Kumar Gulshan, Shekh Ajam, Jakhu Sunaina, Sharma Yogesh, Kapoor Ritu, Sharma Tilak Raj
Agricultural Biotechnology Division, National Agri-Food Biotechnology Institute (NABI), Sahibzada Ajit Singh Nagar, India.
Plant Cell Biotechnology Department, CSIR-Central Food Technological Research Institute (CFTRI), Mysuru, India.
Front Bioeng Biotechnol. 2020 Sep 3;8:914. doi: 10.3389/fbioe.2020.00914. eCollection 2020.
Microalgae, due to their complex metabolic capacity, are being continuously explored for nutraceuticals, pharmaceuticals, and other industrially important bioactives. However, suboptimal yield and productivity of the bioactive of interest in local and robust wild-type strains are of perennial concerns for their industrial applications. To overcome such limitations, strain improvement through genetic engineering could play a decisive role. Though the advanced tools for genetic engineering have emerged at a greater pace, they still remain underused for microalgae as compared to other microorganisms. Pertaining to this, we reviewed the progress made so far in the development of molecular tools and techniques, and their deployment for microalgae strain improvement through genetic engineering. The recent availability of genome sequences and other omics datasets form diverse microalgae species have remarkable potential to guide strategic momentum in microalgae strain improvement program. This review focuses on the recent and significant improvements in the omics resources, mutant libraries, and high throughput screening methodologies helpful to augment research in the model and non-model microalgae. Authors have also summarized the case studies on genetically engineered microalgae and highlight the opportunities and challenges that are emerging from the current progress in the application of genome-editing to facilitate microalgal strain improvement. Toward the end, the regulatory and biosafety issues in the use of genetically engineered microalgae in commercial applications are described.
微藻因其复杂的代谢能力,正不断被探索用于生产营养保健品、药物及其他具有重要工业价值的生物活性物质。然而,本地野生型菌株中目标生物活性物质的产量和生产率欠佳,一直是其工业应用中长期存在的问题。为克服这些限制,通过基因工程进行菌株改良可能发挥决定性作用。尽管先进的基因工程工具已大量涌现,但与其他微生物相比,它们在微藻中的应用仍然不足。关于这一点,我们回顾了到目前为止在分子工具和技术开发方面取得的进展,以及它们在通过基因工程改良微藻菌株中的应用。最近,来自不同微藻物种的基因组序列和其他组学数据集的可得性,对于指导微藻菌株改良计划具有巨大潜力。本综述重点关注组学资源、突变体文库和高通量筛选方法的最新重大进展,这些有助于加强对模式微藻和非模式微藻的研究。作者还总结了基因工程微藻的案例研究,并强调了基因组编辑应用当前进展在促进微藻菌株改良方面所带来的机遇和挑战。最后,描述了在商业应用中使用基因工程微藻的监管和生物安全问题。