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Biocatalytic Oxidations of Substrates through Soluble Methane Monooxygenase from Methylosinus sporium 5

机译:来自甲基骨肉孢子5的可溶性甲烷单氧基酶的生物催化氧化5

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摘要

Methane, an important greenhouse gas, has a 20-fold higher heat capacity than carbon dioxide. Earlier, through advanced spectroscopy and structural studies, the mechanisms underlying the extremely stable C⁻H activation of soluble methane monooxygenase (sMMO) have been elucidated in Methylosinus trichosporium OB3b and Methylococcus capsulatus Bath. Here, sMMO components—including hydroxylase (MMOH), regulatory (MMOB), and reductase (MMOR)—were expressed and purified from a type II methanotroph, Methylosinus sporium strain 5 (M. sporium 5), to characterize its hydroxylation mechanism. Two molar equivalents of MMOB are necessary to achieve catalytic activities and oxidized a broad range of substrates including alkanes, alkenes, halogens, and aromatics. Optimal activities were observed at pH 7.5 for most substrates possibly because of the electron transfer environment in MMOR. Substitution of MMOB or MMOR from another type II methanotroph, Methylocystis species M, retained specific enzyme activities, demonstrating the successful cross-reactivity of M. sporium 5. These results will provide fundamental information for further enzymatic studies to elucidate sMMO mechanisms.
机译:甲烷,一种重要的温室气体,比二氧化碳的20倍更高的热容量。此前,通过先进的光谱和结构研究,可溶性甲烷单加氧酶(单加氧酶)的极其稳定C⁻H激活潜在机制已经阐明在Methylosinus弯菌OB3b和甲基球菌荚膜浴。在此,单加氧酶组件 - 包括羟化酶(MMOH),监管(MMOB)和还原酶(MMOR)-were表达并从II型甲烷营养纯化,Methylosinus sporium应变5(M. sporium 5),以表征其羟基化的机制。 MMOB两个摩尔当量是必要的,以实现催化活性和氧化的宽范围的底物,包括烷烃,烯烃,卤素,和芳烃。在pH 7.5下观察到对大多数基材可能是因为在MMOR电子转移环境优化活动。从另一个II型甲烷营养,Methylocystis物种男,MMOB或MMOR取代保留特定的酶活性,表明M. sporium 5的成功的交叉反应性,这些结果将提供进一步的酶促研究基本信息,以阐明单加氧酶的机制。

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