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A thylakoid-based immunometabolic reprogramming platform for ultrasound-activated extracellular matrix remodeling and antitumor immunity

  • Guihong Lu
  • , Zijin Li
  • , Xu Ou
  • , Weixiu Wang
  • , Zhongqin Tian
  • , Wenqiang Hu
  • , Hai Yan Xie
  • , Weidong Nie*
  • *Corresponding author for this work
  • Shenzhen Children's Hospital
  • Beijing Institute of Technology
  • Peking University

Research output: Contribution to journalArticlepeer-review

Abstract

The infiltration and functional persistence of effector T cells (Teffs) are severely constrained by a self-sustaining suppressive circuit comprising physical, metabolic, and immunological barriers. Here, we report a thylakoid-based immunometabolic regulatory platform (TIMR) that delivers arginine to dismantle the circuit. Following administration, thylakoids reprogram tumor-associated macrophages from arginine-consuming suppressors into nitric oxide (NO)-producing effectors. The resulting NO normalizes tumor vasculature and suppresses fibroblast-driven fibrosis, thereby alleviating extracellular matrix (ECM)-mediated physical barriers. Concurrently, thylakoid-mediated sonodynamic therapy generates reactive oxygen species that react with NO to form peroxynitrite (ONOO⁻), which inhibits tumor glycolysis and induces ECM degradation, preventing re-establishment of dense ECM. The coordinated collapse of metabolic, physical, and immunological constraints creates permissive immune niches that support Teff survival and functional maintenance. Moreover, ONOO⁻-induced immunogenic cell death activates adaptive immunity, enabling robust Teff expansion and sustained infiltration into tumors. Overall, TIMR provides a promising platform for overcoming immune resistance in solid tumors.

Original languageEnglish
Article number103108
JournalNano Today
Volume70
DOIs
Publication statusPublished - Aug 2026
Externally publishedYes

Keywords

  • Cancer immunotherapy
  • Extracellular matrix remodeling
  • Immunometabolic regulation
  • Thylakoids
  • Tumor-associated macrophages

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