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气态碳氢化合物的微生物氧化:甲基营养型细菌对C2至C4正构烯烃的环氧化作用。

Microbial oxidation of gaseous hydrocarbons: epoxidation of C2 to C4 n-alkenes by methylotrophic bacteria.

作者信息

Hou C T, Patel R, Laskin A I, Barnabe N

出版信息

Appl Environ Microbiol. 1979 Jul;38(1):127-34. doi: 10.1128/aem.38.1.127-134.1979.

Abstract

Over 20 new cultures of methane-utilizing microbes, including obligate (types I and III) and facultative methylotrophic bacteria were isolated. In addition to their ability to oxidize methane to methanol, resting cell-suspensions of three distinct types of methane-grown bacteria (Methylosinus trichosporium OB3b [type II, obligate]; Methylococcus capsulatus CRL M1 NRRL B-11219 [type I, obligate]; and Methylobacterium organophilum CRL-26 NRRL B-11222 [facultative]) oxidize C2 to C4 n-alkenes to their corresponding 1,2-epoxides. The product 1,2-epoxides are not further metabolized and accumulate extracellularly. Methanol-grown cells do not have either the epoxidation or the hydroxylation activities. Among the substrate gaseous alkenes, propylene is oxidized at the highest rate. Methane inhibits the epoxidation of propylene. The stoichiometry of the consumption of propylene and oxygen and the production of propylene oxide is 1:1:1. The optimal conditions for in vivo epoxidation are described. Results from inhibition studies indicate that the same monooxygenase system catalyzes both the hydroxylation and the epoxidation reactions. Both the hydroxylation and epoxidation activities are located in the cell-free particulate fraction precipitated between 10,000 and 40,000 x g centrifugation.

摘要

分离出了20多种利用甲烷的微生物新菌株,包括专性(I型和III型)和兼性甲基营养细菌。除了能将甲烷氧化为甲醇外,三种不同类型的以甲烷为生长底物的细菌(嗜纤维甲基弯曲菌OB3b [II型,专性];荚膜甲基球菌CRL M1 NRRL B - 11219 [I型,专性];嗜有机甲基杆菌CRL - 26 NRRL B - 11222 [兼性])的静止细胞悬液能将C2至C4的正构烯烃氧化为相应的1,2 - 环氧化物。产物1,2 - 环氧化物不再进一步代谢,而是在细胞外积累。以甲醇为生长底物的细胞既没有环氧化活性也没有羟基化活性。在气态烯烃底物中,丙烯的氧化速率最高。甲烷会抑制丙烯的环氧化反应。丙烯、氧气的消耗与环氧丙烷生成的化学计量比为1:1:1。描述了体内环氧化的最佳条件。抑制研究结果表明,同一单加氧酶系统催化羟基化和环氧化反应。羟基化和环氧化活性均位于在10,000至40,000 x g离心沉淀的无细胞颗粒部分。

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