Gottfried-Schatz-Research-Center - Biophysics, Medical University of Graz, Graz, Austria.
Institute of Pharmacology, Medical University of Vienna, Vienna, Austria.
EMBO Rep. 2022 Jul 5;23(7):e54276. doi: 10.15252/embr.202154276. Epub 2022 May 23.
Coordination of lipids within transient receptor potential canonical channels (TRPCs) is essential for their Ca signaling function. Single particle cryo-EM studies identified two lipid interaction sites, designated L1 and L2, which are proposed to accommodate diacylglycerols (DAGs). To explore the role of L1 and L2 in TRPC3 function, we combined structure-guided mutagenesis and electrophysiological recording with molecular dynamics (MD) simulations. MD simulations indicate rapid DAG accumulation within both L1 and L2 upon its availability within the plasma membrane. Electrophysiological experiments using a photoswitchable DAG-probe reveal potentiation of TRPC3 currents during repetitive activation by DAG. Importantly, initial DAG exposure generates a subsequently sensitized channel state that is associated with significantly faster activation kinetics. TRPC3 sensitization is specifically promoted by mutations within L2, with G652A exhibiting sensitization at very low levels of active DAG. We demonstrate the ability of TRPC3 to adopt a closed state conformation that features partial lipidation of L2 sites by DAG and enables fast activation of the channel by the phospholipase C-DAG pathway.
脂质在瞬时受体电位经典通道(TRPCs)内的协调对于它们的 Ca 信号传导功能至关重要。单颗粒冷冻电镜研究鉴定了两个脂质相互作用位点,分别命名为 L1 和 L2,它们被认为可以容纳二酰基甘油(DAG)。为了探究 L1 和 L2 在 TRPC3 功能中的作用,我们结合结构指导的突变和电生理记录与分子动力学(MD)模拟。MD 模拟表明,在质膜内 DAG 可用时,L1 和 L2 内的 DAG 迅速积累。使用光可切换的 DAG 探针进行的电生理实验表明,DAG 在重复激活时会增强 TRPC3 电流。重要的是,初始 DAG 暴露会产生随后敏化的通道状态,这与明显更快的激活动力学相关。TRPC3 的敏化是由 L2 内的突变特异性促进的,其中 G652A 在非常低水平的活性 DAG 下表现出敏化。我们证明了 TRPC3 能够采用一种封闭状态构象,其特征是 DAG 对 L2 位点的部分脂化,并使通道能够通过 PLC-DAG 途径快速激活。