Acta Pharmaceutica Sinica B
|
2026, 16(7): 4692-4705
• Original articles •
Target degradation of CASPASE-1 for alleviation of inflammation in sepsis via optogenetically engineered extracellular vesicles
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Yuting Du1,2, Dan Xiao1,2, Heng Li1,2,3, Li Fan1, Kuo Shen4, Bin Zhang2,5, Liang Zhang2,5, Lifei Guo1,2, Qingzhe Li1,2, Jinwang Zheng1, Jingxiang Wang1, Li Yao6, Guodong Yang2, Xuekang Yang1
Affiliations
1 Department of Burns and Cutaneous Surgery, Xijing Hospital, Air Force Medical University, Xi'an 710032, China;
2 The State Laboratory of Cancer Biology, Department of Biochemistry and Molecular Biology, Air Force Medical University, Xi'an 710032 China;
3 N15. 904 Hospital of the PLA Joint Logistics Support Force, Wuxi 214000, China;
4 Air Force Hospital of Western Theater Command, Chengdu 500643, China;
5 Department of Ultrasound Medicine, Tangdu Hospital, Air Force Medical University, Xi'an 710038, China;
6 Department of Pathology, Xi'an N15. 3 Hospital, The Affiliated Hospital of Northwest University, Xi'an 710018, China
doi: 10.1016/j.apsb.2026.05.007
Outline
Sepsis is a comprehensive ailment of systemic inflammatory response syndrome arising from infection. Activation of CASPASE-1 plays a central role in initiating the inflammatory cascade during sepsis. Herein, we construct optogenetically engineered extracellular vesicles (EVs) that achieve the specific degradation of CASPASE-1 and inhibit sepsis-associated inflammation. Specifically, blue light (460 nm)-induced CRY2/CIBN heterodimerization was applied during the EVs production stage to selectively load GCE-CTM fusion proteins into EVs by EXPLORs technology, yielding EVsGCE⁻CTM loading efficiency compared to conventional methods. Upon systemic delivery, EVsGCE⁻CTM preferentially accumulated in macrophages, where the GCE domain selectively bound activated CASPASE-1. The CTM motif then facilitated its lysosomal degradation by chaperone-mediated autophagy, resulting in potent inhibition of CASPASE-1 activity. In a murine model of sepsis, treatment with EVsGCE⁻CTM effectively attenuated systemic inflammation, reduced multi-organ damage, and significantly improved survival outcomes. This approach enables highly efficient, ubiquitin-independent degradation of intracellular target proteins through macrophage-directed EVs delivery, offering a potential therapeutic approach to address sepsis and other inflammation-related diseases.
Sepsis
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Inflammation
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CASPASE-1
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Macrophage
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Lysosome-targeting
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Engineered extracellular vesicles
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Optogenetics
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Targeted protein degradation
Yuting Du, Dan Xiao, Heng Li, Li Fan, Kuo Shen, Bin Zhang, Liang Zhang, Lifei Guo, Qingzhe Li, Jinwang Zheng, Jingxiang Wang, Li Yao, Guodong Yang, Xuekang Yang.
Target degradation of CASPASE-1 for alleviation of inflammation in sepsis via optogenetically engineered extracellular vesicles[J].
Acta Pharmaceutica Sinica B,
2026
, 16
(7)
: 4692
-4705
.
DOI: 10.1016/j.apsb.2026.05.007
Year 2026 volume 16 Issue 7
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Article Info
doi: 10.1016/j.apsb.2026.05.007
- Receive Date:2025-08-27
- Online Date:2026-09-17