Institut de Génomique Fonctionnelle, Univ. Montpellier, CNRS, INSERM, 141 rue de la Cardonille, 34094, Montpellier Cedex 05, France.
Centre de Biologie Structurale (CBS), Univ. Montpellier, CNRS, INSERM, Montpellier, France.
Sci Adv. 2023 Jun 2;9(22):eadf1378. doi: 10.1126/sciadv.adf1378.
Allosteric modulators bear great potential to fine-tune neurotransmitter action. Promising targets are metabotropic glutamate (mGlu) receptors, which are associated with numerous brain diseases. Orthosteric and allosteric ligands act in synergy to control the activity of these multidomain dimeric GPCRs. Here, we analyzed the effect of such molecules on the concerted conformational changes of full-length mGlu2 at the single-molecule level. We first established FRET sensors through genetic code expansion combined with click chemistry to monitor conformational changes on live cells. We then used single-molecule FRET and show that orthosteric agonist binding leads to the stabilization of most of the glutamate binding domains in their closed state, while the reorientation of the dimer into the active state remains partial. Allosteric modulators, interacting with the transmembrane domain, are required to stabilize the fully reoriented active dimer. These results illustrate how concerted conformational changes within multidomain proteins control their activity, and how these are modulated by allosteric ligands.
变构调节剂具有精细调节神经递质作用的巨大潜力。有前途的靶标是代谢型谷氨酸(mGlu)受体,它与许多脑部疾病有关。变构和变构配体协同作用来控制这些多域二聚体 GPCR 的活性。在这里,我们在单细胞水平上分析了这些分子对全长 mGlu2 协同构象变化的影响。我们首先通过遗传密码扩展结合点击化学建立 FRET 传感器,以监测活细胞中的构象变化。然后,我们使用单分子 FRET,并表明变构激动剂结合导致大多数谷氨酸结合域在其封闭状态下稳定,而二聚体进入活性状态的重新取向仍然是部分的。与跨膜域相互作用的变构调节剂,需要稳定完全重新定向的活性二聚体。这些结果说明了多域蛋白内的协同构象变化如何控制它们的活性,以及变构配体如何调节它们。