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Exploiting strain diversity and rational engineering strategies to enhance recombinant cellulase secretion by Saccharomyces cerevisiae

机译:利用应变多样性和合理的工程策略,以增强酿酒酵母酿酒酵母的重组纤维素酶分泌

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摘要

Consolidated bioprocessing (CBP) of lignocellulosic material into bioethanol has progressed in the past decades; however, several challenges still exist which impede the industrial application of this technology. Identifying the challenges that exist in all unit operations is crucial and needs to be optimised, but only the barriers related to the secretion of recombinant cellulolytic enzymes in Saccharomyces cerevisiae will be addressed in this review. Fundamental principles surrounding CBP as a biomass conversion platform have been established through the successful expression of core cellulolytic enzymes, namely beta-glucosidases, endoglucanases, and exoglucanases (cellobiohydrolases) in S. cerevisiae. This review will briefly address the challenges involved in the construction of an efficient cellulolytic yeast, with particular focus on the secretion efficiency of cellulases from this host. Additionally, strategies for studying enhanced cellulolytic enzyme secretion, which include both rational and reverse engineering approaches, will be discussed. One such technique includes bio-engineering within genetically diverse strains, combining the strengths of both natural strain diversity and rational strain development. Furthermore, with the advancement in next-generation sequencing, studies that utilise this method of exploiting intra-strain diversity for industrially relevant traits will be reviewed. Finally, future prospects are discussed for the creation of ideal CBP strains with high enzyme production levels.
机译:在过去的几十年里,将木质纤维素材料的综合生物处理(CBP)的木质纤维素物质的生物加工(CBP)已经进展;然而,仍然存在几种挑战,妨碍了这种技术的工业应用。识别所有单位操作中存在的挑战是至关重要的,需要优化,但在本次审查中,只有与酿酒酵母中的重组纤维素分泌酶分泌有关的障碍。通过成功表达核心纤维素溶解酶,即葡萄糖苷酶,内切葡聚糖酶(CellobioHooldolase)在S.Cerevisiae中的成功表达,建立了CBP作为生物质转化平台的基本原理。本综述将简要介绍涉及建造高效纤维化酵母的挑战,特别关注来自该宿主的纤维素酶的分泌效率。另外,将讨论研究增强的纤维素分泌酶分泌的策略,包括合理和逆向工程方法。一种这样的技术包括基因不同菌株内的生物工程,相结合了天然应变多样性和理性应变发育的强度。此外,随着下一代测序的进步,将综述利用这种利用这种开采的工业相关性状的方法的研究。最后,讨论了未来的前景,用于创建具有高酶生产水平的理想CBP菌株。

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