适体
可药性
变构调节
核酸
变构调节剂
化学
药理学
药物发现
计算生物学
细胞生物学
药品
G蛋白偶联受体
微尺度热泳
癌症研究
逮捕
药效学
核受体
医学
炎症
结构-活动关系
功能选择性
小分子
药物开发
信号转导
生物
生物化学
受体
作者
Yanchen Zhang,Ende Wu,Weibin Liu,Ling Min Zeng,Neng Ling,Hongmei Wang,Zonglun Li,Shuang Yao,Tonghe Pan,Xuanwen Li,Yun Huang,Xiaojing Li,Yunhai Tu,Wentao Yan,Jianzhang Wu,Mao Ye,Wencan Wu
标识
DOI:10.1002/advs.202505586
摘要
Graves' ophthalmopathy (GO) is an autoimmune disorder marked by orbital inflammation and tissue remodeling, leading to irreversible disfigurement and vision loss. The current first-line glucocorticoid therapy remains palliative, underscoring the critical need for mechanism-based interventions. Autoantibodies against thyrotropin receptor (TSHR) in GO patients highlight its therapeutic potential, yet TSHR inhibitor development faces challenges, including low potency, off-target effects, and mechanistic constraints. To overcome this therapeutic void, YC3, a TSHR-targeting nucleic acid aptamer, has been developed through an innovative approach that combines protein-targeting cell-SELEX with functional selection. YC3 exhibits nanomolar affinity alongside robust pharmacodynamic efficacy. In vitro, YC3 significantly reverses thyroid-stimulating antibodies (TSAbs)-driven hyperactivation in primary human orbital fibroblasts, thereby suppressing pathogenic hallmarks of fibroblasts. In vivo, therapeutic administration of YC3 significantly alleviates ocular symptoms in a GO mouse model. Mechanistic investigations reveal that YC3 binds to a previously unidentified allosteric site within the leucine-rich repeat domain of TSHR, consequently inhibiting receptor activation. Collectively, this study not only identifies YC3 as a promising TSHR-targeting therapeutic candidate but also unveils a novel allosteric site for next-generation inhibitors. These findings highlight the potential of aptamers in both dissecting receptor mechanisms and uncovering cryptic druggable sites, thereby bridging structural biology with targeted drug development.
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