Khan Aqib Zafar, Bilal Muhammad, Mehmood Shahid, Sharma Ashutosh, Iqbal Hafiz M N
State Key Laboratory of Microbial Metabolism, School of Life Sciences and Biotechnology, Shanghai Jiao Tong University, Shanghai 200240, China.
School of Life Science and Food Engineering, Huaiyin Institute of Technology, Huaian 223003, China.
Life (Basel). 2019 Jun 27;9(3):54. doi: 10.3390/life9030054.
In recent years, metabolic engineering of microorganisms has attained much research interest to produce biofuels and industrially pertinent chemicals. Owing to the relatively fast growth rate, genetic malleability, and carbon neutral production process, cyanobacteria has been recognized as a specialized microorganism with a significant biotechnological perspective. Metabolically engineering cyanobacterial strains have shown great potential for the photosynthetic production of an array of valuable native or non-native chemicals and metabolites with profound agricultural and pharmaceutical significance using CO as a building block. In recent years, substantial improvements in developing and introducing novel and efficient genetic tools such as genome-scale modeling, high throughput omics analyses, synthetic/system biology tools, metabolic flux analysis and clustered regularly interspaced short palindromic repeats (CRISPR)-associated nuclease (CRISPR/cas) systems have been made for engineering cyanobacterial strains. Use of these tools and technologies has led to a greater understanding of the host metabolism, as well as endogenous and heterologous carbon regulation mechanisms which consequently results in the expansion of maximum productive ability and biochemical diversity. This review summarizes recent advances in engineering cyanobacteria to produce biofuel and industrially relevant fine chemicals of high interest. Moreover, the development and applications of cutting-edge toolboxes such as the CRISPR-cas9 system, synthetic biology, high-throughput "omics", and metabolic flux analysis to engineer cyanobacteria for large-scale cultivation are also discussed.
近年来,微生物代谢工程在生产生物燃料和工业相关化学品方面引起了广泛的研究兴趣。由于蓝藻生长速度相对较快、具有遗传可塑性且生产过程碳中和,它已被公认为具有重要生物技术前景的特殊微生物。通过代谢工程改造蓝藻菌株,利用CO作为构建单元,在光合生产一系列具有重要农业和制药意义的有价值的天然或非天然化学品和代谢物方面显示出巨大潜力。近年来,在开发和引入新型高效遗传工具方面取得了重大进展,如基因组规模建模、高通量组学分析、合成/系统生物学工具、代谢通量分析以及成簇规律间隔短回文重复序列(CRISPR)相关核酸酶(CRISPR/cas)系统,用于改造蓝藻菌株。这些工具和技术的使用使人们对宿主代谢以及内源性和异源性碳调节机制有了更深入的了解,从而扩大了最大生产能力和生化多样性。本综述总结了工程改造蓝藻以生产生物燃料和备受关注的工业相关精细化学品的最新进展。此外,还讨论了诸如CRISPR-cas9系统、合成生物学、高通量“组学”和代谢通量分析等前沿工具箱在工程改造蓝藻以进行大规模培养方面的开发和应用。