School of Biomedical Sciences, Faculty of Biological Sciences, University of Leeds, Leeds, UK.
Department of Cellular and Integrative Physiology, University of Texas Health San Antonio, San Antonio, TX, USA.
J Physiol. 2021 Apr;599(7):2103-2123. doi: 10.1113/JP281331. Epub 2021 Mar 3.
Rat somatosensory neurons express a junctional protein, junctophilin-4 (JPH4) JPH4 is necessary for the formation of store operated Ca entry (SOCE) complex at the junctions between plasma membrane and endoplasmic reticulum in these neurons. Knockdown of JPH4 impairs endoplasmic reticulum Ca store refill and junctional Ca signalling in sensory neurons. In vivo knockdown of JPH4 in the dorsal root ganglion (DRG) sensory neurons significantly attenuated experimentally induced inflammatory pain in rats. Junctional nanodomain Ca signalling maintained by JPH4 is an important contributor to the inflammatory pain mechanisms.
Junctions of endoplasmic reticulum and plasma membrane (ER-PM junctions) form signalling nanodomains in eukaryotic cells. ER-PM junctions are present in peripheral sensory neurons and are important for the fidelity of G protein coupled receptor (GPCR) signalling. Yet little is known about the assembly, maintenance and physiological role of these junctions in somatosensory transduction. Using fluorescence imaging, proximity ligation, super-resolution microscopy, in vitro and in vivo gene knockdown we demonstrate that a member of the junctophilin protein family, junctophilin-4 (JPH4), is necessary for the formation of store operated Ca entry (SOCE) complex at the ER-PM junctions in rat somatosensory neurons. Thus we show that JPH4 localises to the ER-PM junctional areas and co-clusters with SOCE proteins STIM1 and Orai1 upon ER Ca store depletion. Knockdown of JPH4 impairs SOCE and ER Ca store refill in sensory neurons. Furthermore, we demonstrate a key role of the JPH4 and junctional nanodomain Ca signalling in the pain-like response induced by the inflammatory mediator bradykinin. Indeed, an in vivo knockdown of JPH4 in the dorsal root ganglion (DRG) sensory neurons significantly shortened the duration of nocifensive behaviour induced by hindpaw injection of bradykinin in rats. Since the ER supplies Ca for the excitatory action of multiple inflammatory mediators, we suggest that junctional nanodomain Ca signalling maintained by JPH4 is an important contributor to the inflammatory pain mechanisms.
大鼠感觉神经元表达一种连接蛋白 junctophilin-4(JPH4)。JPH4 对于感觉神经元的质膜和内质网之间的连接点处的储存操作的钙内流(SOCE)复合物的形成是必需的。JPH4 的敲低会损害感觉神经元内质网钙库的再填充和连接点钙信号转导。体内敲低背根神经节(DRG)感觉神经元中的 JPH4 可显著减轻大鼠实验性炎症性疼痛。由 JPH4 维持的连接点纳米域钙信号转导是炎症性疼痛机制的重要贡献者。
内质网和质膜的连接(ER-PM 连接)在真核细胞中形成信号纳米域。ER-PM 连接存在于周围感觉神经元中,对于 G 蛋白偶联受体(GPCR)信号的保真度很重要。然而,对于这些连接在感觉转导中的组装、维持和生理作用知之甚少。使用荧光成像、接近连接、超分辨率显微镜、体外和体内基因敲低,我们证明了 junctophilin 蛋白家族的成员之一,junc-tophilin-4(JPH4),对于大鼠感觉神经元内质网-质膜连接点处的储存操作的钙内流(SOCE)复合物的形成是必需的。因此,我们表明 JPH4 定位于 ER-PM 连接区域,并在 ER Ca 库耗竭时与 SOCE 蛋白 STIM1 和 Orai1 共聚类。JPH4 的敲低会损害感觉神经元中的 SOCE 和 ER Ca 库再填充。此外,我们证明了 JPH4 和连接纳米域钙信号转导在由炎症介质缓激肽诱导的痛觉样反应中的关键作用。事实上,体内敲低背根神经节(DRG)感觉神经元中的 JPH4 可显著缩短大鼠后爪注射缓激肽诱导的伤害性行为的持续时间。由于 ER 为多种炎症介质的兴奋作用提供 Ca,我们认为由 JPH4 维持的连接纳米域钙信号转导是炎症性疼痛机制的重要贡献者。