低聚物
单体
化学
二聚体
活化能
分子动力学
屏障激活
生物物理学
DNA
先天免疫系统
胞浆
构象变化
蛋白质结构
动力学
相(物质)
动能
效应器
立体化学
分子
结晶学
反应机理
聚合物
分子构象
液相
计算化学
聚合
作者
Xiaowen Wang,Wenjin Li
标识
DOI:10.1080/07391102.2025.2594671
摘要
Upon binding to cytosolic DNA, the cyclic GMP-AMP synthase (cGAS) is activated to catalyze the synthesis of cGAMP, which then activates downstream effectors and induces innate immune responses. The activation of cGAS relies on the formation of cGAS-DNA oligomers and liquid phase condensation, which are sensitive to the length and concentration of DNA. Although significant progresses have been made for the understanding of such a length- and concentration-dependent activation, some structural and energetic details of the cGAS-DNA oligomerization remains elusive. Here, with molecular dynamics simulations, we report the structure of the cGAS-DNA monomer (the cGAS1-DNA1 complex), in which the DNA binds simultaneously to the major parts of two DNA-binding sites as observed in the cGAS-DNA dimer (the cGAS2-DNA2 complex) and its active site is largely immature. Energetic analysis indicates that two cGAS1-DNA1 complexes are just slightly less stable than the cGAS2-DNA2 complex and there exists a significant energy barrier for the formation of the cGAS2-DNA2 complex from two cGAS1-DNA1 complexes, which provides thermodynamic and kinetic explanations for an experimental observation that cGAS-DNA oligomerization is unfavored in low concentration of cGAS and DNA.
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