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通过合理的蛋白质工程提高杏鲍菇广谱木质素过氧化物酶的稳定性。

Improvement of hydrogen peroxide stability of Pleurotus eryngii versatile ligninolytic peroxidase by rational protein engineering.

机构信息

Key Laboratory of Biofuels, Qingdao Institute of Bioenergy and Bioprocess Technology, Chinese Academy of Sciences, No. 189 Songling Road, Qingdao 266101, China; University of Chinese Academy of Sciences, Beijing 100049, China.

出版信息

Enzyme Microb Technol. 2014 Jan 10;54:51-8. doi: 10.1016/j.enzmictec.2013.10.003. Epub 2013 Oct 16.

Abstract

Peroxide tolerant versatile peroxidases are required for industrial applications. In this study, rational protein engineering was performed to improve the oxidative stability of Pleurotus eryngii versatile ligninolytic peroxidase. Residues which are easily oxidized such as methionine, and close to H2O2-binding pocket and heme were identified for site-directed mutagenesis. Enzyme activity and steady-state kinetics were affected to different extent by different mutations. They were investigated for H2O2 stability, among which mutants A79L, P141A, M247L, M265L, M247L/M265L, A77E/I81L, A77E/A79S/I81L, A77S/A79L/I81L, A77E/A79S/I81L/M265L, A77E/A79S/I81L/M247L/M265L, and A77E/A79S/I81L/S168A showed significantly increased oxidative tolerance, proving that oxidizable residues such as Met247 and Met265, residues close to heme like Pro141 and H2O2-binding pocket such as Ala77, Ala79, and Ile81 exerted important impact on H2O2 stability. Double and triple mutants demonstrated some additive or synergistic effects, which were only inactivated by higher concentration H2O2, whereas multiple mutants A77E/A79S/I81L/M265L, A77E/A79S/I81L/M247L/M265L, and A77E/A79S/I81L/S168A did not. Importantly, mutants I81L, S168A, Met265, M247L/M265L, A77E/A79S/I81L, and A77E/A79S/I81L/M247L/M265L exhibited both improved catalytic efficiencies and H2O2 resistance. The enhanced oxidative stability could result from delayed or suppressed compound III formation and/or heme bleaching caused by replacement of some residues. The identified mutants with higher oxidative tolerance and catalytic efficiencies would be helpful for further improving the oxidative stability of versatile peroxidase.

摘要

过氧化物耐受多功能过氧化物酶是工业应用所必需的。在这项研究中,通过合理的蛋白质工程对杏鲍菇多功能木质素过氧化物酶的氧化稳定性进行了改良。确定了易氧化的残基,如蛋氨酸,以及靠近 H2O2 结合口袋和血红素的残基,进行了定点突变。不同的突变以不同的程度影响了酶的活性和稳态动力学。研究了它们对 H2O2 稳定性的影响,其中突变体 A79L、P141A、M247L、M265L、M247L/M265L、A77E/I81L、A77E/A79S/I81L、A77S/A79L/I81L、A77E/A79S/I81L/M265L、A77E/A79S/I81L/M247L/M265L 和 A77E/A79S/I81L/S168A 表现出显著提高的氧化耐受性,证明了易氧化的残基,如 Met247 和 Met265,以及靠近血红素的残基,如 Pro141 和 H2O2 结合口袋的残基,如 Ala77、Ala79 和 Ile81,对 H2O2 稳定性有重要影响。双突变体和三突变体表现出一些加性或协同效应,只有在更高浓度的 H2O2 作用下才会失活,而多突变体 A77E/A79S/I81L/M265L、A77E/A79S/I81L/M247L/M265L 和 A77E/A79S/I81L/S168A 则不会。重要的是,突变体 I81L、S168A、Met265、M247L/M265L、A77E/A79S/I81L 和 A77E/A79S/I81L/M247L/M265L 不仅提高了催化效率,而且提高了 H2O2 的抗性。氧化稳定性的提高可能是由于一些残基的取代导致了复合物 III 形成和/或血红素漂白的延迟或抑制。具有更高氧化耐受性和催化效率的鉴定突变体将有助于进一步提高多功能过氧化物酶的氧化稳定性。

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