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首页> 外文期刊>Metabolic engineering >Simultaneous secretion of seven lignocellulolytic enzymes by an industrial second-generation yeast strain enables efficient ethanol production from multiple polymeric substrates
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Simultaneous secretion of seven lignocellulolytic enzymes by an industrial second-generation yeast strain enables efficient ethanol production from multiple polymeric substrates

机译:通过工业的第二代酵母菌菌株同时分泌七种木质纤维素酶,可从多种聚合物基材中产生有效的乙醇生产

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摘要

A major hurdle in the production of bioethanol with second-generation feedstocks is the high cost of the enzymes for saccharification of the lignocellulosic biomass into fermentable sugars. Simultaneous saccharification and fermentation with Saccharomyces cerevisiae yeast that secretes a range of lignocellulolytic enzymes might address this problem, ideally leading to consolidated bioprocessing. However, it has been unclear how many enzymes can be secreted simultaneously and what the consequences would be on the C6 and C5 sugar fermentation performance and robustness of the second-generation yeast strain. We have successfully expressed seven secreted lignocellulolytic enzymes, namely endoglucanase, beta-glucosidase, cellobiohydrolase I and II, xylanase, beta-xylosidase and acetylxylan esterase, in a single second-generation industrial S. cerevisiae strain, reaching 94.5 FPU/g CDW and enabling direct conversion of lignocellulosic substrates into ethanol without preceding enzyme treatment. Neither glucose nor the engineered xylose fermentation were significantly affected by the heterologous enzyme secretion. This strain can therefore serve as a promising industrial platform strain for development of yeast cell factories that can significantly reduce the enzyme cost for saccharification of lignocellulosic feedstocks.
机译:生物乙醇与第二代原料生产的主要障碍是木质纤维素生物质糖化成可发酵糖的酶的高成本。同时糖化和发酵与酿酒酵母酵母酵母,分泌一系列木质纤维素酶可能会解决这个问题,理想情况下,导致巩固的生物处理。然而,目前尚不清楚可以同时分泌多少酶以及后果对第二代酵母菌株的C6和C5糖发酵性能和鲁棒性。我们已经成功地表达了7个分泌的木质纤维素酶,即内切葡聚糖酶,β-葡糖苷酶,纤维素水解酶I和II,木聚糖酶,β-木糖苷酶和乙酰丁基酯酶,在单一的第二代工业S.Cereiaee菌株中,达到94.5 FPU / G CDW和实现直接将木质纤维素底物转化为乙醇,而不前后治疗。葡萄糖和工程化的木糖发酵均未受到异源酶分泌的显着影响。因此,这种菌株可以作为酵母细胞厂的开发的有前途的工业平台菌株,这可以显着降低木质纤维素原料的糖化酶成本。

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