Hui Kwokyin, Feng Zhong-Ping
Department of Physiology, Faculty of Medicine, University of Toronto, Toronto, Canada M5S 1A8.
Eur J Neurosci. 2008 Feb;27(3):631-43. doi: 10.1111/j.1460-9568.2008.06023.x. Epub 2008 Feb 6.
Local voltage-gated calcium channels, which regulate intracellular Ca2+ levels by allowing Ca2+ influx, play an important role in guiding and shaping growth cones, and in regulating the outgrowth and branching of neurites. Therefore, elucidating the mechanisms that regulate the biophysical properties of whole-cell calcium currents in the growth cones and somata of growing neurons is important to improving our understanding of neuronal development and regeneration. In this study, taking advantage of the large size of the pedal A (PeA) neurons in Lymnaea stagnalis, we compared the biophysical properties of somata and growth cone whole-cell calcium channel currents using Ba2+ and Ca2+ as current carriers. We found that somata and growth cone currents exhibit similar high-voltage activation properties. However, Ba2+ and Ca2+ currents in growth cones and somata are differentially affected by a dominant-negative peptide containing the C-terminal amino acid sequence of neuronal calcium sensor-1 (NCS-1). The peptide selectively reduces the peak and sustained components of current densities and the slope conductance in growth cones, and shifts the reversal potential of the growth cone currents to more hyperpolarized voltages. In contrast, the peptide had no significant effect on the somata calcium channels. Thus, we conclude that NCS-1 differentially modulates Ca2+ currents in the somata and growth cones of regenerating neurons, and may serve as a key regulator to facilitate the growth cone calcium channel activity.
局部电压门控钙通道通过允许钙离子内流来调节细胞内钙离子水平,在引导和塑造生长锥以及调节神经突的生长和分支方面发挥着重要作用。因此,阐明调节生长中神经元的生长锥和胞体中全细胞钙电流生物物理特性的机制,对于增进我们对神经元发育和再生的理解至关重要。在本研究中,利用椎实螺中足A(PeA)神经元体积较大的特点,我们以钡离子和钙离子作为电流载体,比较了胞体和生长锥全细胞钙通道电流的生物物理特性。我们发现胞体和生长锥电流表现出相似的高电压激活特性。然而,生长锥和胞体中的钡离子和钙离子电流受到一种包含神经元钙传感器-1(NCS-1)C端氨基酸序列的显性负性肽的不同影响。该肽选择性地降低了生长锥中电流密度的峰值和持续成分以及斜率电导,并将生长锥电流的反转电位向更超极化的电压方向移动。相比之下,该肽对胞体钙通道没有显著影响。因此,我们得出结论,NCS-1对再生神经元的胞体和生长锥中的钙离子电流进行不同程度的调节,并且可能作为促进生长锥钙通道活性的关键调节因子。