Kole Maarten H P, Hallermann Stefan, Stuart Greg J
Division of Neuroscience, John Curtin School of Medical Research, Australian National University, Canberra 0200, Australian Capital Territory, Australia.
J Neurosci. 2006 Feb 8;26(6):1677-87. doi: 10.1523/JNEUROSCI.3664-05.2006.
The hyperpolarization-activated cation current (Ih) plays an important role in regulating neuronal excitability, yet its native single-channel properties in the brain are essentially unknown. Here we use variance-mean analysis to study the properties of single Ih channels in the apical dendrites of cortical layer 5 pyramidal neurons in vitro. In these neurons, we find that Ih channels have an average unitary conductance of 680 +/- 30 fS (n = 18). Spectral analysis of simulated and native Ih channels showed that there is little or no channel flicker below 5 kHz. In contrast to the uniformly distributed single-channel conductance, Ih channel number increases exponentially with distance, reaching densities as high as approximately 550 channels/microm2 at distal dendritic sites. These high channel densities generate significant membrane voltage noise. By incorporating a stochastic model of Ih single-channel gating into a morphologically realistic model of a layer 5 neuron, we show that this channel noise is higher in distal dendritic compartments and increased threefold with a 10-fold increased single-channel conductance (6.8 pS) but constant Ih current density. In addition, we demonstrate that voltage fluctuations attributable to stochastic Ih channel gating impact on action potential output, with greater spike-timing precision in models with the experimentally determined single-channel conductance. These data suggest that, in the face of high current densities, the small single-channel conductance of Ih is critical for maintaining the fidelity of action potential output.
超极化激活的阳离子电流(Ih)在调节神经元兴奋性方面起着重要作用,但其在大脑中的天然单通道特性基本上仍不清楚。在这里,我们使用方差均值分析来研究体外培养的皮层第5层锥体神经元顶树突中单个Ih通道的特性。在这些神经元中,我们发现Ih通道的平均单位电导为680±30 fS(n = 18)。对模拟和天然Ih通道的频谱分析表明,在5 kHz以下几乎没有通道闪烁。与均匀分布的单通道电导不同,Ih通道数量随距离呈指数增加,在树突远端部位达到高达约550个通道/μm2的密度。这些高通道密度产生显著的膜电压噪声。通过将Ih单通道门控的随机模型纳入第5层神经元的形态逼真模型中,我们表明这种通道噪声在树突远端隔室中更高,并且在单通道电导增加10倍(6.8 pS)但Ih电流密度不变的情况下增加了三倍。此外,我们证明了由随机Ih通道门控引起的电压波动会影响动作电位输出,在具有实验确定的单通道电导的模型中具有更高的峰时精度。这些数据表明,在面对高电流密度时,Ih的小单通道电导对于维持动作电位输出的保真度至关重要。