Vilin Yury Y, Peters Colin H, Ruben Peter C
Molecular Cardiac Physiology Group, Department of Biomedical Physiology and Kinesiology, Simon Fraser University Burnaby, BC, Canada.
Front Pharmacol. 2012 Jun 11;3:109. doi: 10.3389/fphar.2012.00109. eCollection 2012.
Na(V) channels play a crucial role in neuronal and muscle excitability. Using whole-cell recordings we studied effects of low extracellular pH on the biophysical properties of Na(V)1.2, Na(V)1.4, and Na(V)1.5, expressed in cultured mammalian cells. Low pH produced different effects on different channel subtypes. Whereas Na(V)1.4 exhibited very low sensitivity to acidosis, primarily limited to partial block of macroscopic currents, the effects of low pH on gating in Na(V)1.2 and Na(V)1.5 were profound. In Na(V)1.2 low pH reduced apparent valence of steady-state fast inactivation, shifted the τ(V) to depolarizing potentials and decreased channels availability during onset to slow and use-dependent inactivation (UDI). In contrast, low pH delayed open-state inactivation in Na(V)1.5, right-shifted the voltage-dependence of window current, and increased channel availability during onset to slow and UDI. These results suggest that protons affect channel availability in an isoform-specific manner. A computer model incorporating these results demonstrates their effects on membrane excitability.
钠(V)通道在神经元和肌肉兴奋性中起着关键作用。我们使用全细胞记录技术,研究了低细胞外pH值对培养的哺乳动物细胞中表达的钠(V)1.2、钠(V)1.4和钠(V)1.5生物物理特性的影响。低pH值对不同的通道亚型产生了不同的影响。钠(V)1.4对酸中毒表现出极低的敏感性,主要局限于宏观电流的部分阻断,而低pH值对钠(V)1.2和钠(V)1.5门控的影响则很显著。在钠(V)1.2中,低pH值降低了稳态快速失活的表观价态,将τ(V)移向去极化电位,并在起始至缓慢和使用依赖性失活(UDI)期间降低了通道可用性。相比之下,低pH值延迟了钠(V)1.5中的开放状态失活,使窗口电流的电压依赖性向右移动,并在起始至缓慢和UDI期间增加了通道可用性。这些结果表明,质子以亚型特异性的方式影响通道可用性。一个纳入这些结果的计算机模型展示了它们对膜兴奋性的影响。