Graeber Elisabeth, Korkhov Volodymyr M
Laboratory of Biomolecular Research, Division of Biology and Chemistry, Paul Scherrer Institute, Villigen, Switzerland.
Laboratory of Biomolecular Research, Division of Biology and Chemistry, Paul Scherrer Institute, Villigen, Switzerland; Institute of Biochemistry, ETH, Zurich, Switzerland.
Protein Expr Purif. 2019 Dec;164:105456. doi: 10.1016/j.pep.2019.105456. Epub 2019 Jul 19.
The translocator protein TSPO is in an important diagnostic and therapeutic target in a range of pathologies, including neuroinflammation and cancer. Despite the availability of several structures of TSPO homologues, our understanding of the molecular determinants that govern high-affinity interactions of TSPO with its ligands is incomplete. Here, in order to decipher the key structural elements of TSPO responsible for interactions with its ligands, we designed a panel of chimeric proteins mimicking the mammalian substrate binding site grafted onto the backbone of the Rhodobacter sphaeroides TSPO homologue, RsTSPO. One of the designed chimeric constructs, RsMouse, could be heterologously expressed and displayed improved binding affinities for the known TSPO drugs diazepam, PK11195 and NBD-FGIN-1-27. Furthermore, the chimeric protein had improved interactions with NBD-cholesterol, a fluorescent analogue of the presumed natural substrate of TSPO. Partial modifications of the transmembrane helix bundle in the chimeric construct differentially affected binding of the TSPO drugs and the natural substrates of TSPO, consistent with the presence of multiple ligand binding sites in the protein. Based on the available structures of TSPO homologues, the substrate interactions may involve a lateral opening of the protein in the TM1-3, and stabilisation of TM4-5 is important for drug-like ligand binding. These observations are consistent with our experimental results, which show that the determinants of high-affinity ligand interactions of TSPO are distinct for different classes of ligands.
转运蛋白TSPO是一系列病理状况(包括神经炎症和癌症)中重要的诊断和治疗靶点。尽管已有几种TSPO同源物的结构,但我们对控制TSPO与其配体高亲和力相互作用的分子决定因素的理解仍不完整。在此,为了解析TSPO中负责与配体相互作用的关键结构元件,我们设计了一组嵌合蛋白,这些蛋白模拟了嫁接到球形红杆菌TSPO同源物RsTSPO主链上的哺乳动物底物结合位点。其中一种设计的嵌合构建体RsMouse能够异源表达,并对已知的TSPO药物地西泮、PK11195和NBD-FGIN-1-27表现出更高的结合亲和力。此外,该嵌合蛋白与NBD-胆固醇(TSPO假定天然底物的荧光类似物)的相互作用得到了改善。嵌合构建体中跨膜螺旋束的部分修饰对TSPO药物和TSPO天然底物的结合产生了不同影响,这与该蛋白中存在多个配体结合位点一致。基于TSPO同源物的现有结构,底物相互作用可能涉及蛋白在TM1-3处的侧向开放,并且TM4-5的稳定对于类药物配体的结合很重要。这些观察结果与我们的实验结果一致,表明TSPO高亲和力配体相互作用的决定因素对于不同类别的配体是不同的。