...
首页> 外文期刊>Biotechnology and Bioengineering >Semi-rational engineering of cytochrome P450sca-2 in a hybrid system for enhanced catalytic activity: Insights into the important role of electron transfer
【24h】

Semi-rational engineering of cytochrome P450sca-2 in a hybrid system for enhanced catalytic activity: Insights into the important role of electron transfer

机译:细胞色素P450sca-2在混合体系中的半理性工程以增强催化活性:洞悉电子转移的重要作用

获取原文
获取原文并翻译 | 示例
   

获取外文期刊封面封底 >>

       

摘要

Hybrid P450 systems in which P450 monooxygenases are reconstituted with non-native or surrogate redox partners have become important for the engineering of this class of versatile enzymes. P450sca-2 from Streptomyces carbophilus stereoselectively hydroxylates mevastatin to yield pravastatin, a cholesterol-lowering drug. While S. carbophilus has been successfully applied in the industrial biotransformation process for pravastatin, the molecular study and engineering of P450sca-2 has been very limited. We have previously established a functional P450sca-2/Pdx/Pdr hybrid system. In this study, on the basis of a more active P450sca-2 mutant (R8-5C), five sites located in the substrate binding pocket, substrate access entrance, and presumed Pdx interaction interface were rationally chosen, and systematically subjected to site-directed saturation mutagenesis (SDSM), and three rounds of iterative saturation mutagenesis (ISM). A best mutant (Variant III) was obtained, which showed a whole cell biotransformation activity (377.5mg/L) and an overall apparent k_(cat) (6.37min~(-1)) that was 7.1- and 10.0-fold that of the starting template R8-5C, respectively. Kinetic characterization revealed that most of the improvements seen for the SDSM and ISM mutants came from enhanced overall electron transfer, with the two sites at the interface between P450sca-2 and Pdx (T119 and N363) being most critical. Our study underscores the important role of electron transfer in a hybrid P450 system, and also demonstrates the utility of ISM in optimizing the redox partner interface. This should facilitate engineering of this and other important hybrid P450 systems.
机译:用非天然或替代氧化还原伙伴重构P450单加氧酶的混合P450系统对于这类通用酶的工程设计已变得很重要。来自卡维链霉菌的P450sca-2立体选择性地羟化美伐他汀,以产生普伐他汀(一种降低胆固醇的药物)。尽管嗜碳链球菌已成功地用于普伐他汀的工业生物转化过程中,但P450sca-2的分子研究和工程设计仍然非常有限。我们之前已经建立了功能正常的P450sca-2 / Pdx / Pdr混合系统。在这项研究中,基于更具活性的P450sca-2突变体(R8-5C),合理选择了位于底物结合袋,底物进入入口和假定的Pdx相互作用界面的五个位点,并系统地对其进行了定点定位饱和诱变(SDSM)和三轮迭代饱和诱变(ISM)。获得了最佳的突变体(Variant III),其表现出全细胞生物转化活性(377.5mg / L),总表观k_(cat)(6.37min〜(-1))是其的7.1和10.0倍。分别是起始模板R8-5C。动力学表征表明,对SDSM和ISM突变体观察到的大多数改进来自增强的整体电子传递,其中P450sca-2和Pdx之间的两个位置(T119和N363)最为关键。我们的研究强调了电子转移在混合P450系统中的重要作用,还证明了ISM在优化氧化还原伙伴界面中的实用性。这应该有助于对该系统和其他重要的混合P450系统进行工程设计。

著录项

相似文献

  • 外文文献
  • 中文文献
  • 专利
获取原文

客服邮箱:kefu@zhangqiaokeyan.com

京公网安备:11010802029741号 ICP备案号:京ICP备15016152号-6 六维联合信息科技 (北京) 有限公司©版权所有
  • 客服微信

  • 服务号