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Piccolo promotes vesicle replenishment at a fast central auditory synapse.

机译:短笛在快速的中枢听觉突触中促进囊泡补充。

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摘要

Piccolo and Bassoon are the two largest cytomatrix of the active zone (CAZ) proteins involved in scaffolding and regulating neurotransmitter release at presynaptic active zones (AZs), but have long been discussed as being functionally redundant. We employed genetic manipulation to bring forth and segregate the role of Piccolo from that of Bassoon at central auditory synapses of the cochlear nucleus—the endbulbs of Held. These synapses specialize in high frequency synaptic transmission, ideally poised to reveal even subtle deficits in the regulation of neurotransmitter release upon molecular perturbation. Combining semi-quantitative immunohistochemistry, electron microscopy, and in vitro and in vivo electrophysiology we first studied signal transmission in Piccolo-deficient mice. Our analysis was not confounded by a cochlear deficit, as a short isoform of Piccolo (“Piccolino”) present at the upstream ribbon synapses of cochlear inner hair cells (IHC), is unaffected by the mutation. Disruption of Piccolo increased the abundance of Bassoon at the AZs of endbulbs, while that of RIM1 was reduced and other CAZ proteins remained unaltered. Presynaptic fiber stimulation revealed smaller amplitude of the evoked excitatory postsynaptic currents (eEPSC), while eEPSC kinetics as well as miniature EPSCs (mEPSCs) remained unchanged. Cumulative analysis of eEPSC trains indicated that the reduced eEPSC amplitude of Piccolo-deficient endbulb synapses is primarily due to a reduced readily releasable pool (RRP) of synaptic vesicles (SV), as was corroborated by a reduction of vesicles at the AZ found on an ultrastructural level. Release probability seemed largely unaltered. Recovery from short-term depression was slowed. We then performed a physiological analysis of endbulb synapses from mice which, in addition to Piccolo deficiency, lacked one functional allele of the Bassoon gene. Analysis of the double-mutant endbulbs revealed an increase in release probability, while the synapses still exhibited the reduced RRP, and the impairment in SV replenishment was exacerbated. We propose additive roles of Piccolo and Bassoon in SV replenishment which in turn influences the organization and size of the RRP, and an additional role of Bassoon in regulation of release probability.
机译:Piccolo和Bassoon是活性区(CAZ)蛋白的两个最大细胞基质,参与突触前活性区(AZ)的脚手架和调节神经递质的释放,但长期以来一直被认为具有功能冗余性。我们利用基因操纵来使短笛和巴松管的作用在耳蜗核的中枢听觉突触中分离并分离。这些突触专门研究高频突触传递,理想情况下可以揭示分子扰动时神经递质释放的调节中甚至存在细微的缺陷。将半定量免疫组织化学,电子显微镜以及体外和体内电生理学相结合,我们首先研究了短笛缺陷小鼠的信号传导。我们的分析不受耳蜗缺陷的困扰,因为存在于耳蜗内毛细胞(IHC)上游带状突触的短笛短小体型(“ Piccolino”)不受突变的影响。 Piccolo的破坏增加了内球AZ上巴松管的丰度,而RIM1的丰度降低了,并且其他CAZ蛋白保持不变。突触前纤维刺激显示诱发的兴奋性突触后电流(eEPSC)的幅度较小,而eEPSC动力学以及微型EPSC(mEPSC)保持不变。 eEPSC训练的累积分析表明,短笛不足的内球突触的eEPSC振幅降低主要是由于突触小泡(SV)的易释放池(RRP)减少所致,这一点得到了证实。超微结构水平。释放可能性似乎基本没有改变。从短期抑郁症中恢复的速度减慢了。然后,我们对小鼠的鳞茎突触进行了生理学分析,除短笛不足外,其还缺少巴松管基因的一个功能性等位基因。对双突变体鳞茎的分析显示释放概率增加,而突触仍显示出降低的RRP,并且加剧了SV补充的损害。我们提出短笛和巴松管在SV补给中的附加作用,进而影响RRP的组织和大小,以及巴松管在释放概率调节中的附加作用。

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