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Metabolic Engineering of Microalgal Based Biofuel Production: Prospects and Challenges

机译:基于微藻类生物燃料生产的代谢工程:前景与挑战

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摘要

The current scenario in renewable energy is focused on development of alternate and sustainable energy sources, amongst which microalgae stands as one of the promising feedstock for biofuel production. It is well known that microalgae generate much larger amounts of biofuels in a shorter time than other sources based on plant seeds. However, the greatest challenge in a transition to algae-based biofuel production is the various other complications involved in microalgal cultivation, its harvesting, concentration, drying and lipid extraction. Several green microalgae accumulate lipids, especially triacylglycerols (TAGs), which are main precursors in the production of lipid. The various aspects on metabolic pathway analysis of an oleaginous microalgae i.e., Chlamydomonas reinhardtii have elucidated some novel metabolically important genes and this enhances the lipid production in this microalgae. Adding to it, various other aspects in metabolic engineering using OptFlux and effectual bioprocess design also gives an interactive snapshot of enhancing lipid production which ultimately improvises the oil yield. This article reviews the current status of microalgal based technologies for biofuel production, bioreactor process design, flux analysis and it also provides various strategies to increase lipids accumulation via metabolic engineering.
机译:当前可再生能源的前景集中在替代和可持续能源的发展上,其中微藻是生物燃料生产的有前途的原料之一。众所周知,与其他基于植物种子的来源相比,微藻类可以在更短的时间内产生大量的生物燃料。然而,向基于藻类的生物燃料生产过渡的最大挑战是微藻培养,其收获,浓缩,干燥和脂质提取所涉及的各种其他复杂情况。几种绿色微藻会积累脂质,尤其是三酰基甘油(TAG),它们是脂质生产中的主要前体。含油微藻的代谢途径分析的各个方面,即莱茵衣藻(Chlamydomonas reinhardtii)已经阐明了一些新的重要代谢基因,这增强了该微藻的脂质产生。此外,使用OptFlux和有效的生物工艺设计进行的代谢工程的其他各个方面也提供了增强脂质生产的交互式快照,最终改善了石油产量。本文回顾了基于微藻的生物燃料生产,生物反应器工艺设计,通量分析技术的现状,并提供了通过代谢工程增加脂质积累的各种策略。

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