Department of Neuroscience and Vickie and Jack Farber Institute for Neuroscience, Sidney Kimmel Medical College, Thomas Jefferson University, Philadelphia, PA, USA.
Jefferson College of Life Sciences, Thomas Jefferson University, Philadelphia, PA, USA.
FASEB J. 2021 Jan;35(1):e21241. doi: 10.1096/fj.201901877R.
The voltage-gated potassium channel Kv3.4 is a crucial regulator of nociceptive signaling in the dorsal root ganglion (DRG) and the dorsal horn of the spinal cord. Moreover, Kv3.4 dysfunction has been linked to neuropathic pain. Although kinases and phosphatases can directly modulate Kv3.4 gating, the signaling mechanisms regulating the expression and stability of the Kv3.4 protein are generally unknown. We explored a potential role of PKCε and found an unexpected interaction that has a positive effect on Kv3.4 expression. Co-immunoprecipitation studies revealed a physical association between PKCε and Kv3.4 in both heterologous cells and rat DRG neurons. Furthermore, in contrast to the wild-type and constitutively active forms of PKCε, expression of a catalytically inactive form of the enzyme inhibits Kv3.4 expression and membrane localization through a dominant negative effect. Co-expression of Kv3.4 with the wild-type, constitutively active, or catalytically inactive forms of PKCε had no significant effects on Kv3.4 gating. These results suggest that a novel physical interaction of the Kv3.4 channel with functional PKCε primarily determines its stability and localization in DRG neurons. This interaction is akin to those of previously identified accessory ion channel proteins, which could be significant in neural tissues where Kv3.4 regulates electrical signaling.
电压门控钾通道 Kv3.4 是背根神经节(DRG)和脊髓背角中伤害性信号传导的关键调节剂。此外,Kv3.4 功能障碍与神经性疼痛有关。尽管激酶和磷酸酶可以直接调节 Kv3.4 的门控,但调节 Kv3.4 蛋白表达和稳定性的信号机制通常未知。我们探讨了 PKCε 的潜在作用,并发现了一种对 Kv3.4 表达具有积极影响的意想不到的相互作用。共免疫沉淀研究表明,PKCε 与异源细胞和大鼠 DRG 神经元中的 Kv3.4 之间存在物理关联。此外,与 PKCε 的野生型和组成激活形式相反,酶的催化失活形式的表达通过显性负作用抑制 Kv3.4 的表达和膜定位。Kv3.4 与 PKCε 的野生型、组成激活型或催化失活型的共表达对 Kv3.4 的门控没有显著影响。这些结果表明,Kv3.4 通道与功能性 PKCε 的新型物理相互作用主要决定了其在 DRG 神经元中的稳定性和定位。这种相互作用类似于先前鉴定的辅助离子通道蛋白的相互作用,这在 Kv3.4 调节电信号的神经组织中可能很重要。