Targeting STING oligomerization with licochalcone D ameliorates STING-driven inflammatory diseases.

IF 8 2区 生物学 Q1 BIOLOGY
Science China Life Sciences Pub Date : 2024-12-01 Epub Date: 2024-08-22 DOI:10.1007/s11427-024-2703-6
Yinghui Zhang, Yadan Liu, Bing Jiang, Lifan Chen, Jie Hu, Buying Niu, Jie Chang, Zisheng Fan, Jingyi Zhou, Yajie Wang, Dan Teng, Ning Ma, Xiaofeng Wang, Ruirui Yang, Mingyue Zheng, Sulin Zhang
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引用次数: 0

Abstract

The development of STING inhibitors for the treatment of STING-related inflammatory diseases continues to encounter significant challenges. The activation of STING is a multi-step process that includes binding with cGAMP, self-oligomerization, and translocation from the endoplasmic reticulum to the Golgi apparatus, ultimately inducing the expression of IRF3 and NF-κB-mediated interferons and inflammatory cytokines. It has been demonstrated that disruption of any of these steps can effectively inhibit STING activation. Traditional structure-based drug screening methodologies generally focus on specific binding sites. In this study, a TransformerCPI model based on protein primary sequences and independent of binding sites is employed to identify compounds capable of binding to the STING protein. The natural product Licochalcone D (LicoD) is identified as a potent and selective STING inhibitor. LicoD does not bind to the classical ligand-binding pocket; instead, it covalently modifies the Cys148 residue of STING. This modification inhibits STING oligomerization, consequently suppressing the recruitment of TBK1 and the nuclear translocation of IRF3 and NF-κB. LicoD treatment ameliorates the inflammatory phenotype in Trex1-1- mice and inhibits the progression of DSS-induced colitis and AOM/DSS-induced colitis-associated colon cancer (CAC). In summary, this study reveals the potential of LicoD in treating STING-driven inflammatory diseases. It also demonstrates the utility of the TransformerCPI model in discovering allosteric compounds beyond the conventional binding pockets.

用甘草查尔酮 D 靶向 STING 低聚化可改善 STING 驱动的炎症性疾病。
开发治疗 STING 相关炎症疾病的 STING 抑制剂仍面临重大挑战。STING 的活化是一个多步骤过程,包括与 cGAMP 结合、自我异构化、从内质网转位到高尔基体,最终诱导 IRF3 和 NF-κB 介导的干扰素和炎症细胞因子的表达。研究表明,破坏其中任何一个步骤都能有效抑制 STING 的活化。传统的基于结构的药物筛选方法通常侧重于特定的结合位点。在本研究中,我们采用了一个基于蛋白质主序列且与结合位点无关的 TransformerCPI 模型来鉴定能够与 STING 蛋白结合的化合物。天然产物 Licochalcone D(LicoD)被鉴定为一种强效且具有选择性的 STING 抑制剂。LicoD 不与传统的配体结合口袋结合,而是共价修饰 STING 的 Cys148 残基。这种修饰抑制了 STING 的寡聚化,从而抑制了 TBK1 的招募以及 IRF3 和 NF-κB 的核转位。LicoD 治疗可改善 Trex1-1- 小鼠的炎症表型,并抑制 DSS 诱导的结肠炎和 AOM/DSS 诱导的结肠炎相关结肠癌(CAC)的恶化。总之,这项研究揭示了 LicoD 在治疗 STING 驱动的炎症性疾病方面的潜力。它还证明了 TransformerCPI 模型在发现传统结合口袋之外的异生化合物方面的实用性。
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来源期刊
CiteScore
15.10
自引率
8.80%
发文量
2907
审稿时长
3.2 months
期刊介绍: Science China Life Sciences is a scholarly journal co-sponsored by the Chinese Academy of Sciences and the National Natural Science Foundation of China, and it is published by Science China Press. The journal is dedicated to publishing high-quality, original research findings in both basic and applied life science research.
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