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Polarity of varicosity initiation in central neuron mechanosensation

机译:中枢神经元机械感测中静脉曲张形成的极性

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Little is known about mechanical regulation of morphological and functional polarity of central neurons. In this study, we report that mechanical stress specifically induces varicosities in the axons but not the dendrites of central neurons by activating TRPV4, a Ca~(2+)/Na~(+)-permeable mechanosensitive channel. This process is unexpectedly rapid and reversible, consistent with the formation of axonal varicosities in vivo induced by mechanical impact in a mouse model of mild traumatic brain injury. In contrast, prolonged stimulation of glutamate receptors induces varicosities in dendrites but not in axons. We further show that axonal varicosities are induced by persistent Ca~(2+) increase, disassembled microtubules (MTs), and subsequently reversible disruption of axonal transport, and are regulated by stable tubulin-only polypeptide, an MT-associated protein. Finally, axonal varicosity initiation can trigger action potentials to antidromically propagate to the soma in retrograde signaling. Therefore, our study demonstrates a new feature of neuronal polarity: axons and dendrites preferentially respond to physical and chemical stresses, respectively.
机译:关于中枢神经元的形态和功能极性的机械调节知之甚少。在这项研究中,我们报告说,机械应力通过激活TRPV4(Ca〜(2 +)/ Na〜(+)渗透性机械敏感通道)特异性诱导轴突的静脉曲张,而不诱导中枢神经元的树突。此过程出乎意料地迅速且可逆,与在轻度颅脑损伤的小鼠模型中由机械撞击诱导的体内轴突静脉曲张形成一致。相反,谷氨酸受体的长期刺激在树突中引起静脉曲张,而在轴突中不引起曲张。我们进一步表明,轴突静脉曲张是由持续的Ca〜(2+)增加,分解的微管(MTs)和随后的可逆性轴突运输引起的,并由稳定的微管蛋白-唯一的多肽(一种与MT相关的蛋白质)调控。最后,轴突静脉曲张起始可以触发动作电位,以逆行信号抗性地传播到躯体。因此,我们的研究证明了神经元极性的新特征:轴突和树突分别优先响应物理和化学应力。

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