合成生物学
电子转移
细胞外
纳米技术
生物分子
细菌
生化工程
生物
化学
计算生物学
细胞生物学
材料科学
遗传学
工程类
有机化学
作者
Lina J. Bird,Biki Bapi Kundu,Tanya Tschirhart,Anna D. Corts,Lin Su,Jeffrey A. Gralnick,Caroline M. Ajo‐Franklin,Sarah M. Glaven
标识
DOI:10.1021/acssynbio.1c00335
摘要
Electroactive bacteria produce or consume electrical current by moving electrons to and from extracellular acceptors and donors. This specialized process, known as extracellular electron transfer, relies on pathways composed of redox active proteins and biomolecules and has enabled technologies ranging from harvesting energy on the sea floor, to chemical sensing, to carbon capture. Harnessing and controlling extracellular electron transfer pathways using bioengineering and synthetic biology promises to heighten the limits of established technologies and open doors to new possibilities. In this review, we provide an overview of recent advancements in genetic tools for manipulating native electroactive bacteria to control extracellular electron transfer. After reviewing electron transfer pathways in natively electroactive organisms, we examine lessons learned from the introduction of extracellular electron transfer pathways into Escherichia coli. We conclude by presenting challenges to future efforts and give examples of opportunities to bioengineer microbes for electrochemical applications.
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