Wang Jimin, Batista Victor S, Bunick Christopher G
Department of Molecular Biophysics and Biochemistry, Yale University, New Haven, CT 06520, USA.
Department of Chemistry, Yale University, New Haven, CT06520, USA.
bioRxiv. 2023 Oct 9:2023.10.09.561507. doi: 10.1101/2023.10.09.561507.
Deucravacitinib, 6-(cyclopropanecarbonylamido)-4-[2-methoxy-3-(1-methyl-1,2,4-triazol-3-yl)anilino]-N-(trideuteriomethyl)pyridazine-3-carboxamide, is a highly selective inhibitor of protein tyrosine kinase 2 (TYK2) that targets the Janus kinase (JAK)-signal transducer and activator of transcription (STAT) pathway. The structural basis for its selectivity and allosteric inhibition remains poorly understood. Here, we investigate the inhibition mechanism through analysis of available structures relevant to the STAT pathway, including crystal structures of the truncated TYK2 FERM-SH2 domain bound to the IFNα type I receptor (IFNαR1) and the truncated TYK2 JH2-JH1 domain. Our computational analysis provides a mechanistic hypothesis for the relatively rapid interferon-induced gene expression mediated by TYK2 relative to other cytokines. We find that deucravacitinib inhibits TYK2 kinase in three distinct states: the autoinhibited state and two activated states for autophosphorylation and phosphorylation of downstream protein substrates. Its binding to the TYK2 pseudokinase domain in the autoinhibited state restricts the essential dynamics of the TYK2 kinase domain required for kinase activity. Furthermore, it binds competitively with ATP in the pseudokinase domain, and also directly prevents formation of the active state of TYK2 through steric clashes.
氘可来昔替尼,即6-(环丙烷甲酰胺基)-4-[2-甲氧基-3-(1-甲基-1,2,4-三唑-3-基)苯胺基]-N-(三氘代甲基)哒嗪-3-甲酰胺,是一种高度选择性的蛋白酪氨酸激酶2(TYK2)抑制剂,其作用靶点为Janus激酶(JAK)-信号转导及转录激活因子(STAT)通路。其选择性和变构抑制的结构基础仍知之甚少。在此,我们通过分析与STAT通路相关的现有结构来研究其抑制机制,这些结构包括截短的TYK2 FERM-SH2结构域与I型干扰素α受体(IFNαR1)结合的晶体结构以及截短的TYK2 JH2-JH1结构域。我们的计算分析为TYK2相对于其他细胞因子介导的相对快速的干扰素诱导基因表达提供了一个机制假说。我们发现氘可来昔替尼在三种不同状态下抑制TYK2激酶:自身抑制状态以及下游蛋白底物自磷酸化和磷酸化的两种激活状态。它在自身抑制状态下与TYK2假激酶结构域结合,限制了激酶活性所需的TYK2激酶结构域的关键动力学。此外,它在假激酶结构域中与ATP竞争性结合,并且还通过空间位阻直接阻止TYK2活性状态的形成。