Tuning the peroxidase activity of artificial P450 peroxygenase by engineering redox-sensitive residues†

IF 3.4 3区 化学 Q2 Chemistry
Fengjie Jiang, Zihan Wang and Zhiqi Cong
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引用次数: 0

Abstract

Cytochrome P450 monooxygenases (P450s) are well recognized as versatile bio-oxidation catalysts. However, the catalytic functions of P450s are highly dependent on NAD(P)H and redox partner proteins. Our group has recently reported the use of a dual-functional small molecule (DFSM) for generating peroxygenase activity of P450BM3, a long-chain fatty acid hydroxylase from Bacillus megaterium. The DFSM-facilitated P450BM3 peroxygenase system exhibited excellent peroxygenation activity and regio-/enantioselectivity for various organic substrates, such as styrenes, thioanisole, small alkanes, and alkylbenzenes. Very recently, we demonstrated that the DFSM-facilitated P450BM3 peroxygenase could be switched to a peroxidase by engineering the redox-sensitive tyrosine residues in P450BM3. Given the great potential of P450 peroxidase for C–H oxyfunctionalization, we herein report scrutiny of the effect of mutating redox-sensitive residues on peroxidase activity by deeply screening all redox-sensitive residues of P450BM3, namely methionines, tryptophans, cysteines, and phenylalanines. As a result, six beneficial mutations at positions M212, F81, M112, F173, M177, and F77 were screened out from 78 constructed mutants, and significantly enhanced the peroxidase activity of P450BM3 in the presence of Im-C6-Phe, a typical DFSM molecule. Further combination of the beneficial mutations resulted in a more than 100-fold improvement in peroxidase activity compared with that of the combined parent enzyme and DFSM, comparable to or better than most natural peroxidases. In addition, mutations of redox-sensitive residues even dramatically increased, by more than 300-fold, the peroxidase activity of the starting F87A enzyme in the absence of the DFSM, despite the far lower apparent catalytic turnover number compared with the DFSM–P450 system. This study provides new insights and a potential strategy for regulating the catalytic promiscuity of P450 enzymes for multiple functional oxidations.

Abstract Image

通过设计氧化还原敏感残基来调节人工 P450 过氧化物酶的过氧化物酶活性
细胞色素 P450 单氧化酶(P450s)是公认的多功能生物氧化催化剂。然而,P450s 的催化功能高度依赖于 NAD(P)H 和氧化还原伙伴蛋白。我们的研究小组最近报道了使用双功能小分子(DFSM)来产生 P450BM3 的过氧酶活性,P450BM3 是一种来自大型芽孢杆菌的长链脂肪酸羟化酶。DFSM 促进的 P450BM3 过氧化氢酶系统对各种有机底物(如苯乙烯、硫代苯甲醚、小烷烃和烷基苯)表现出优异的过氧化活性和区域/反式选择性。最近,我们证实,通过对 P450BM3 中对氧化还原反应敏感的酪氨酸残基进行工程改造,可以将 DFSM 促进的 P450BM3 过氧化物酶转换为过氧化物酶。鉴于 P450 过氧化物酶在 C-H 氧官能化方面的巨大潜力,我们在此报告通过深入筛选 P450BM3 的所有氧化还原敏感残基,如蛋氨酸、色氨酸、半胱氨酸和苯丙氨酸,仔细研究了氧化还原敏感残基突变对过氧化物酶活性的影响。结果,从 78 个构建的突变体中筛选出了位于 M212、F81、M112、F173、M177 和 F77 位置的 6 个有益突变,这些突变显著增强了 P450BM3 在典型的 DFSM 分子 Im-C6-Phe 存在下的过氧化物酶活性。与母酶和 DFSM 的组合相比,进一步组合有益突变可使过氧化物酶的活性提高 100 倍以上,与大多数天然过氧化物酶相当或更好。此外,尽管表观催化周转次数远低于 DFSM-P450 系统,但在没有 DFSM 的情况下,氧化还原敏感残基的突变甚至使起始 F87A 酶的过氧化物酶活性显著提高了 300 多倍。这项研究为调节 P450 酶在多种功能氧化中的催化杂合性提供了新的见解和潜在的策略。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
Faraday Discussions
Faraday Discussions CHEMISTRY, PHYSICAL-
CiteScore
4.90
自引率
0.00%
发文量
259
审稿时长
2.8 months
期刊介绍: Discussion summary and research papers from discussion meetings that focus on rapidly developing areas of physical chemistry and its interfaces
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