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Microbial-Semiconductor Hybrids Enable Near Infrared-Driven Photosynthetic Hydrogen Production for Tumor-Targeted Immunotherapy

  • Ruimin Xue
  • , Chaojie Yu
  • , Tao Wang
  • , Yu Yang
  • , Shibo Wang
  • , Yanfang Zhu
  • , Wanning Jin
  • , Tingting Hu
  • , Chaoliang Tan
  • , Ruizheng Liang*
  • *Corresponding author for this work

Research output: Journal Publications and ReviewsRGC 21 - Publication in refereed journalpeer-review

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. © 2026 Wiley-VCH GmbH.
Original languageEnglish
Article numbere73476
Number of pages14
JournalAdvanced Materials
Online published25 May 2026
DOIs
Publication statusOnline published - 25 May 2026

Funding

R.L. thanks the funding support from the National Natural Science Foundation of China-Excellent Young Scientists Fund (52322317), the National Key Research and Development Program of China (2024YFA1211600), and the Interdisciplinary Research Center of Beijing University of Chemical Technology (No. XK2025-05).

UN SDGs

This output contributes to the following UN Sustainable Development Goals (SDGs)

  1. SDG 7 - Affordable and Clean Energy
    SDG 7 Affordable and Clean Energy

Research Keywords

  • hydrogen therapy
  • microbial-semiconductor hybrids
  • photosynthetic bacteria
  • tumor immunotherapy

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