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Extracellular polymeric substances sustain photoreduction of Cr(VI) by Shewanella oneidensis-CdS biohybrid system

舍瓦内拉 胞外聚合物 希瓦氏菌属 光催化 化学 电子供体 化学工程 细菌 纳米技术 生物物理学 核化学 材料科学 生物膜 生物化学 催化作用 遗传学 工程类 生物
作者
Siyu Zhang,Changhao Li,Changdong Ke,Sijia Liu,Qian Yao,Weilin Huang,Zhi Dang,Chuling Guo
出处
期刊:Water Research [Elsevier BV]
卷期号:243: 120339-120339 被引量:40
标识
DOI:10.1016/j.watres.2023.120339
摘要

Photosensitized biohybrid system (PBS) enables bacteria to exploit light energy harvested by semiconductors for rapid pollutants transformation, possessing a promising future for water reclamation. Maintaining a biocompatible environment under photocatalytic conditions is the key to developing PBS-based treatment technologies. Natural microbial cell is surrounded by extracellular polymeric substances (EPS) that either be tightly bound to the cell wall (i.e., tightly bound EPS, tbEPS) or loosely associated with cell surface (i.e., loosely bound EPS, lbEPS), which provides protection from unfavorable environment. We hypothesized that providing EPS fractions can enhance bacterial viability under adverse environment created by photocatalytic reactions. We constructed a model PBS consisting of Shewanella oneidensis and CdS using Cr(VI) as the target pollutant. Results showed complete removal of 25 mg/L Cr(VI) within 90 minutes without an electron donor, which may mainly rely on the synergistic effect of CdS and bacteria on photoelectron transfer. Further sustainability evaluation of pristine PBS and PBS with extra EPS fractions (including lbEPS and tbEPS) for Cr(VI) treatment showed that PBS with extra lbEPS achieved efficient Cr(VI) removal within five consecutive batch treatment cycles, compared to the three cycles both in pristine PBS and PBS with tbEPS. After addition of lbEPS, the accumulation of reactive oxygen species (ROS) was greatly reduced via the EPS-capping effect and quenching effect, and the toxic metal internalization potential was lowered by complexation with Cd and Cr, resulting in enhanced bacterial viability during photocatalysis. This facile and efficient cytoprotective method helps the rational design of PBS for environmental remediation.
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