Lin, Men Xiao, Zhang Haibo

机构信息

State Key Laboratory of Bio-Based Material and Green Papermaking, School of Bioengineering, Qilu University of Technology, Shandong Academy of Sciences, Jinan 250316, China.

CAS Key Laboratory of Biobased Materials, Qingdao Institute of Bioenergy and Bioprocess Technology, Chinese Academy of Sciences, Qingdao 266101, China.

出版信息

Bioengineering (Basel). 2023 Mar 22;10(3):392. doi: 10.3390/bioengineering10030392.

Abstract

Pentalenene is a ternary cyclic sesquiterpene formed via the ionization and cyclization of farnesyl pyrophosphate (FPP), which is catalyzed by pentalenene synthase (PentS). To better understand the cyclization reactions, it is necessary to identify more key sites and elucidate their roles in terms of catalytic activity and product specificity control. Previous studies primarily relied on the crystal structure of PentS to analyze and verify critical active sites in the active cavity, while this study started with the function of PentS and screened a novel key site through random mutagenesis. In this study, we constructed a pentalenene synthetic pathway in BL21(DE3) and generated PentS variants with random mutations to construct a mutant library. A mutant, PentS-13, with a varied product diversity, was obtained through shake-flask fermentation and product identification. After sequencing and the functional verification of the mutation sites, it was found that T182A, located in the G2 helix, was responsible for the phenotype of PentS-13. The site-saturation mutagenesis of T182 demonstrated that mutations at this site not only affected the solubility and activity of the enzyme but also affected the specificity of the product. The other products were generated through different routes and via different carbocation intermediates, indicating that the 182 active site is crucial for PentS to stabilize and guide the regioselectivity of carbocations. Molecular docking and molecular dynamics simulations suggested that these mutations may induce changes in the shape and volume of the active cavity and disturb hydrophobic/polar interactions that were sufficient to reposition reactive intermediates for alternative reaction pathways. This article provides rational explanations for these findings, which may generally allow for the protein engineering of other terpene synthases to improve their catalytic efficiency or modify their specificities.

摘要

戊塔烯是一种三元环倍半萜,由法尼基焦磷酸(FPP)经电离和环化形成,该过程由戊塔烯合酶(PentS)催化。为了更好地理解环化反应,有必要识别更多关键位点,并从催化活性和产物特异性控制方面阐明它们的作用。以往的研究主要依靠PentS的晶体结构来分析和验证活性腔内的关键活性位点,而本研究从PentS的功能出发,通过随机诱变筛选出一个新的关键位点。在本研究中,我们在BL21(DE3)中构建了戊塔烯合成途径,并产生了具有随机突变的PentS变体,以构建突变体文库。通过摇瓶发酵和产物鉴定,获得了一个产物多样性不同的突变体PentS-13。对突变位点进行测序和功能验证后发现,位于G2螺旋的T182A导致了PentS-13的表型。T182的位点饱和诱变表明,该位点的突变不仅影响酶的溶解度和活性,还影响产物的特异性。其他产物通过不同途径和不同的碳正离子中间体生成,表明182活性位点对PentS稳定和引导碳正离子的区域选择性至关重要。分子对接和分子动力学模拟表明,这些突变可能会引起活性腔形状和体积的变化,并干扰疏水/极性相互作用,足以重新定位反应中间体以进行替代反应途径。本文对这些发现提供了合理的解释,这通常可能有助于其他萜类合酶的蛋白质工程改造,以提高其催化效率或改变其特异性。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/c702/10045451/7156709017aa/bioengineering-10-00392-g001.jpg

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