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New Applications of Synthetic Biology Tools for Cyanobacterial Metabolic Engineering

机译:合成生物学工具在蓝藻代谢工程中的新应用

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摘要

Cyanobacteria are promising microorganisms for sustainable biotechnologies, yet unlocking their potential requires radical re-engineering and application of cutting-edge synthetic biology techniques. In recent years, the available devices and strategies for modifying cyanobacteria have been increasing, including advances in the design of genetic promoters, ribosome binding sites, riboswitches, reporter proteins, modular vector systems, and markerless selection systems. Because of these new toolkits, cyanobacteria have been successfully engineered to express heterologous pathways for the production of a wide variety of valuable compounds. Cyanobacterial strains with the potential to be used in real-world applications will require the refinement of genetic circuits used to express the heterologous pathways and development of accurate models that predict how these pathways can be best integrated into the larger cellular metabolic network. Herein, we review advances that have been made to translate synthetic biology tools into cyanobacterial model organisms and summarize experimental and in silico strategies that have been employed to increase their bioproduction potential. Despite the advances in synthetic biology and metabolic engineering during the last years, it is clear that still further improvements are required if cyanobacteria are to be competitive with heterotrophic microorganisms for the bioproduction of added-value compounds.
机译:蓝细菌是用于可持续生物技术的有前途的微生物,但要释放其潜力,则需要进行彻底的改造,并应用尖端的合成生物学技术。近年来,用于修饰蓝细菌的可用装置和策略一直在增加,包括基因启动子,核糖体结合位点,核糖开关,报道蛋白,模块化载体系统和无标记选择系统的设计方面的进展。由于有了这些新的工具包,蓝细菌已经成功地被工程化,可以表达异源途径,以生产各种有价值的化合物。可能在现实应用中使用的蓝细菌菌株将需要完善用于表达异源途径的遗传电路,并开发能够预测如何将这些途径最佳整合到更大的细胞代谢网络中的精确模型。在这里,我们回顾了将合成生物学工具转化为蓝细菌模型生物所取得的进展,并总结了用于提高其生物生产潜力的实验和计算机策略。尽管最近几年合成生物学和代谢工程学取得了进步,但很显然,如果蓝细菌要与异养微生物竞争以生产增值化合物,还需要进一步的改进。

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