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Engineered Cyanobacteria-Based Living Materials for Bioremediation of Heavy Metals Both In Vitro and In Vivo

作者:Tao Sun, Huaishu Huo, Yingying Zhang, Yaru Xie, Yize Li, Kungang Pan, Fenfang Zhang, Jing Liu, Yindong Tong, Weiwen Zhang, Lei Chen · 发表于:ACS Nano · 年份:2024 · DOI:10.1021/acsnano.4c02493 · 被引用次数:31 · 研究领域:Nanoparticles: synthesis and applications、Heavy metals in environment、Chromium effects and bioremediation

The pollution caused by heavy metals (HMs) represents a global concern due to their serious environmental threat. Photosynthetic cyanobacteria have a natural niche and the ability to remediate HMs such as cadmium. However, their practical application is hindered by a low tolerance to HMs and issues related to recycling. In response to these challenges, this study focuses on the development and evaluation of engineered cyanobacteria-based living materials for HMs bioremediation. Genes encoding phytochelatins ( P CSs) and metallothioneins ( M Ts) were introduced into the model cyanobacterium Synechocystis sp. PCC 6803, creating PM/6803. The strain exhibited improved tolerance to multiple HMs and effectively removed a combination of Cd 2+, Zn 2+, and Cu 2+ . Using Cd 2+ as a representative, PM/6803 achieved a bioremediation rate of approximately 21 μg of Cd 2+ /OD 750 under the given test conditions. To facilitate its controllable application, PM/6803 was encapsulated using sodium alginate-based hydrogels (PM/6803@SA) to create “living materials” with different shapes. This system was feasible, biocompatible, and effective for removing Cd 2+ under simulated conditions of zebrafish and mice models. Briefly, in vitro application of PM/6803@SA efficiently rescued zebrafish from polluted water containing Cd 2+, while in vivo use of PM/6803@SA significantly decreased the Cd 2+ content in mice bodies and restored their active behavior. The study offers feasible strategies for HMs bior...