Department of Food Science and Human Nutrition, University of Illinois at Urbana-Champaign, Urbana, IL, 61801, USA.
Carl R. Woese Institute for Genomic Biology, University of Illinois at Urbana-Champaign, Urbana, IL, 61801, USA.
Biotechnol J. 2021 Apr;16(4):e2000142. doi: 10.1002/biot.202000142. Epub 2020 Nov 13.
Microbial conversion of plant biomass into fuels and chemicals offers a practical solution to global concerns over limited natural resources, environmental pollution, and climate change. Pursuant to these goals, researchers have put tremendous efforts and resources toward engineering the yeast Saccharomyces cerevisiae to efficiently convert xylose, the second most abundant sugar in lignocellulosic biomass, into various fuels and chemicals. Here, recent advances in metabolic engineering of yeast is summarized to address bottlenecks on xylose assimilation and to enable simultaneous co-utilization of xylose and other substrates in lignocellulosic hydrolysates. Distinct characteristics of xylose metabolism that can be harnessed to produce advanced biofuels and chemicals are also highlighted. Although many challenges remain, recent research investments have facilitated the efficient fermentation of xylose and simultaneous co-consumption of xylose and glucose. In particular, understanding xylose-induced metabolic rewiring in engineered yeast has encouraged the use of xylose as a carbon source for producing various non-ethanol bioproducts. To boost the lignocellulosic biomass-based bioeconomy, much attention is expected to promote xylose-utilizing efficiency via reprogramming cellular regulatory networks, to attain robust co-fermentation of xylose and other cellulosic carbon sources under industrial conditions, and to exploit the advantageous traits of yeast xylose metabolism for producing diverse fuels and chemicals.
微生物将植物生物质转化为燃料和化学品,为解决全球对有限自然资源、环境污染和气候变化的担忧提供了切实可行的解决方案。为了实现这些目标,研究人员投入了大量的精力和资源,对酵母酿酒酵母进行工程改造,以有效地将木质纤维素生物质中第二丰富的糖——木糖转化为各种燃料和化学品。本文总结了酵母代谢工程的最新进展,以解决木糖吸收的瓶颈问题,并实现木质纤维素水解物中木糖和其他底物的同时共利用。还强调了可以利用木糖代谢的独特特征来生产先进的生物燃料和化学品。尽管仍然存在许多挑战,但最近的研究投资促进了木糖的高效发酵和木糖与葡萄糖的同时共消耗。特别是,对工程酵母中木糖诱导的代谢重排的理解,鼓励将木糖用作生产各种非乙醇生物制品的碳源。为了推动基于木质纤维素生物质的生物经济,人们期望通过重新编程细胞调控网络来提高木糖利用效率,在工业条件下实现木糖和其他纤维素碳源的稳健共发酵,并利用酵母木糖代谢的优势特性来生产多样化的燃料和化学品。