首页> 外文期刊>The Journal of Physiology >Presynaptic loss of dynamin-related protein 1 impairs synaptic vesicle release and recycling at the mouse calyx of Held
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Presynaptic loss of dynamin-related protein 1 impairs synaptic vesicle release and recycling at the mouse calyx of Held

机译:发动力学相关蛋白1的突触损失损失抑制突触囊泡释放和持有的小鼠Calyx的回收

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Impaired mitochondrial biogenesis and function is implicated in many neurodegenerative diseases, and likely affects synaptic neurotransmission prior to cellular loss. Dynamin-related protein 1 (DRP1) is essential for mitochondrial fission and is disrupted in neurodegenerative disease. In this study, we used the mouse calyx of Held synapse as a model to investigate the impact of presynaptic DRP1 loss on synaptic vesicle (SV) recycling and sustained neurotransmission. In vivo viral expression of Cre recombinase in ventral cochlear neurons of floxed-DRP1 mice generated a presynaptic-specific DRP1 knockout (DRP1-preKO), where the innervated postsynaptic cell was unperturbed. Confocal reconstruction of the calyx terminal suggested SV clusters and mitochondrial content were disrupted, and presynaptic terminal volume was decreased. Using postsynaptic voltage-clamp recordings, we found that DRP1-preKO synapses had larger evoked responses at low frequency stimulation. DRP1-preKO synapses also had profoundly altered short-term plasticity, due to defects in SV recycling. Readily releasable pool size, estimated with high-frequency trains, was dramatically reduced in DRP1-preKO synapses, suggesting an important role for DRP1 in maintenance of release-competent SVs at the presynaptic terminal. Presynaptic Ca2+ accumulation in the terminal was also enhanced in DRP1-preKO synapses. Synaptic transmission defects could be partially rescued with EGTA-AM, indicating close coupling of Ca2+ channels to SV distance normally found in mature terminals may be compromised by DRP1-preKO. Using paired recordings of the presynaptic and postsynaptic compartments, recycling defects could not be reversed by acute dialysis of ATP into the calyx terminals. Taken together, our results implicate a requirement for mitochondrial fission to coordinate postnatal synapse maturation.
机译:受损的线粒体生物发生和功能涉及许多神经变性疾病,并且可能在细胞损失之前影响突触神经递血。 Dynamin相关蛋白1(DRP1)对于线粒体裂变至关重要,并且在神经变性疾病中被破坏。在这项研究中,我们使用突触的鼠标Calyx作为探讨突触前DRP1损失对突触囊泡(SV)再循环和持续神经递质的影响的模型。在氟克莱克-DRP1小鼠腹侧耳蜗神经元中CRE重组酶的体内病毒表达产生了突触前特异性DRP1敲除(DRP1-PREKO),其中不受干扰的突触后细胞未受干扰。 Calyx终端的共焦重建表明SV簇和线粒体含量破坏,并且突触前末端体积减少。使用Postynaptic电压夹具录制,我们发现DRP1-PROKO突触在低频刺激下具有较大的诱发响应。由于SV回收的缺陷,DRP1-Proko突触也具有深刻的短期可塑性。在DRP1-PREKO突触中,易于可释放的池大小估计,在DRP1-PROKO突触中显着降低,表明DRP1在突触前终端的释放竞争力SV中的维护中具有重要作用。 DRP1-PREKO突触中也增强了终端中的预先突触CA2 +累积。突触透射缺陷可以用EGTA-AM部分救出,表示CA2 +通道的紧密耦合到正常在成熟端子中发现的SV距离可能由DRP1-PROKO泄露。使用突触前和后腹隔室的配对录制,通过ATP的急性透析到Calyx终端,回收缺陷不能逆转。携带,我们的结果暗示了线粒体裂变的要求协调产后突触成熟。

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