INSERM U1024-CNRS 8197, Biologie Cellulaire de la Synapse, Institut de Biologie de l'École Normale Supérieure Paris, France.
Front Cell Neurosci. 2013 Nov 26;7:232. doi: 10.3389/fncel.2013.00232. eCollection 2013.
Adenosine triphosphate (ATP)-gated P2X7 receptors (P2X7Rs) are members of the purinergic receptor family that are expressed in several cell types including neurons. A high concentration of ATP is required for the channel opening of P2X7Rs compared to other members of this receptor family. Recent work suggests that ATP binding to members of the P2X receptor family determines the diffusion and localization of these receptors on the plasma membrane of neurons. Here, we employed single particle tracking photoactivated localization microscopy (sptPALM) to study the diffusion and ATP-dependence of rat P2X7Rs. Dendra2-tagged P2X7Rs were transfected in hippocampal neurons and imaged on proximal dendrites. Our results suggest the presence of two populations of P2X7Rs within the extra-synaptic membrane: a population composed of rapidly diffusing receptors and one stabilized within nanoclusters (~100 nm diameter). P2X7R trajectories were rarely observed at synaptic sites. P2X7R mutations in the ATP-binding site (K64A) or the conserved phosphorylation site (K17A) resulted in faster- and slower-diffusing receptors, respectively. Furthermore, ATP differentially accelerated wild type and K17A-mutant receptors but not K64A-mutant receptors. Our results indicate that receptor conformation plays a critical role in regulating ATP-mediated changes in P2X7R diffusion and micro-organization.
三磷酸腺苷(ATP)门控 P2X7 受体(P2X7Rs)是嘌呤能受体家族的成员,在包括神经元在内的多种细胞类型中表达。与该受体家族的其他成员相比,P2X7Rs 的通道开放需要高浓度的 ATP。最近的工作表明,ATP 与 P2X 受体家族成员的结合决定了这些受体在神经元质膜上的扩散和定位。在这里,我们采用单颗粒跟踪光激活定位显微镜(sptPALM)研究大鼠 P2X7Rs 的扩散和 ATP 依赖性。将 Dendra2 标记的 P2X7Rs 转染到海马神经元中,并在近侧树突上成像。我们的结果表明,在突触外膜中存在两种 P2X7R 群体:一种由快速扩散的受体组成,另一种稳定在纳米簇中(~100nm 直径)。P2X7R 轨迹很少在突触部位观察到。位于 ATP 结合位点(K64A)或保守磷酸化位点(K17A)的 P2X7R 突变分别导致受体的扩散更快和更慢。此外,ATP 分别加速了野生型和 K17A 突变型受体,但不能加速 K64A 突变型受体。我们的结果表明,受体构象在调节 P2X7R 扩散和微组织中 ATP 介导的变化中起着关键作用。