Beyond Inhibition: Targeted Degradation of NLRP3 by Autophagy-Tethering Bifunctional Compounds as a Therapy for Inflammatory Bowel Disease

Abstract Based on our previous finding that the NLRP3 inhibitor LD5 dually binds LC3 and NLRP3, we elucidated the key functional groups responsible for its engagement with NLRP3. Leveraging this insight, we designed and synthesized a library of bivalent LD5-based autophagy-targeting chimeras (ATTECs), from which M3 emerged as the most potent NLRP3 degrader. We further sought to rationalize this approach by investigating the fundamental pharmacological questions: why develop a degrader from an existing inhibitor and what advantages would such a degrader offer over the inhibitor? Comparative studies in a colitis model clearly established that the degrader M3 achieves sustained anti-inflammatory efficacy, both in vitro and in vivo, outperforming its inhibitor precursor LD5. Our study extends beyond the discovery of a potential degrader for inflammatory bowel disease to demonstrate the crucial long-lasting therapeutic advantage of degraders over inhibitors in treating this condition.

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Publication Details

Journal
Journal of Medicinal Chemistry
Published
2026-10-09
DOI
https://doi.org/10.1021/acs.jmedchem.6c01995
Primary Topic
Protein Degradation and Inhibitors
Type
article
Field-Weighted Citation Impact
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article

Beyond Inhibition: Targeted Degradation of NLRP3 by Autophagy-Tethering Bifunctional Compounds as a Therapy for Inflammatory Bowel Disease

Xianfeng Gu, 馬紹宗, Xinru Zheng, Yingxin Wang et al.
Journal of Medicinal Chemistry
Protein Degradation and Inhibitors
article

Beyond Inhibition: Targeted Degradation of NLRP3 by Autophagy-Tethering Bifunctional Compounds as a Therapy for Inflammatory Bowel Disease

Xianfeng Gu, 馬紹宗, Xinru Zheng, Yingxin Wang, Ziwen Zhang, Yongxing Xue, Kehuan Wu, Ying Chen, Hongyu Wu, Chenjia Liu, Xiaohao Xie
article en

Abstract

Abstract Based on our previous finding that the NLRP3 inhibitor LD5 dually binds LC3 and NLRP3, we elucidated the key functional groups responsible for its engagement with NLRP3. Leveraging this insight, we designed and synthesized a library of bivalent LD5-based autophagy-targeting chimeras (ATTECs), from which M3 emerged as the most potent NLRP3 degrader. We further sought to rationalize this approach by investigating the fundamental pharmacological questions: why develop a degrader from an existing inhibitor and what advantages would such a degrader offer over the inhibitor? Comparative studies in a colitis model clearly established that the degrader M3 achieves sustained anti-inflammatory efficacy, both in vitro and in vivo, outperforming its inhibitor precursor LD5. Our study extends beyond the discovery of a potential degrader for inflammatory bowel disease to demonstrate the crucial long-lasting therapeutic advantage of degraders over inhibitors in treating this condition.

Journal of Medicinal Chemistry
Fudan University (CN), Jiaxing University (CN), Xiamen Medical College
Openalex Percentile: Top 23%
Protein Degradation and Inhibitors
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Beyond Inhibition: Targeted Degradation of NLRP3 by Autophagy-Tethering Bifunctional Compounds as a Therapy for Inflammatory Bowel Disease — Xianfeng Gu, 馬紹宗, et al. · Journal of Medicinal Chemistry (2026) | TGRS Research Map | TGRS