推进纤维素利用和工程技术巩固生物加工酵母:现状与展望

IF 3.9 3区 生物学 Q2 BIOTECHNOLOGY & APPLIED MICROBIOLOGY
Jordan Fortuin, Lazzlo J. Hoffmeester, Letitia S. Minnaar, Riaan den Haan
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引用次数: 0

摘要

尽管在工业规模上缺乏整合生物处理(CBP)的实施,这种生物转化策略仍然具有巨大的潜力,作为将木质纤维素生物质(LCB)转化为生物燃料和绿色化学品的经济可行的解决方案,前提是适当的生物可以被分离或改造。利用酿酒酵母菌达到这一目的,除其他事项外,还需要在酵母菌内开发纤维素酶表达系统。在过去的三十年里,大量的研究报道了纤维素酶编码基因的表达,无论是单独的还是组合的,在酿酒酵母中。为了生产一组核心纤维素酶,已经出现了各种各样的策略,取得了不同程度的成功。虽然已报道纤维素底物一步转化为乙醇,但所得滴度和生产率远低于工业要求。在这篇综述中,我们研究了纤维素酶在酵母中表达的策略,重点介绍了开发基本纤维素水解cbp激活酵母的成功。我们还总结了合理菌株设计和工程的最新进展,探索如何通过现代合成生物学工具进一步增强这些方法,以优化cbp激活的酵母菌株,以实现潜在的工业应用。•酿酒酵母缺乏纤维素分解能力,这保证了它在工业上的工程应用。•纤维素酶核心组表达的进展已被报道。•需要合理的工程设计来提高纤维素酶的分泌和菌株的稳健性。•从组学策略中获得的见解将指导CBP菌株的未来发展。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Advancing cellulose utilization and engineering consolidated bioprocessing yeasts: current state and perspectives

Despite the lack of implementation of consolidated bioprocessing (CBP) at an industrial scale, this bioconversion strategy still holds significant potential as an economically viable solution for converting lignocellulosic biomass (LCB) into biofuels and green chemicals, provided an appropriate organism can be isolated or engineered. The use of Saccharomyces cerevisiae for this purpose requires, among other things, the development of a cellulase expression system within the yeast. Over the past three decades, numerous studies have reported the expression of cellulase-encoding genes, both individually and in combination, in S. cerevisiae. Various strategies have emerged to produce a core set of cellulases, with differing degrees of success. While one-step conversion of cellulosic substrates to ethanol has been reported, the resulting titers and productivities fall well below industrial requirements. In this review, we examine the strategies employed for cellulase expression in yeast, highlighting the successes in developing basic cellulolytic CBP-enabled yeasts. We also summarize recent advancements in rational strain design and engineering, exploring how these approaches can be further enhanced through modern synthetic biology tools to optimize CBP-enabled yeast strains for potential industrial applications.

• S. cerevisiae’s lack of cellulolytic ability warrants its engineering for industry.

• Advancements in the expression of core sets of cellulases have been reported.

• Rational engineering is needed to enhance cellulase secretion and strain robustness.

• Insights gained from omics strategies will direct the future development of CBP strains.

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来源期刊
Applied Microbiology and Biotechnology
Applied Microbiology and Biotechnology 工程技术-生物工程与应用微生物
CiteScore
10.00
自引率
4.00%
发文量
535
审稿时长
2 months
期刊介绍: Applied Microbiology and Biotechnology focusses on prokaryotic or eukaryotic cells, relevant enzymes and proteins; applied genetics and molecular biotechnology; genomics and proteomics; applied microbial and cell physiology; environmental biotechnology; process and products and more. The journal welcomes full-length papers and mini-reviews of new and emerging products, processes and technologies.
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