Chen Zheng, Zhang Jing, Lyu Qingyang, Wang Honghui, Ji Xiaoliang, Yan Zhiying, Chen Fang, Dahlgren Randy A, Zhang Minghua
School of Public Health and Management, Wenzhou Medical University, Wenzhou 325035, People's Republic of China; School of Environmental Science & Engineering, Tan Kah Kee College, Xiamen University, Zhangzhou 363105, People's Republic of China; Fujian Provincial Key Lab of Coastal Basin Environment, Fujian Polytechnic Normal University, Fuqing 350300, People's Republic of China.
School of Environmental Science & Engineering, Tan Kah Kee College, Xiamen University, Zhangzhou 363105, People's Republic of China.
Sci Total Environ. 2022 Jun 10;824:153857. doi: 10.1016/j.scitotenv.2022.153857. Epub 2022 Feb 14.
Currently, the industrial application of bioelectrochemical systems (BESs) that are incubated with natural electrochemically active microbes (EABs) is limited due to inefficient extracellular electron transfer (EET) by natural EABs. Notably, recent studies have identified several novel living biomaterials comprising highly efficient electron transfer systems allowing unparalleled proficiency of energy conversion. Introduction of these biomaterials into BESs could fundamentally increase their utilization for a wide range of applications. This review provides a comprehensive assessment of recent advancements in the design of living biomaterials that can be exploited to enhance bioelectrocatalytic performance. Further, modular configurations of abiotic and biotic components promise a powerful enhancement through integration of nano-based artificial mediators and synthetic biology. Herein, recent advancements in BESs are synthesized and assessed, including heterojunctions between conductive nanomaterials and EABs, in-situ hybrid self-assembly of EABs and nano-sized semiconductors, cytoprotection in biohybrids, synthetic biological modifications of EABs and electroactive biofilms. Since living biomaterials comprise a broad range of disciplines, such as molecular biology, electrochemistry and material sciences, full integration of technological advances applied in an interdisciplinary framework will greatly enhance/advance the utility and novelty of BESs. Overall, emerging fundamental knowledge concerning living biomaterials provides a powerful opportunity to markedly boost EET efficiency and facilitate the industrial application of BESs to meet global sustainability challenges/goals.
目前,与天然电化学活性微生物(EABs)共同培养的生物电化学系统(BESs)的工业应用受到限制,原因是天然EABs的细胞外电子转移(EET)效率低下。值得注意的是,最近的研究已经确定了几种新型的活性生物材料,它们包含高效的电子转移系统,能够实现无与伦比的能量转换效率。将这些生物材料引入BESs从根本上可以提高它们在广泛应用中的利用率。本综述全面评估了可用于提高生物电催化性能的活性生物材料设计的最新进展。此外,非生物和生物成分的模块化配置有望通过整合基于纳米的人工介质和合成生物学实现强大的增强效果。在此,综合并评估了BESs的最新进展,包括导电纳米材料与EABs之间的异质结、EABs与纳米尺寸半导体的原位混合自组装、生物杂交体中的细胞保护、EABs和电活性生物膜的合成生物学修饰。由于活性生物材料涵盖了广泛的学科,如分子生物学、电化学和材料科学,在跨学科框架中应用的技术进步的全面整合将极大地提高/推进BESs的实用性和新颖性。总体而言,关于活性生物材料的新基础知识为显著提高EET效率和促进BESs的工业应用以应对全球可持续发展挑战/目标提供了有力契机。