Borst A, Single S
Friedrich-Miescher-Laboratory of the Max-Planck-Society, Spemannstrasse 37-39, D-72076, Tuebingen, Germany.
Neurosci Lett. 2000 May 12;285(2):123-6. doi: 10.1016/s0304-3940(00)01043-0.
Analyses of active and passive membrane properties predict an asymmetry in the spread of electrical current through a neuron. Simulated current injection into a large-diameter compartment of a biophysically realistic model neuron causes a local potential shift that can spread throughout the cell. In contrast, causing the same local potential shift in the dendritic tip of the same neuron results in only minimal changes in electrical potential in the rest of the cell. Using calcium as a reporter of electrical activity in neurons in the fly's lobula plate we find that current injected into the thick axon caused depolarization throughout the cell, whereas activation of a dendritic region remained local. These results have important implications for the ability of integrating neurons to perform local computations of synaptic input without additional hardware.
对主动和被动膜特性的分析预测,电流在神经元中的传播存在不对称性。向生物物理逼真的模型神经元的大直径隔室中模拟注入电流会导致局部电位变化,该变化可在整个细胞中传播。相比之下,在同一神经元的树突尖端引起相同的局部电位变化,只会使细胞其余部分的电位发生微小变化。利用钙作为果蝇小叶板中神经元电活动的报告分子,我们发现注入粗轴突的电流会使整个细胞去极化,而树突区域的激活则保持局部性。这些结果对于整合神经元在无需额外硬件的情况下执行突触输入局部计算的能力具有重要意义。