干扰素基因刺激剂
刺
兴奋剂
变构调节
坦克结合激酶1
化学
干扰素
细胞生物学
受体
药理学
生物
激酶
生物化学
先天免疫系统
蛋白激酶A
遗传学
物理
丝裂原活化蛋白激酶激酶
热力学
作者
Rui Li,Luyao Cai,Xinheng He,Duanhua Cao,Zehong Zhang,Hualiang Jiang,Kaixian Chen,Xi Cheng
标识
DOI:10.1021/acs.jcim.3c00984
摘要
The stimulator of interferon genes (STING) is an important therapeutic target for cancer diseases. The activated STING recruits downstream tank-binding kinase 1 (TBK1) to trigger several important immune responses. However, the molecular mechanism of how agonist molecules mediate the STING-TBK1 interactions remains elusive. Here, we performed molecular dynamics simulations to capture the conformational changes of STING and TBK1 upon agonist binding. Our simulations revealed that multiple helices (α5-α7) and especially three loops (loop 6, loop 8, and C-terminal tail) of STING participated in the allosteric mediation of the STING-TBK1 interactions. Consistent results were also observed in the simulations of the constitutive activating mutant of STING (R284S). We further identified α5 as a key region in this agonist-induced activation mechanism of STING. Free-energy perturbation calculations of multiple STING agonists demonstrated that an alkynyl group targeting α5 is a determinant for agonist activities. These results not only offer deeper insights into the agonist-induced allosteric mediation of STING-TKB1 interactions but also provide a guidance for future drug development of this important therapeutic target.
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