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Bioethanol a Microbial Biofuel Metabolite; New Insights of Yeasts Metabolic Engineering

机译:生物乙醇微生物生物燃料代谢物;酵母代谢工程的新见解

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Scarcity of the non-renewable energy sources, global warming, environmental pollution, and raising the cost of petroleum are the motive for the development of renewable, eco-friendly fuels production with low costs. Bioethanol production is one of the promising materials that can subrogate the petroleum oil, and it is considered recently as a clean liquid fuel or a neutral carbon. Diverse microorganisms such as yeasts and bacteria are able to produce bioethanol on a large scale, which can satisfy our daily needs with cheap and applicable methods. Saccharomyces cerevisiae and Pichia stipitis are two of the pioneer yeasts in ethanol production due to their abilities to produce a high amount of ethanol. The recent focus is directed towards lignocellulosic biomass that contains 30–50% cellulose and 20–40% hemicellulose, and can be transformed into glucose and fundamentally xylose after enzymatic hydrolysis. For this purpose, a number of various approaches have been used to engineer different pathways for improving the bioethanol production with simultaneous fermentation of pentose and hexoses sugars in the yeasts. These approaches include metabolic and flux analysis, modeling and expression analysis, followed by targeted deletions or the overexpression of key genes. In this review, we highlight and discuss the current status of yeasts genetic engineering for enhancing bioethanol production, and the conditions that influence bioethanol production.
机译:不可再生能源的匮乏,全球变暖,环境污染以及石油成本的上涨是发展低成本可再生,环保燃料的动机。生物乙醇生产是可以取代石油的有前途的材料之一,最近被认为是清洁的液体燃料或中性碳。诸如酵母和细菌之类的多种微生物能够大规模生产生物乙醇,可以通过廉价且适用的方法来满足我们的日常需求。酿酒酵母和毕赤酵母是乙醇生产中的两种先驱酵母,因为它们具有产生大量乙醇的能力。最近的研究重点是木质纤维素生物质,其中包含30%至50%的纤维素和20%至40%的半纤维素,经过酶水解后可以转化为葡萄糖和基本上是木糖。为此目的,已使用多种方法来设计不同的途径,以同时发酵酵母中的戊糖和己糖,以改善生物乙醇的生产。这些方法包括代谢和通量分析,建模和表达分析,然后进行目标基因的删除或关键基因的过度表达。在这篇综述中,我们重点介绍并讨论了用于提高生物乙醇产量的酵母基因工程的现状,以及影响生物乙醇产量的条件。

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