体内感觉轴突的直径具有时空差异,并受细胞微环境的影响。

Kaitlin Ching, Alvaro Sagasti
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引用次数: 0

摘要

细胞形状对细胞功能至关重要,尤其是在神经元中。轴突和树突的横截面直径(也称为直径)是神经元形状的一个重要参数,它对动作电位传播速度的影响最为重要。大多数关于轴突直径的研究都集中在细胞范围的调节上,并假设直径是静态的。在这里,我们研究了斑马鱼触摸感应神经元在胚胎阶段外周轴突轴突直径的局部变化和动态,在性别决定之前。为了获得体内口径的绝对测量,我们将稀疏膜标记与活鱼神经元的超分辨率显微镜配对。我们发现轴突片段具有静脉曲张或“珍珠”形态,因此沿其长度的口径不同,与哺乳动物系统的报道一致。姊妹轴突段起源于轴突乔木中最近的分支点,其平均口径在很大程度上是相互独立的。轴突直径在分支点上逐渐变细,表明动作电位电导可能在这些传入轴突中更受青睐。口径在分钟的时间尺度上是动态的,并且这种动态随着开发过程而变化。通过测量与分裂上皮细胞相邻的轴突的直径,我们发现细胞微环境是轴突直径跨越空间和时间变化的潜在多重驱动因素之一。我们的发现提出了轴突直径的时空变化可能显著影响神经元生理的可能性。意义说明:轴突直径直接影响神经元向其他细胞发送信息的速度,并可能在神经元的整体健康中发挥作用。在周围神经系统中,神经元覆盖的距离特别长,细胞的形状可以决定动物是否成功地执行诸如逃跑反应之类的行为。我们发现,在同一个细胞内,轴突的直径可以在不同的位置变化,而且是高度动态的。考虑到这些变化,神经科学家可以更好地估计神经回路中细胞的传输速度。此外,我们发现,当附近的细胞改变形状时,轴突的直径也会扭曲。因此,细胞微环境是一个潜在的许多贡献者口径动态,扩大我们的轴突口径决定因素的观点。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Caliber of zebrafish touch-sensory axons is dynamic in vivo.

Cell shape is crucial to cell function, particularly in neurons. The cross-sectional diameter, also known as caliber, of axons and dendrites is an important parameter of neuron shape, best appreciated for its influence on the speed of action potential propagation. Many studies of axon caliber focus on cell-wide regulation and assume that caliber is static. Here, we have characterized local variation and dynamics of axon caliber in vivo using the peripheral axons of zebrafish touch-sensing neurons at embryonic stages, prior to sex determination. To obtain absolute measurements of caliber in vivo, we paired sparse membrane labeling with super-resolution microscopy of neurons in live fish. We observed that axon segments had varicose or "pearled" morphologies, and thus vary in caliber along their length, consistent with reports from mammalian systems. Sister axon segments originating from the most proximal branch point in the axon arbor had average calibers that were uncorrelated with each other. Axon caliber also tapered across the branch point. Varicosities and caliber, overall, were dynamic on the timescale of minutes, and dynamicity changed over the course of development. By measuring the caliber of axons adjacent to dividing epithelial cells, we found that skin cell division is one aspect of the cellular microenvironment that may drive local differences and dynamics in axon caliber. Our findings support the possibility that spatial and temporal variation in axon caliber could significantly influence neuronal physiology.

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