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Apparent calcium dependence of vesicle recruitment

机译:表观钙依赖性囊泡招募

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Key points Synaptic transmission relies on the recruitment of neurotransmitter‐filled vesicles to presynaptic release sites. Increased intracellular calcium buffering slows the recovery from synaptic depression, suggesting that vesicle recruitment is a calcium‐dependent process. However, the molecular mechanisms of vesicle recruitment have only been investigated at some synapses. We investigate the role of calcium in vesicle recruitment at the cerebellar mossy fibre to granule cell synapse. We find that increased intracellular calcium buffering slows the recovery from depression following physiological stimulation. However, the recovery is largely resistant to perturbation of the molecular pathways previously shown to mediate calcium‐dependent vesicle recruitment. Furthermore, we find two pools of vesicles with different recruitment speeds and show that models incorporating two pools of vesicles with different calcium‐independent recruitment rates can explain our data. In this framework, increased calcium buffering prevents the release of intrinsically fast‐recruited vesicles but does not change the vesicle recruitment rates themselves. Abstract During sustained synaptic transmission, recruitment of new transmitter‐filled vesicles to the release site counteracts vesicle depletion and thus synaptic depression. An elevated intracellular Ca 2+ concentration has been proposed to accelerate the rate of vesicle recruitment at many synapses. This conclusion is often based on the finding that increased intracellular Ca 2+ buffering slows the recovery from synaptic depression. However, the molecular mechanisms of the activity‐dependent acceleration of vesicle recruitment have only been analysed at some synapses. Using physiological stimulation patterns in postsynaptic recordings and step depolarizations in presynaptic bouton recordings, we investigate vesicle recruitment at cerebellar mossy fibre boutons. We show that increased intracellular Ca 2+ buffering slows recovery from depression dramatically. However, pharmacological and genetic interference with calmodulin or the calmodulin–Munc13 pathway, which has been proposed to mediate Ca 2+ ‐dependence of vesicle recruitment, barely affects vesicle recovery from depression. Furthermore, we show that cerebellar mossy fibre boutons have two pools of vesicles: rapidly fusing vesicles that recover slowly and slowly fusing vesicles that recover rapidly. Finally, models adopting such two pools of vesicles with Ca 2+ ‐independent recruitment rates can explain the slowed recovery from depression upon increased Ca 2+ buffering. Our data do not rule out the involvement of the calmodulin–Munc13 pathway during stronger stimuli or other molecular pathways mediating Ca 2+ ‐dependent vesicle recruitment at cerebellar mossy fibre boutons. However, we show that well‐established two‐pool models predict an apparent Ca 2+ ‐dependence of vesicle recruitment. Thus, previous conclusions of Ca 2+ ‐dependent vesicle recruitment based solely on increased intracellular Ca 2+ buffering should be considered with caution.
机译:要点突触传递依赖于神经递质填充囊泡招​​募到突触前发布网站。细胞内钙增加的缓冲减慢从突触抑制的恢复,这表明囊泡募集是钙依赖性过程。然而,囊泡招募的分子机制只被一些突触调查。我们调查的钙囊泡招募的小脑苔藓纤维颗粒细胞突触的作用。我们发现,细胞内钙增加缓冲减缓抑郁以下生理刺激经济复苏。然而,恢复到先前显示介导钙依赖性的囊泡招募分子途径的扰动主要是抗性的。此外,我们发现不同的招聘速度囊泡两个池,并表明模型结合不同的钙自主招生率囊泡两个池可以解释我们的数据。在此框架下,增加钙的缓冲防止本质快速招募囊泡的释放,但不改变囊泡招聘率本身。摘要在持续的突触传递,新的发射充满囊泡募集到发布现场抵消囊泡枯竭,从而突触抑制。升高细胞内钙离子浓度已提出了加快小泡招聘率在许多突触。这一结论往往是基于这样的发现增加了细胞内Ca 2+缓冲减缓从突触抑制经济复苏。然而,囊泡招募的活性依赖加速的分子机制只被一些分析突触。在突触后录音和步骤去极化突触前布顿录音使用生理刺激模式,我们研究在小脑苔藓纤维终扣囊泡募集。我们表明,增加细胞内钙离子缓冲减慢复苏抑郁显着。然而,与钙调蛋白或钙调蛋白Munc13途径,这已经提出调解囊泡招募的钙-dependence药理和遗传的干扰,几乎没有影响抑郁症囊泡恢复。此外,我们表明,小脑苔藓纤维终扣有囊泡两个池:快速融合是恢复缓慢囊泡融合慢慢能快速恢复囊泡。最后,采用与钙非依赖性招聘率囊泡这样两个池的模型可以解释抑郁症在增加的Ca 2+缓冲减缓的复苏。在强大的刺激或其他分子通路介导钙离子依赖泡在招聘小脑苔藓纤维终扣我们的数据不排除钙调蛋白Munc13途径的参与。然而,我们表明,完善的双池模型预测囊泡的招聘明显的Ca 2+ -dependence。因此,在增加细胞内钙离子缓冲应该谨慎考虑钙离子依赖囊泡招募以前的结论,仅根据。

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