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微藻的基因工程改造以增强生物炼制能力。

Genetic engineering of microalgae for enhanced biorefinery capabilities.

机构信息

Department of Chemical and Environmental Engineering, Faculty of Science and Engineering, University of Nottingham Malaysia, Jalan Broga, 43500 Semenyih, Selangor, Malaysia.

School of Energy and Chemical Engineering, Xiamen University Malaysia, Jalan Sunsuria, Bandar Sunsuria, 43900 Sepang, Selangor, Malaysia.

出版信息

Biotechnol Adv. 2020 Nov 1;43:107554. doi: 10.1016/j.biotechadv.2020.107554. Epub 2020 May 11.

Abstract

Microalgae-based bioproducts are in limelight because of their promising future, novel characteristics, the current situation of population needs, and rising prices of rapidly depleting energy resources. Algae-based products are considered as clean sustainable energy and food resources. At present, they are not commercialized due to their high production cost and low yield. In recent years, novel genome editing tools like RNAi, ZNFs, TALENs, and CRISPR/Cas9 are used to enhance the quality and quantity of the desired products. Genetic and metabolic engineering are frequently applied because of their rapid and precise results than random mutagenesis. Omic approaches help enhance biorefinery capabilities and are now in the developing stage for algae. The future is very bright for transgenic algae with increased biomass yield, carbon dioxide uptake rate, accumulating high-value compounds, reduction in cultivation, and production costs, thus reaching the goal in the global algal market and capital flow. However, microalgae are primary producers and any harmful exposure to the wild strains can affect the entire ecosystem. Therefore, strict regulation and monitoring are required to assess the potential risks before introducing genetically modified microalgae into the natural ecosystem.

摘要

基于微藻的生物制品备受关注,因为它们具有广阔的发展前景、新颖的特性、满足当前人口需求的现状,以及日益枯竭的能源资源价格不断上涨的现状。藻类生物制品被认为是清洁可持续的能源和食品资源。目前,由于生产成本高、产量低,它们尚未实现商业化。近年来,新型基因组编辑工具如 RNAi、ZNFs、TALENs 和 CRISPR/Cas9 被用于提高所需产品的质量和数量。由于遗传和代谢工程具有快速、精确的结果,比随机诱变更常用。组学方法有助于提高生物炼制能力,目前正在藻类领域发展。具有更高生物质产量、更高二氧化碳吸收率、积累高价值化合物、降低培养和生产成本的转基因藻类的未来前景非常光明,从而实现全球藻类市场和资金流的目标。然而,微藻是初级生产者,任何对野生菌株的有害暴露都可能影响整个生态系统。因此,在将转基因微藻引入自然生态系统之前,需要进行严格的监管和监测,以评估其潜在风险。

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