Calderón-Rivera Aida, Sandoval Alejandro, González-Ramírez Ricardo, González-Billault Christian, Felix Ricardo
School of Medicine FES Iztacala, National Autonomous University of Mexico (UNAM), Tlalnepantla, Mexico.
Department of Molecular Biology and Histocompatibility, "Dr. Manuel Gea González" General Hospital, Ministry of Health, Mexico City, Mexico.
PLoS One. 2015 Mar 11;10(3):e0119134. doi: 10.1371/journal.pone.0119134. eCollection 2015.
Low voltage-activated (LVA) T-type Ca2+ channels activate in response to subthreshold membrane depolarizations and therefore represent an important source of Ca2+ influx near the resting membrane potential. In neurons, these proteins significantly contribute to control relevant physiological processes including neuronal excitability, pacemaking and post-inhibitory rebound burst firing. Three subtypes of T-type channels (Cav3.1 to Cav3.3) have been identified, and using functional expression of recombinant channels diverse studies have validated the notion that T-type Ca2+ channels can be modulated by various endogenous ligands as well as by second messenger pathways. In this context, the present study reveals a previously unrecognized role for cyclin-dependent kinase 5 (Cdk5) in the regulation of native T-type channels in N1E-115 neuroblastoma cells, as well as recombinant Cav3.1channels heterologously expressed in HEK-293 cells. Cdk5 and its co-activators play critical roles in the regulation of neuronal differentiation, cortical lamination, neuronal cell migration and axon outgrowth. Our results show that overexpression of Cdk5 causes a significant increase in whole cell patch clamp currents through T-type channels in N1E-115 cells, while siRNA knockdown of Cdk5 greatly reduced these currents. Consistent with this, overexpression of Cdk5 in HEK-293 cells stably expressing Cav3.1channels upregulates macroscopic currents. Furthermore, using site-directed mutagenesis we identified a major phosphorylation site at serine 2234 within the C-terminal region of the Cav3.1subunit. These results highlight a novel role for Cdk5 in the regulation of T-type Ca2+ channels.
低电压激活(LVA)的T型Ca2+通道可响应阈下膜去极化而激活,因此是静息膜电位附近Ca2+内流的重要来源。在神经元中,这些蛋白对控制相关生理过程有显著作用,包括神经元兴奋性、起搏以及抑制后反弹爆发性放电。已鉴定出三种T型通道亚型(Cav3.1至Cav3.3),通过重组通道的功能表达,各种研究证实了T型Ca2+通道可被多种内源性配体以及第二信使途径调节的观点。在此背景下,本研究揭示了细胞周期蛋白依赖性激酶5(Cdk5)在调节N1E-115神经母细胞瘤细胞中的天然T型通道以及在HEK-293细胞中异源表达的重组Cav3.1通道方面,存在此前未被认识到的作用。Cdk5及其共激活因子在神经元分化、皮质分层、神经元细胞迁移和轴突生长的调节中起关键作用。我们的结果表明,Cdk5的过表达导致N1E-115细胞中通过T型通道的全细胞膜片钳电流显著增加,而Cdk5的siRNA敲低则大大降低了这些电流。与此一致,在稳定表达Cav3.1通道的HEK-293细胞中过表达Cdk5会上调宏观电流。此外,通过定点诱变,我们在Cav3.1亚基C末端区域的丝氨酸2234处鉴定出一个主要磷酸化位点。这些结果突出了Cdk5在调节T型Ca2+通道方面的新作用。