Centre Borelli, ENS Paris-Saclay, CNRS, Université Paris-Saclay, 4 Avenue des Sciences, F-91190 Gif-sur-Yvette, France.
Int J Mol Sci. 2022 Jan 29;23(3):1589. doi: 10.3390/ijms23031589.
RTK KIT regulates a variety of crucial cellular processes via its cytoplasmic domain (CD), which is composed of the tyrosine kinase domain, crowned by the highly flexible domains-the juxtamembrane region, kinase insertion domain, and C-tail, which are key recruitment regions for downstream signalling proteins. To prepare a structural basis for the characterization of the interactions of KIT with its signalling proteins (KIT INTERACTOME), we generated the 3D model of the full-length CD attached to the transmembrane helix. This generic model of KIT in inactive state was studied by molecular dynamics simulation under conditions mimicking the natural environment of KIT. With the accurate atomistic description of the multidomain KIT dynamics, we explained its intrinsic (intra-domain) and extrinsic (inter-domain) disorder and represented the conformational assemble of KIT through free energy landscapes. Strongly coupled movements within each domain and between distant domains of KIT prove the functional interdependence of these regions, described as allosteric regulation, a phenomenon widely observed in many proteins. We suggested that KIT, in its inactive state, encodes all properties of the active protein and its post-transduction events.
RTK 试剂盒通过其细胞质结构域 (CD) 调节多种关键的细胞过程,该结构域由酪氨酸激酶结构域组成,其顶部是高度灵活的结构域 - 近膜区、激酶插入区和 C 尾,这些结构域是下游信号蛋白的关键募集区域。为了为 KIT 与其信号蛋白(KIT 相互作用组)的相互作用的特征提供结构基础,我们生成了与跨膜螺旋相连的全长 CD 的 3D 模型。在模拟 KIT 自然环境的条件下,通过分子动力学模拟研究了这种无活性状态的 KIT 通用模型。通过对多结构域 KIT 动力学的精确原子描述,我们解释了其内在(结构域内)和外在(结构域间)的无序性,并通过自由能景观表示了 KIT 的构象组装。KIT 中每个结构域内和远隔结构域之间的强耦合运动证明了这些区域的功能相互依赖性,这种现象在许多蛋白质中广泛存在,被描述为变构调节。我们认为,无活性状态的 KIT 编码了活性蛋白及其转导后事件的所有特性。