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人源干扰素基因刺激蛋白(STING)C末端尾巴的建模及其与 Tank 结合激酶 1 的相互作用

Modelling of C-terminal tail of human STING and its interaction with tank-binding kinase 1.

作者信息

Ata Ouda Al-Masri Rahaf, Audu-Bida Hajara, Eşsiz Şebnem

机构信息

Kadir Has University, Faculty of Engineering and Natural Sciences, Department of Molecular Biology and Genetics, İstanbul, Turkey.

出版信息

Turk J Biol. 2021 Nov 4;46(1):69-81. doi: 10.3906/biy-2108-90. eCollection 2022.

Abstract

Stimulator of interferon genes (STING) plays a significant role in a cell's intracellular defense against pathogens or self-DNA by inducing inflammation or apoptosis through a pathway known as cGAS-cGAMP-STING. STING uses one of its domains, the C-terminal tail (CTT) to recruit the members of the pathway. However, the structure of this domain has not been solved experimentally. STING conformation is open and more flexible when inactive. When STING gets activated by cGAMP, its conformation changes to a closed state covered by 4 beta-sheets over the binding site. This conformational change leads to its binding to Tank-binding kinase 1 (TBK1). TBK1 then phosphorylates STING aiding its entry to the cell's nucleus. In this study, we focused on the loop modeling of the CTT domain in both the active and inactive STING conformations. After the modeling step, the active and inactive STING structures were docked to one of the cGAS-cGAMP-STING pathway members, TBK1, to observe the differences of binding modes. CTT loop stayed higher in the active structure, while all the best-scored models, active or inactive, ended up around the same position with respect to TBK1. However, when the STING poses are compared with the cryo-EM image of the complex structure, the models in the active structure chain B displayed closer results to the complex structure.

摘要

干扰素基因刺激因子(STING)在细胞对病原体或自身DNA的细胞内防御中发挥着重要作用,它通过一种称为cGAS-cGAMP-STING的途径诱导炎症或凋亡。STING利用其一个结构域,即C末端尾巴(CTT)来招募该途径的成员。然而,这个结构域的结构尚未通过实验解析出来。STING在无活性时构象开放且更灵活。当STING被cGAMP激活时,其构象会转变为一种封闭状态,在结合位点上覆盖有4个β折叠。这种构象变化导致它与Tank结合激酶1(TBK1)结合。然后TBK1使STING磷酸化,帮助其进入细胞核。在本研究中,我们专注于在活性和非活性STING构象中CTT结构域的环建模。建模步骤完成后,将活性和非活性STING结构与cGAS-cGAMP-STING途径成员之一TBK1进行对接,以观察结合模式的差异。CTT环在活性结构中位置更高,而所有得分最高的模型,无论活性还是非活性,相对于TBK1最终都处于大致相同的位置。然而,当将STING的姿态与复合结构的冷冻电镜图像进行比较时,活性结构链B中的模型显示出与复合结构更接近的结果。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/a697/10393098/8eed299b1e99/turkjbiol-46-1-69f1.jpg

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