Faculty of Life Sciences, Institute of Biochemistry, Leipzig University, Brüderstr. 34, 04103 Leipzig, Germany.
Medical Faculty, Institute of Medical Physics and Biophysics, Leipzig University, Haertelstasse 16-18, 04107 Leipzig, Germany.
Int J Mol Sci. 2023 Jul 30;24(15):12197. doi: 10.3390/ijms241512197.
Many peptide-activated rhodopsin-like GPCRs share a β-hairpin folding motif in the extracellular loop 2 (ECL2), which interacts with the peptide ligand while at the same time being connected to transmembrane helix 3 (TM3) via a highly conserved disulfide bond. Currently, it remains unknown whether the coupling of the specifically shaped ECL2 to TM3 influences the activation of peptide-activated GPCRs. We investigated this possibility in a selection of peptide GPCRs with known structures. Most of the receptors with cysteine to alanine mutations folded like the respective wild-type and resided in the cell membrane, challenging pure folding stabilization by the disulfide bridge. G-protein signaling of the disulfide mutants was retained to a greater extent in secretin-like GPCRs than in rhodopsin-like GPCRs, while recruitment of arrestin was completely abolished in both groups, which may be linked to alterations in ligand residence time. We found a correlation between receptor activity of the neuropeptide Y receptor and alterations in ECL2 dynamics using engineered disulfide bridges or site-directed spin labeling and EPR spectroscopy. These data highlight the functional importance of the TM3-ECL2 link for the activation of specific signaling pathways in peptide-activated GPCRs, which might have implications for future drug discovery.
许多肽激活的类似视紫红质 G 蛋白偶联受体 (GPCR) 在细胞外环 2 (ECL2) 中具有 β 发夹折叠模体,该模体与肽配体相互作用,同时通过高度保守的二硫键与跨膜螺旋 3 (TM3) 相连。目前,尚不清楚 ECL2 与 TM3 的特定连接是否会影响肽激活的 GPCR 的激活。我们在一组具有已知结构的肽 GPCR 中研究了这种可能性。大多数具有半胱氨酸到丙氨酸突变的受体像各自的野生型一样折叠,并位于细胞膜中,这对二硫键的纯折叠稳定构成了挑战。与视紫红质样 GPCR 相比,在分泌素样 GPCR 中二硫键突变体的 G 蛋白信号转导保留得更多,而在两组中,衔接蛋白的募集都完全被废除,这可能与配体停留时间的改变有关。我们使用工程化的二硫键或定点自旋标记和 EPR 光谱法,发现了神经肽 Y 受体的受体活性与 ECL2 动力学改变之间的相关性。这些数据突出了 TM3-ECL2 连接对于肽激活的 GPCR 中特定信号通路激活的功能重要性,这可能对未来的药物发现具有重要意义。