AI Article Synopsis

  • There’s a critical need for new methods to fight increasing antibiotic-resistant bacteria, prompting research into innovative materials for sterilization.
  • Defect-rich bismuth molybdate heterojunctions (MBO) were created and shown to efficiently generate reactive oxygen species (ROS) to effectively kill bacteria through enhanced photocatalytic activity.
  • A new multifunctional hydrogel (CPTB@pMBO) utilizing these materials showed strong antibacterial effects in mouse models, while also lowering inflammation and proteolysis, presenting a novel strategy to combat antibiotic resistance and wound infections.

Article Abstract

Due to the increasing antibiotic resistance and the lack of broad-spectrum antibiotics, there is an urgent requirement to develop fresh strategies to combat multidrug-resistant pathogens. Herein, defect-rich bismuth molybdate heterojunctions [zero-dimensional (0D) BiMoO/two-dimensional (2D) BiMoO, MBO] were designed for rapid capture of bacteria and synergistic photocatalytic sterilization. The as-prepared MBO was experimentally and theoretically demonstrated to possess defects, heterojunctions, and irradiation triple-enhanced photocatalytic activity for efficient generation of reactive oxygen species (ROS) due to the exposure of more active sites and separation of effective electron-hole pairs. Meanwhile, dopamine-modified MBO (pMBO) achieved a positively charged and rough surface, which conferred strong bacterial adhesion and physical penetration to the nanosheets, effectively trapping bacteria within the damage range and enhancing ROS damage. Based on this potent antibacterial ability of pMBO, a multifunctional hydrogel consisting of poly(vinyl alcohol) cross-linked tannic acid-coated cellulose nanocrystals (CPTB) and pMBO, namely CPTB@pMBO, is developed and convincingly effective against in a mouse skin infection model. In addition, the strategy of combining a failed beta-lactam antibiotic with CPTB@pMBO to photoinactivation with no resistance observed was developed, which presented an idea to address the issue of antibiotic resistance in bacteria and to explore facile anti-infection methods. In addition, CPTB@pMBO can reduce excessive proteolysis of tissue and inflammatory response by regulating the expression of genes and pro-inflammatory factors , holding great potential for the effective treatment of wound infections caused by drug-resistant bacteria.

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Source
http://dx.doi.org/10.1021/acsnano.3c02304DOI Listing

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