Ofer Netanel, Cornejo Victor Hugo, Yuste Rafael
Neurotechnology Center, Department Biological Sciences, Columbia University, New York, NY 10027, USA.
iScience. 2024 Sep 5;27(10):110884. doi: 10.1016/j.isci.2024.110884. eCollection 2024 Oct 18.
The propagation of action potentials along axons is traditionally considered reliable due to the high safety factor for axonal spike transmission. However, numerical simulations suggest that high-frequency spikes could fail to invade distal axonal branches. To explore this experimentally , we used an axonal-targeted calcium indicator to image action potentials at axonal terminal branches in the superficial layers of mouse somatosensory cortical neurons. We activated axons with an extracellular electrode, varying stimulation frequencies, and analyzed the images to computationally extract axonal morphologies and associated calcium responses. We found that axonal boutons have higher calcium accumulations than their axonal shafts, as was reported . However, contrary to previous results, our data reveal spike failures at high spike frequencies in a significant subset of branches as a function of branching geometry. These findings suggest that axonal morphologies could contribute to signal processing in the cortex.
由于轴突动作电位传播具有较高的安全系数,传统上认为动作电位沿轴突的传播是可靠的。然而,数值模拟表明高频尖峰可能无法侵入轴突远端分支。为了对此进行实验探索,我们使用了一种轴突靶向钙指示剂来成像小鼠体感皮层神经元表层轴突终末分支处的动作电位。我们用细胞外电极激活轴突,改变刺激频率,并分析图像以通过计算提取轴突形态和相关的钙反应。正如所报道的,我们发现轴突终扣比其轴突干具有更高的钙积累。然而,与之前的结果相反,我们的数据显示在相当一部分分支中,高尖峰频率下会出现尖峰失败,这是分支几何形状的一个函数。这些发现表明轴突形态可能对皮层中的信号处理有贡献。