Centro de Biotecnología y Genómica de Plantas (CBGP, UPM-INIA), Universidad Politécnica de Madrid (UPM) - Instituto Nacional de Investigación y Tecnología Agraria y Alimentaria (INIA), Campus de Montegancedo-UPM, 28223, Pozuelo de Alarcón, Madrid, Spain.
Departamento de Biotecnología-Biología Vegetal, Escuela Técnica Superior de Ingeniería Agronómica, Alimentaria y de Biosistemas (ETSIAAB), Universidad Politécnica de Madrid (UPM), 28040, Madrid, Spain.
Sci Rep. 2020 Mar 31;10(1):5714. doi: 10.1038/s41598-020-62833-y.
CD1 molecules present lipid antigens for recognition by T-cell receptors (TCRs). Although a reasonably detailed picture of the CD1-lipid-TCR interaction exists, the initial steps regarding lipid loading onto and exchange between CD1 proteins remain elusive. The hydrophobic nature of lipids and the fact that CD1 molecules are unable to extract lipids from membranes raise the need for the assistance of helper proteins in lipid trafficking. However, the experimental study of this traffic in the endosomal compartments at which it occurs is so challenging that computational studies can help provide mechanistic insight into the associated processes. Here we present a multifaceted computational approach to obtain dynamic structural data on the human CD1d isotype. Conformational dynamics analysis shows an intrinsic flexibility associated with the protein architecture. Electrostatic properties together with molecular dynamics results for CD1d complexes with several lipids and helper proteins unravel the high dynamic plasticity of the antigen-binding site that is crucially favoured by acidic pH and the presence of helper proteins.
CD1 分子呈现脂质抗原,以供 T 细胞受体 (TCR) 识别。尽管已经对 CD1-脂质-TCR 相互作用有了相当详细的了解,但关于 CD1 蛋白上的脂质加载和交换的初始步骤仍然难以捉摸。脂质的疏水性以及 CD1 分子无法从膜中提取脂质这一事实,使得它们需要辅助蛋白的帮助来进行脂质运输。然而,在发生这种运输的内体隔室中对这种运输进行实验研究极具挑战性,因此计算研究可以帮助提供对相关过程的机制见解。在这里,我们提出了一种多方面的计算方法来获得人类 CD1d 同种型的动态结构数据。构象动力学分析显示出与蛋白质结构相关的固有灵活性。静电特性以及 CD1d 与几种脂质和辅助蛋白的复合物的分子动力学结果揭示了抗原结合位点的高动态可塑性,这种可塑性主要受到酸性 pH 和辅助蛋白的存在的影响。