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Integrating Cellular and Bioprocess Engineering in the Non-Conventional Yeast Yarrowia lipolytica for Biodiesel Production: A Review

机译:在非常规酵母解脂耶氏酵母中整合细胞与生物工艺工程用于生物柴油生产:综述

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摘要

As one of the major biofuels to replace fossil fuel, biodiesel has now attracted more and more attention due to its advantages in higher energy density and overall less greenhouse gas generation. Biodiesel (fatty acid alkyl esters) is produced by chemically or enzymatically catalyzed transesterification of lipids from microbial cells, microalgae, oil crops, or animal fats. Currently, plant oils or waste cooking oils/fats remain the major source for biodiesel production via enzymatic route, but the production capacity is limited either by the uncertain supplement of plant oils or by the low or inconsistent quality of waste oils/fats. In the past decades, significant progresses have been made on synthesis of microalgae oils directly from CO2 via a photosynthesis process, but the production cost from any current technologies is still too high to be commercialized due to microalgae’s slow growth rate on CO2, inefficiency in photo-bioreactors, lack of efficient contamination control methods, and high cost in downstream recovery. At the same time, many oleaginous microorganisms have been studied to produce lipids via the fatty acid synthesis pathway under aerobic fermentation conditions, among them one of the most studied is the non-conventional yeast, Yarrowia lipolytica, which is able to produce fatty acids at very high titer, rate, and yield from various economical substrates. This review summarizes the recent research progresses in both cellular and bioprocess engineering in Y. lipolytica to produce lipids at a low cost that may lead to commercial-scale biodiesel production. Specific technologies include the strain engineering for using various substrates, metabolic engineering in high-yield lipid synthesis, cell morphology study for efficient substrate uptake and product formation, free fatty acid formation and secretion for improved downstream recovery, and fermentation engineering for higher productivities and less operating cost. To further improve the economics of the microbial oil-based biodiesel, production of lipid-related or -derived high-value products are also discussed.
机译:作为替代化石燃料的主要生物燃料之一,生物柴油由于其具有较高的能量密度和总体上减少温室气体产生的优势,现在引起了越来越多的关注。生物柴油(脂肪酸烷基酯)是通过化学或酶催化的微生物细胞,微藻类,油料作物或动物脂肪中脂质的酯交换反应制得的。当前,植物油或废食用油/脂肪仍然是通过酶促途径生产生物柴油的主要来源,但是生产能力受到不确定的植物油补充或废油/脂肪质量低下或不一致的限制。在过去的几十年中,通过光合作用直接从二氧化碳中合成微藻油已取得了重大进展,但是由于微藻在二氧化碳上的缓慢生长,光效率低下,目前任何技术的生产成本仍然太高而无法商业化-生物反应器,缺乏有效的污染控制方法,下游回收成本高。同时,已经研究了许多油脂性微生物在需氧发酵条件下通过脂肪酸合成途径产生脂质的方法,其中研究最多的是非常规酵母解脂耶氏酵母(Yarrowia lipolytica),它能够在高温下产生脂肪酸。从各种经济的底物中获得非常高的滴度,速率和产率。这篇综述总结了在解脂耶氏酵母中以低成本生产脂质的细胞和生物工艺工程方面的最新研究进展,这可能导致商业规模的生物柴油生产。具体技术包括:使用各种底物的菌株工程,用于高产率脂质合成的代谢工程,用于有效底物摄取和产物形成的细胞形态研究,用于改善下游回收率的游离脂肪酸形成和分泌以及用于提高生产率和降低产量的发酵工程。运营成本。为了进一步改善微生物油基生物柴油的经济性,还讨论了脂质相关或衍生的高价值产品的生产。

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