Bioenergy Research Center, Department of Bioinformatics and Biotechnology, Government College University Faisalabad, Faisalabad, Pakistan.
State Key Laboratory of Microbial Metabolism, Joint International Research Laboratory of Metabolic & Developmental Sciences of Ministry of Education, School of Life Science and Biotechnology, Shanghai Jiao Tong University, Shanghai, People's Republic of China.
Biotechnol Appl Biochem. 2020 Jan;67(1):41-51. doi: 10.1002/bab.1812. Epub 2019 Sep 30.
Algal lipids have shown promising feedstock to produce biodiesel due to higher energy content, higher cetane number, and renewable nature. However, at present, the lipid productivity is too low to meet the commercial needs. Various approaches can be employed to enhance the lipid content and lipid productivity in microalgae. Stress manipulation is an attractive option to modify the algal lipid content, but it faces the drawback of time-consuming production processing and lack of information about molecular mechanisms related to triacylglycerides production in response to stress. Developing the robust hyper lipid accumulating algal strains has gained momentum due to advances in metabolic engineering and synthetic biology tools. Understanding the molecular basis of lipid biosynthesis followed by reorienting the related pathways through genomic modification is an alluring strategy that is believed to achieve the industrial and economic robustness. This review portrays the use of integrated OMIC approaches to elucidate the molecular mechanisms of strain adaptability in response to stress conditions, and identification of molecular pathways that should become novel targets to develop novel algal strains. Moreover, an update on the metabolic engineering approaches to improve the lipid production in microalgae is also provided.
藻类脂质因其能量含量高、十六烷值高和可再生性而被证明是生产生物柴油的有前途的原料。然而,目前,脂质的生产力太低,无法满足商业需求。可以采用各种方法来提高微藻中的脂质含量和脂质生产力。胁迫操纵是一种很有吸引力的选择,可以改变藻类脂质的含量,但它存在生产加工耗时以及缺乏与应激反应中三酰基甘油生产相关的分子机制信息的缺点。由于代谢工程和合成生物学工具的进步,开发具有强大积累脂质能力的藻类品系的势头越来越大。了解脂质生物合成的分子基础,然后通过基因组修饰重新定向相关途径,是一种诱人的策略,有望实现工业和经济的稳健性。本文综述了综合 OMIC 方法在阐明应激条件下菌株适应性的分子机制以及鉴定应成为开发新型藻类菌株的新目标的分子途径方面的应用。此外,还提供了关于代谢工程方法的最新进展,以提高微藻中的脂质产量。