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In vivo imaging of neural reactive plasticity after laser axotomy in cerebellar cortex

机译:小脑皮质激光轴突切开术后神经反应可塑性的体内成像

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Multi-photon imaging provides valuable insights into the continuous reshaping of neuronal connectivity in live brain. We previously showed that single neuron or even single spine ablation can be achieved by laser-mediated dissection. Furthermore, single axonal branches can be dissected avoiding collateral damage to the adjacent dendrite and the formation of a persistent glial scar. Here, we describe the procedure to address the structural plasticity of cerebellar climbing fibers by combining two-photon in vivo imaging with laser axotomy in a mouse model. This method is a powerful tool to study the basic mechanisms of axonal rewiring after single branch axotomy in vivo. In fact, despite the denervated area being very small, the injured axons consistently reshape the connectivity with surrounding neurons, as indicated by the increase in the turnover of synaptic boutons. In addition, time-lapse imaging reveals the sprouting of new branches from the injured axon. Newly formed branches with varicosities suggest the possible formation of synaptic contacts. Correlative light and electron microscopy revealed that the sprouted branch contains large numbers of vesicles, with varicosities in the close vicinity of Purkinje dendrites.
机译:多光子成像为活脑中神经元连通性的持续重塑提供了宝贵的见识。我们以前的研究表明,通过激光介导的夹层可以实现单个神经元甚至单个脊柱的消融。此外,可以解剖单个轴突分支,避免对相邻树突的附带损害和持续的神经胶质疤痕的形成。在这里,我们描述了通过在小鼠模型中结合双光子体内成像与激光轴切术来解决小脑攀爬纤维的结构可塑性的程序。该方法是研究体内单分支切开术后轴突重新布线的基本机制的有力工具。实际上,尽管神经支配区域很小,但受伤的轴突仍在不断重塑与周围神经元的连接性,如突触钮扣周转的增加所表明的那样。此外,延时成像显示受伤的轴突会萌发新的分支。新形成的具有静脉曲张的分支表明可能形成突触接触。相关的光学和电子显微镜检查显示,发芽的分支包含大量囊泡,在附近的浦肯野树突中有静脉曲张。

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