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Search, engineering, and applications of new oxidative biocatalysts

机译:新氧化生物催化剂的搜索,工程和应用

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Most industrial enzymes are hydrolases, such as glycosidases and esterases. However, oxidoreductases have an unexploited potential for substituting harsh (and scarcely selective) chemical processes. A group of basidiomycetes are the only organisms degrading the aromatic lignin polymer, enabling the subsequent use of plant polysaccharides. Therefore, these fungi and their ligninolytic peroxidases are the biocatalysts of choice for industrial delignification and oxidative biotransformations of aromatic and other organic compounds. The latter also include oxygenation reactions, which are catalyzed with high regio/stereo selectivity by fungal peroxygenases. In search for novel and more robust peroxidases/peroxygenases, basidiomycetes from unexplored habitats were screened, and hundreds of genes identified in basidiomycete genomes (in collaboration with the DOE JGI). The most interesting genes were heterologously expressed, and the corresponding enzymes structurally-functionally characterized. The information obtained enabled us to improve the enzyme operational and catalytic properties by directed mutagenesis. However, the structural-functional relationships explaining some desirable properties are not established yet and, therefore, their introduction was addressed by 'non-rational' directed evolution. Then, over 100 oxidative biotransformations were analyzed. Among them, it is noteworthy to mention the regio/stereo selective hydroxylation of long/short-chain alkanes (a chemically challenging reaction), epoxidation of alkenes, and production of hydroxy-fatty acids. Concerning aromatic oxygenations, the regioselective hydroxylation of flavonoids, and stereoselective hydroxylation/epoxidation of alkyl/alkenyl-benzenes were among the most remarkable reactions, together with enzymatic hydroxylation of benzene (as an alternative for harsh chemical process). Finally, peroxidases and peroxygenases also showed a potential as delignification biocatalysts and in the decolorization of contaminant dyes from textile industries. (C) 2014 The Authors. Biofuels, Bioproducts and Biorefining published by Society of Chemical Industry and John Wiley & Sons, Ltd.
机译:大多数工业酶是水解酶,例如糖苷酶和酯酶。然而,氧化还原酶具有取代苛刻(且几乎没有选择性)化学过程的无法爆发的潜力。一组碱基因菌是唯一降解芳香木质素聚合物的生物体,可以随后使用植物多糖。因此,这些真菌及其木质素溶解的过氧化物酶是用于芳族和其他有机化合物的工业脱果和氧化生物转化的生物催化剂。后者还包括氧化反应,其通过真菌过氧基团具有高法官/立体选择性。为了寻找新颖和更强大的过氧化物酶/过氧基团,筛选来自未探测的栖息地的碱性细胞,以及在盆西基因组中鉴定的数百个基因(与DOE JGI合作)。最有趣的基因是异源表达的,并且在结构上表现出相应的酶。获得的信息使我们能够通过定向诱变改善酶操作和催化性质。然而,尚未建立解释一些理想的属性的结构功能关系,因此,它们的引入是通过“非理性”定向演进来解决的。然后,分析了超过100种氧化生物转化。其中,值得注意的是提出长/短链烷烃(化学挑战反应),烯烃环氧化和羟基 - 脂肪酸的产生。关于芳族氧合,黄酮类化合物的区域选择性羟基化和烷基/链烯基 - 苯的立体选择性羟基化/环氧化是最显着的反应,与苯的酶羟基化(作为苛刻的化学过程的替代方案)。最后,过氧化物酶和过氧基团也表现出潜在的脱铬催化剂和来自纺织工业的污染物染料的脱色。 (c)2014年作者。由化学工业社会发表的生物燃料,生物源和生物化,约翰瓦里和儿子有限公司发表

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