磷酸化
菲拉明
整合素
机制(生物学)
化学
白细胞粘附缺陷
细胞生物学
生物
生物化学
物理
受体
CD18型
量子力学
细胞骨架
细胞
作者
Xiaokun Hong,Kaiyuan Song,Mueed Ur Rahman,Ting Wei,Yan Zhang,Lin‐Tai Da,Haifeng Chen
标识
DOI:10.1021/acs.jcim.2c01177
摘要
Leukocyte adhesion deficiency-1 (LAD-1) disorder is a severe immunodeficiency syndrome caused by deficiency or mutation of β2 integrin. The phosphorylation on threonine 758 of β2 integrin acts as a molecular switch inhibiting the binding of filamin. However, the switch mechanism of site-specific phosphorylation at the atom level is still poorly understood. To resolve the regulation mechanism, all-atom molecular dynamics simulation and Markov state model were used to study the dynamic regulation pathway of phosphorylation. Wild type system possessed lower binding free energy and fewer number of states than the phosphorylated system. Both systems underwent local disorder-to-order conformation conversion when achieving steady states. To reach steady states, wild type adopted less number of transition paths/shortest path according to the transition path theory than the phosphorylated system. The underlying phosphorylated regulation pathway was from P1 to P0 and then P4 state, and the main driving force should be hydrogen bond and hydrophobic interaction disturbing the secondary structure of phosphorylated states. These studies will shed light on the pathogenesis of LAD-1 disease and lay a foundation for drug development.
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