活跃区成熟控制突触前输出和释放模式,并受神经元活动调节。

IF 4 2区 医学 Q1 NEUROSCIENCES
Yulia Akbergenova,Jessica Matthias,Sofya Makeyeva,J Troy Littleton
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引用次数: 0

摘要

突触的形成需要细胞基质蛋白和电压门控Ca2+通道(VGCCs)在突触前活性区(AZs)的积累。在黑腹果蝇幼虫的神经肌肉连接处,观察到一个连续的AZ成熟过程,最初是早期支架的结合,然后是晚期支架和vgc的到来。为了研究AZ成熟如何调节突触前输出,在表达与光转化蛋白mMaple相关的谷氨酸受体的雄性幼虫的时间戳突触上进行了一系列AZ形成和功能成像。量子成像显示,年龄较大的突触具有更高的突触效能,并在整个发育过程中维持更大的释放,而缺乏VGCC积累的未成熟位点支持自发融合。为了研究活性如何调节AZ成熟,分析了细胞自主破坏对神经递质释放的影响。突触传递的减少减少了空穴的播种,导致了现有空穴的物质过度积累。内源性光能转换的AZ支架蛋白BRP的产生表明,神经元沉默减少了该蛋白的周转。虽然在rab3突变体中也观察到AZs增大,但活性降低是通过一种独立的机制发生的,需要突触后谷氨酸受体依赖的信号传导。与rab3突变体相比,un13b早期AZ支架和un13a晚期AZ支架的内源性标记显示,早期和晚期支架的播种活性降低。总之,这些数据表明,AZ成熟调节突触前释放模式和输出强度,神经元活动在发育过程中塑造AZ的数量和大小。突触前发育如何调节神经递质释放输出以及突触活动在活跃区(AZ)成熟中的作用尚不清楚。在这里,我们对果蝇幼虫发育期间的AZs进行了出生日期测定和连续体内成像。我们发现突触成熟调节突触输出的强度和自发与诱发释放的时间。突触活动调节AZ物质的积累和新的释放位点的播种,破坏神经递质释放减少AZ数量和驱动增强AZ物质积累在更少的释放位点。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Active zone maturation controls presynaptic output and release mode and is regulated by neuronal activity.
Synapse formation requires the accumulation of cytomatrix proteins and voltage-gated Ca2+ channels (VGCCs) at presynaptic active zones (AZs). At Drosophila melanogaster larval neuromuscular junctions, a sequential process of AZ maturation is observed, with initial incorporation of early scaffolds followed by arrival of late scaffolds and VGCCs. To examine how AZ maturation regulates presynaptic output, serial imaging of AZ formation and function was performed at time-stamped synapses of male larvae expressing glutamate receptors linked to the photoconvertible protein mMaple. Quantal imaging demonstrated older synapses have higher synaptic efficacy and sustain greater release across development, while immature sites lacking VGCC accumulation supported spontaneous fusion. To examine how activity regulates AZ maturation, the effects of cell autonomous disruptions to neurotransmitter release were analyzed. Decreased synaptic transmission reduced AZ seeding and caused hyperaccumulation of material at existing AZs. Generation of an endogenous photoconvertible version of the AZ scaffold protein BRP revealed neuronal silencing decreased the protein's turnover. Although enlarged AZs are also observed in rab3 mutants, activity reduction acted through an independent mechanism that required postsynaptic glutamate receptor-dependent signaling. Endogenous tagging of the Unc13B early AZ scaffold and the Unc13A late AZ scaffold revealed activity reduction decreased seeding of both early and late scaffolds, in contrast to rab3 mutants. Together, these data indicate AZ maturation regulates presynaptic release mode and output strength, with neuronal activity shaping both AZ number and size across development.Significance Statement How presynaptic development regulates neurotransmitter release output and the role of synaptic activity in active zone (AZ) maturation are unclear. Here, we perform birth dating and serial in vivo imaging of AZs over a multi-day period during Drosophila larval development. We find synaptic maturation regulates the strength of synaptic output and the timing of spontaneous versus evoked release. Synaptic activity modulates AZ material accumulation and seeding of new release sites, with disruptions to neurotransmitter release reducing AZ number and driving enhanced AZ material accumulation at fewer release sites.
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来源期刊
Journal of Neuroscience
Journal of Neuroscience 医学-神经科学
CiteScore
9.30
自引率
3.80%
发文量
1164
审稿时长
12 months
期刊介绍: JNeurosci (ISSN 0270-6474) is an official journal of the Society for Neuroscience. It is published weekly by the Society, fifty weeks a year, one volume a year. JNeurosci publishes papers on a broad range of topics of general interest to those working on the nervous system. Authors now have an Open Choice option for their published articles
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