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首页> 外文期刊>Journal of molecular microbiology and biotechnology: JMMB >Enhanced Delignification of Lignocellulosic Biomass by Recombinant Fungus Phanerochaete chrysosporium Overexpressing Laccases and Peroxidases
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Enhanced Delignification of Lignocellulosic Biomass by Recombinant Fungus Phanerochaete chrysosporium Overexpressing Laccases and Peroxidases

机译:通过重组真菌植物植物植物过度抑制漆酶和过氧化物酶增强木质纤维素生物量的脱氨酸

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Ligninolytic enzyme production and lignin degradation are typically the rate-limiting steps in the biofuel industry. To improve the efficiency of simultaneous bio-delignification and enzyme production, Phanerochaete chrysosporium was transformed by shock wave-induced acoustic cavitation to co-overexpress 3 peroxidases and 1 laccase and test it on the degradation of sugarcane bagasse and wheat bran. Lignin depolymerization was enhanced by up to 25% in the presence of recombinant fungi in comparison with the wild-type strain. Sugar release on lignocellulose was 2- to 6-fold higher by recombinant fungi as compared with the control. Wheat bran ostensibly stimulated the production of ligninolytic enzymes. The highest peroxidase activity from the recombinant strains was 2.6-fold higher, whereas the increase in laccase activity was 4-fold higher in comparison to the control. The improvement of lignin degradation was directly proportional to the highest peroxidase and laccase activity. Because various phenolic compounds released during lignocellulose degradation have proven to be toxic to cells and to inhibit enzyme activity, a significant reduction (over 40%) of the total phenolic content in the samples treated with recombinant strains was observed. To our knowledge, this is the first report that engineering P. chrysosporium enhances biodegradation of lignocellulosic biomass. (C) 2018 S. Karger AG, Basel
机译:木质素溶解酶生产和木质素降解通常是生物燃料工业的速率限制步骤。为了提高同时生物脱泻和酶产生的效率,通过冲击波诱导的声学空化转化磷卓克罗米氏菌,以共同过度呈现3次过氧化物酶和1个漆酶,并在甘蔗甘蔗和小麦麸的降解上测试。与野生型菌株相比,在重组真菌存在下,木质素脱聚增强至多25%。与对照相比,通过重组真菌糖释放糖纤维素的糖释放量为2至6倍。小麦麸皮表面刺激了木质素溶解的酶的生产。来自重组菌株的最高过氧化物酶活性比对照相比,来自重组菌株的最高过氧化物酶活性为2.6倍,而漆酶活性的增加均为4倍。木质素降解的改善与最高过氧化物酶和漆酶活性成正比。因为在木质纤维素降解期间释放的各种酚类化合物已被证明对细胞有毒并抑制酶活性,因此观察到用重组菌株处理的样品中的总酚含量的显着还原(超过40%)。为了我们的知识,这是工程P. Chrysporium提高木质纤维素生物量的生物降解的第一个报告。 (c)2018年S. Karger AG,巴塞尔

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