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Strategies to enhance production of microalgal biomass and lipids for biofuel feedstock

机译:增强生物节生物量和生物燃料原料脂质生产的策略

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Microalgae have enormous potential as feedstock for biofuel production compared with other sources, due to their high areal productivity, relatively low environmental impact, and low impact on food security. However, high production costs are the major limitation for commercialization of algal biofuels. Strategies to maximize biomass and lipid production are crucial for improving the economics of using microalgae for biofuels. Selection of suitable algal strains, preferably from indigenous habitats, and further improvement of those 'platform strains' using mutagenesis and genetic engineering approaches are desirable. Conventional approaches to improve biomass and lipid productivity of microalgae mainly involve manipulation of nutritional (e.g. nitrogen and phosphorus) and environmental (e.g. temperature, light and salinity) factors. Approaches such as the addition of phytohormones, genetic and metabolic engineering, and co-cultivation of microalgae with yeasts and bacteria are more recent strategies to enhance biomass and lipid productivity of microalgae. Improvement in culture systems and the use of a hybrid system (i.e. a combination of open ponds and photobioreactors) is another strategy to optimize algal biomass and lipid production. In addition, the use of low-cost substrates such as agri-industrial wastewater for the cultivation of microalgae will be a smart strategy to reduce production costs. Such systems not only generate high algal biomass and lipid productivity, but are also useful for bioremediation of wastewater and bioremoval of waste CO2. The aim of this review is to highlight the advances in the use of various strategies to enhance production of algal biomass and lipids for biofuel feedstock.
机译:由于其高强度生产率,对环境影响较低,对粮食安全影响低,微藻具有巨大的潜力作为生物燃料生产的原料。然而,高生产成本是藻类生物燃料商业化的主要限制。最大化生物质和脂质生产的策略对于改善使用微藻糖果的经济学来改善生物燃料的经济学至关重要。选择合适的藻类菌株,优选来自本土栖息地,以及使用诱变和遗传工程方法的进一步改善这些平台菌株的方法。改善微藻脂质和脂质生产率的常规方法主要涉及操纵营养(例如氮和磷)和环境(例如温度,光和盐度)因子。添加植物激素,遗传和代谢工程等方法,以及酵母菌和细菌的微藻和细菌的共同培养是提高微藻生物量和脂质生产率的更新策略。培养系统的改善和杂交系统的用途(即开放池和光生物反应器的组合)是优化藻类生物量和脂质生产的另一种策略。此外,使用低成本的基材如农业工业废水,用于培养微藻,将是降低生产成本的智能策略。这种系统不仅产生高藻类生物量和脂质生产率,而且对废水的生物修复和废物二氧化碳的生物化也是有用的。本综述的目的是突出各种策略的进步,以增强生物燃料原料的藻类生物量和脂质的生产。

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