Acta Pharmaceutica Sinica B
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2026, 16(2): 879-899
• Original articles •
Clostridium perfringens alpha toxin drives pathological NETosis via immature neutrophil mobilization and functional reprogramming
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Pinnan Zhao1, Zongcheng Li2, Chaoyan Yao1,3, Yi Zhou4, Yangyihua Zhou1, Ning Shi1,3, Jie Wang1, Can Xu1, Peixun Gao1, Xuechen Yang1, Liang Zhang1, Yaowei Ma1, Jiannan Feng1, Chunxia Qiao1, Xinying Li1, Changyan Li5, Longlong Luo1, Xiang Gao1
Affiliations
1 Academy of Military Medical Sciences, Beijing 100850, China;
2 State Key Laboratory of Experimental Hematology, Haihe Laboratory of Cell Ecosystem, Institute of Hematology, Department of Hematology, Fifth Medical Center, Chinese PLA General Hospital, Beijing 100071, China;
3 Xiangya School of Basic Medical Science, Central South University, Changsha 410078, China;
4 Department of Neurosurgery, The First Medical Center of Chinese PLA General Hospital, Beijing 100853, China;
5 Beijing Institute of Radiation Medicine, Beijing 100071, China
doi: 10.1016/j.apsb.2025.09.011
Outline
Clostridium perfringens alpha toxin (CPA), a zinc-dependent phospholipase C, is a key virulence factor in gas gangrene. While its membrane-disrupting cytotoxicity is well characterized, its capacity to modulate neutrophil function and promote pathological inflammation is poorly defined. Here, we show that CPA induces neutrophil extracellular trap (NETs) formation by mobilizing and functionally reprogramming immature neutrophils. In a murine model, CPA challenge caused dose-dependent mortality and multi-organ injury, driven by a dramatic expansion of a pro-NETotic immature neutrophil subset identified by single-cell RNA sequencing. This was confirmed by elevated systemic NETs markers and extensive NETs deposition in damaged tissues. Mechanistically, CPA directly triggered reactive oxygen species (ROS)-dependent, peptidylarginine deiminase 4 (PAD4)-mediated NETosis in both murine and human neutrophils, revealing a conserved pathogenic mechanism. Importantly, therapeutic targeting of the NETotic pathway—via PAD4 inhibition, (Deoxyribonuclease I) DNase I treatment, or neutrophil depletion—significantly reduced tissue damage and improved survival. These findings identify a CPA–neutrophil–NETs axis as a central driver of immunopathology. Our study reframes CPA from a classical cytolysin to a potent immunomodulatory toxin that hijacks neutrophil fate. Our findings validate the NETotic pathway as a critical therapeutic target, providing a strong rationale for developing host-directed therapies—potentially in combination with toxin-neutralizing agents—to combat severe toxin-driven diseases.
Bacterial toxins
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Neutrophil extracellular traps
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Immature neutrophils
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Reactive oxygen species
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Single-cell transcriptomics
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Host-directed therapy
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Immunopathology
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Organ injury
Pinnan Zhao, Zongcheng Li, Chaoyan Yao, Yi Zhou, Yangyihua Zhou, Ning Shi, Jie Wang, Can Xu, Peixun Gao, Xuechen Yang, Liang Zhang, Yaowei Ma, Jiannan Feng, Chunxia Qiao, Xinying Li, Changyan Li, Longlong Luo, Xiang Gao.
Clostridium perfringens alpha toxin drives pathological NETosis via immature neutrophil mobilization and functional reprogramming[J].
Acta Pharmaceutica Sinica B,
2026
, 16
(2)
: 879
-899
.
DOI: 10.1016/j.apsb.2025.09.011
Year 2026 volume 16 Issue 2
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Article Info
doi: 10.1016/j.apsb.2025.09.011
- Receive Date:2025-05-22
- Online Date:2026-09-17