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Multi-omics decodes a defect-interface dual-engineered PtPb@SbO3-x nanozyme for NIR-II photothermal-amplified
Zhangwei Qiu1, Danyan Wang2, Zijun Jin3
1Department of Respiratory and Critical Care Medicine, The Second Affiliated Hospital and Yuying Children's Hospital of Wenzhou Medical University, Wenzhou, Zhejiang, 325000, China.
Abstract:
Managing pneumonia caused by multidrug-resistant (MDR) bacteria presents significant clinical challenges. The near-infrared II (NIR-II) laser irradiance exhibits strong photothermal conversion capabilities, making it a promising candidate for photothermal and chemodynamic therapies as non-antibiotic strategies. However, traditional methods are often hindered by issues such as the uncontrollable production of reactive oxygen species and the low efficiency associated with NIR-II photothermal therapy. This underscores the necessity for precisely regulated and highly effective synergistic therapies. To address these limitations, we have innovatively developed a defect/interface dual-engineered nanozyme (PtPb@SbO3-x) and comprehensively characterized its atomic-scale structure and catalytic mechanisms using density functional theory calculations and synchrotron radiation techniques. In vitro experiments demonstrated that PtPb@SbO3-x could efficiently eliminate drug-resistant bacteria and disrupt biofilm structures under low-concentration hydrogen peroxide and NIR-II irradiation while exhibiting excellent biocompatibility. In pneumonia models, the nanozyme enabled rapid infection clearance and significantly reduced inflammatory responses via synergistic photothermal and chemodynamic therapy effects. Furthermore, integrated multi-omics analyses-including metabolomics, transcriptomics, and proteomics-systematically uncovered the molecular mechanisms driving its therapeutic efficacy. This study successfully establishes a non-antibiotic nanozyme-based therapeutic strategy that is efficient, low in toxicity, and non-invasive for treating MDR bacterial infections. It also provides a solid theoretical basis and technical framework for the rational design of defect/interface dual-engineered nanoplatforms.

