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Updated: May 26, 2026

Near Infrared Photoimmunotherapy for Mouse Models of Pleural Dissemination
Published on: February 9, 2021
Microbial-Semiconductor Hybrids Enable Near Infrared-Driven Photosynthetic Hydrogen Production for Tumor-Targeted
Ruimin Xue1, Chaojie Yu2, Tao Wang1
1State Key Laboratory of Chemical Resource Engineering, Beijing Advanced Innovation Center for Soft Matter Science and Engineering, Beijing University of Chemical Technology, Beijing, P. R. China.
Abstract:
Photosynthetic hydrogen (H2)-generating microbes represent a highly promising H2 delivery platform for antitumor therapy due to their spontaneous tumor colonization and high catalytic selectivity. However, existing microbes suffer from inadequate near-infrared (NIR) responsiveness and photoelectron injection. Here, we engineer a microbial-semiconductor hybrid by electrostatically assembling copper sulfide-loaded layered double hydroxide (LDH/CuS) nanosheets onto the surface of Rhodopseudomonas palustris (R.P.) for NIR-driven photosynthetic H2 immunotherapy. The LDH/CuS enhances NIR capture and forms a p‒n heterojunction that weakens the electron exclusion barrier, enabling directed pumping of photogenerated electrons into R.P. Under 808 nm irradiation, the LDH/CuS heterojunction boosts photoelectron injection into the hydrogenase system of R.P. by 6.8-fold, achieving highly efficient photosynthetic H2 production. Notably, the R.P.@LDH/CuS actively colonizes hypoxic tumors with a high targeting efficiency of 73.2% and selectively converts tumor-enriched lactic acid (LA) and glycogen into H2 under NIR stimulation. Through the LA depletion and immunogenic cell death induction, the microbial-semiconductor hybrid triggers potent antitumor immune responses, increasing infiltrated CD8+ T cells by over 9-fold and achieving a remarkable tumor inhibition rate of 97.8%. This work presents an NIR-driven biohybrid system with spatially directional electron pumping for efficient photosynthetic H2 generation, advancing a promising paradigm for precision-targeted tumor immunotherapy.
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