Martin Emily Eischen, Wleklinski Erica, Hoang Hanh T M, Ahmad Mohiuddin
Department of Cell Biology, The University of Oklahoma Health Sciences Center, Oklahoma City, OK, United States.
Front Synaptic Neurosci. 2021 Aug 2;13:705664. doi: 10.3389/fnsyn.2021.705664. eCollection 2021.
AMPA receptors (AMPAR) are organized into supramolecular complexes in association with other membrane proteins that provide exquisite regulation of their biophysical properties and subcellular trafficking. Proline-rich transmembrane protein 1 (PRRT1), also named as SynDIG4, is a component of native AMPAR complexes in multiple brain regions. Deletion of PRRT1 leads to altered surface levels and phosphorylation status of AMPARs, as well as impaired forms of synaptic plasticity. Here, we have investigated the mechanisms underlying the observed regulation of AMPARs by investigating the interaction properties and subcellular localization of PRRT1. Our results show that PRRT1 can interact physically with all AMPAR subunits GluA1-GluA4. We decipher the membrane topology of PRRT1 to find that contrary to the predicted dual membrane pass, only the second hydrophobic segment spans the membrane completely, and is involved in mediating the interaction with AMPARs. We also report a physical interaction of PRRT1 with phosphatase PP2B that dephosphorylates AMPARs during synaptic plasticity. Our co-localization analysis in primary neuronal cultures identifies that PRRT1 associates with AMPARs extrasynaptically where it localizes to early and recycling endosomes as well as to the plasma membrane. These findings advance the understanding of the mechanisms by which PRRT1 regulates AMPARs under basal conditions and during synaptic plasticity.
α-氨基-3-羟基-5-甲基-4-异恶唑丙酸受体(AMPAR)与其他膜蛋白组装成超分子复合物,这些膜蛋白对其生物物理特性和亚细胞转运进行精确调控。富含脯氨酸的跨膜蛋白1(PRRT1),也被称为SynDIG4,是多个脑区天然AMPAR复合物的一个组成部分。PRRT1的缺失会导致AMPAR的表面水平和磷酸化状态发生改变,以及突触可塑性受损。在这里,我们通过研究PRRT1的相互作用特性和亚细胞定位,探讨了观察到的AMPAR调控背后的机制。我们的结果表明,PRRT1能与所有AMPAR亚基GluA1 - GluA4发生物理相互作用。我们解析了PRRT1的膜拓扑结构,发现与预测的双跨膜结构相反,只有第二个疏水片段完全跨越膜,并参与介导与AMPAR的相互作用。我们还报道了PRRT1与磷酸酶PP2B之间的物理相互作用,PP2B在突触可塑性过程中使AMPAR去磷酸化。我们在原代神经元培养物中的共定位分析表明,PRRT1在突触外与AMPAR结合,它定位于早期和循环内体以及质膜。这些发现增进了我们对PRRT1在基础条件下和突触可塑性过程中调控AMPAR机制的理解。