CC16 alleviates PM2.5-induced airway inflammation in asthmatic mice by targeting the E-cadherin-mediated ferroptosis regulatory axis

  • Curr Res Toxicol. 2026 Jun 18:11:100310. doi: 10.1016/j.crtox.2026.100310.
Aili Wang  1 Shuo Yang  1 Fang Xu  1 Jianling Liu  2 Jinle Lin  3 Jian Wu  2
Affiliations
  • 1. Pulmonary and Critical Care Medicine, Wuhan No.1 Hospital, 430022 Wuhan, Hubei, China.
  • 2. Second Department of Elderly Respiratory, Guangdong Provincial People's Hospital (Guangdong Academy of Medical Sciences), Southern Medical University, Guangdong Provincial Geriatric Institute, Guangzhou 510080, Guangdong, China.
  • 3. Department of Emergency Medicine, The Second Affiliated Hospital of Shenzhen University (People's Hospital of Shenzhen Baoan District), Shenzhen 518101, Guangdong, China.
Abstract

Airway epithelial Ferroptosis is critically involved in PM2.5-driven asthmatic airway damage, and our previous studies have demonstrated the protective role of club cell protein 16 (CC16) against fine particulate matter (PM2.5)-induced airway inflammation by inhibiting airway epithelial Ferroptosis using C57BL/6 J mouse and TC-1 cell model. Nevertheless, it remains unclarified whether CC16 exerts its anti-ferroptotic effects through interacting with E-cadherin, which represents a core research gap absent in our previous studies. Herein, we established PM2.5-intervened asthmatic mice and TC-1 cell models to explore the undiscovered molecular mechanism. Quantitative proteomics combined with bioinformatics screening identified E-cadherin as a pivotal downstream target of CC16. PM2.5 exposure markedly inhibited E-cadherin expression and aggravated epithelial Ferroptosis, while CC16 intervention efficiently restored E-cadherin levels, elevated NRF2/GPX4/SLC7A11 expression, suppressed ACSL4, and reduced lipid peroxidation. This study first verified the direct binding interaction between CC16 and E-cadherin via molecular docking, Co-IP and pull-down assays. Furthermore, CDH1 knockdown completely abolished CC16-mediated inhibition of Ferroptosis and epithelial injury. Collectively, this work establishes a novel CC16/E-cadherin/Ferroptosis signaling axis, demonstrating that E-cadherin is an indispensable mediator for CC16 to relieve PM2.5-triggered airway damage. These findings substantially complement and advance the mechanistic system of CC16-related airway protection, providing novel targets for environmental Asthma therapy.

Keywords
Asthma; CC16; E-cadherin (CDH1); Ferroptosis; PM2.5; Proteomics.
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