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Genetically Engineered Cyanobacteria Enhances Photocurrent Generation in Photo-bioelectrochemical Cell

机译:基因工程蓝细菌增强光生化电化学细胞中的光电流产生。

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Cyanobacteria exhibit light dependent exoelectrogenic activity in photo-bioelectrochemical cells (PBEC) generating substantial photocurrent. However compared to the other competing technologies such as photovoltaics, the photocurrent generated by cyanobacteria is lower and is not suitable yet to become a viable alternative technology. Initiatives to understand and enhance the exoelectrogenicity of cyanobacteria are crucial to resolve this caveat. In this perspective, a cyanobacterium named Synechococcus elongatus PCC7942 was genetically engineered to express a heterologous protein called outer membrane cytochrome S for enhancing its exoelectrogenicity. The genetically engineered cyanobacteria exhibited nearly 9 fold higher photocurrent generation than the corresponding wild-type cyanobacterium. Further, power density generated by the genetically engineered cyanobacteria in a rudimentary PBEC was found to be five times higher than that generated by wild-type. The multidisciplinary research work presented here highlights the scope for enhancing photocurrent generation by cyanobacteria thereby benefiting faster advancement of PBEC technology.
机译:Cyanobacteria在光电电影细胞(PBEC)中表现出光依赖性的辐射电力活性,产生大量光电流。然而,与照相等其他竞争技术相比,由蓝杆菌产生的光电流较低,并且不适合于成为可行的替代技术。理解和增强蓝藻的辐射电解的举措对于解决这一警告至关重要。在这种观点中,基因工程化了一个名为Senchococccus elongatus PCC7942的蓝杆菌,以表达称为外膜细胞色素S的异源蛋白质,用于增强其外部电力。基因工程的蓝杆菌表现出比相应的野生型蓝藻更高的光电流产生近9倍。此外,发现由基因工程的蓝藻产生的功率密度在基本上的PBEC中被发现比野生型产生的5倍。这里提出的多学科研究工作突出了通过蓝细菌增强光电流产生的范围,从而促进了对PBEC技术的速度更快。

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