材料科学
聚电解质
生物膜
细菌纤维素
纳米技术
胞外聚合物
细胞外基质
益生菌
化学工程
聚合物
纤维素
复合材料
化学
细菌
生物
生物化学
遗传学
工程类
作者
Yihao Cui,Zhe Wang,Hou–Yong Yu,Peng Fu,Changwei Shi,Ximing Xu,Lei Liu,Shuai Hou
标识
DOI:10.1021/acsami.5c06236
摘要
Bacterial biofilms, while recognized as promising functional biomaterials, are constrained by intricate growth dynamics, complex extracellular polymer compositions, and limited processability. Here, we address these challenges by employing polyelectrolyte complexes (PECs) to create artificial biofilms via a one-step synthesis with predefined extracellular composition and enhanced processability, achieving natural biofilm-like bacterial density and properties across diverse bacterial species. The PEC matrix confers robust bacterial protection, resisting antibiotic concentrations 1000-fold above the minimal inhibitory level, lyophilization, and acidic environments. Its shear-thinning behavior enables versatile processing via extrusion, molding, or coating. As recyclable biocatalysts, these biofilms preserve the enzymatic activity at elevated temperatures (up to 80 °C). In simulated probiotic delivery, they enhance bacterial survival under gastrointestinal-like conditions and offer tunable, composition-dependent release profiles, achieving therapeutic efficacy in a murine colitis model. This platform combines flexible fabrication with customizable functionality, establishing a versatile strategy for engineered living biomaterials with broad applications in biotechnology and biomedicine.
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