Abrogation of presynaptic facilitation at hippocampal mossy fiber synapses impacts neural ensemble activity and spatial memory

Catherine Marneffe, Noelle Grosjean, Kyrian Nicolay-Kritter, Cecile Chatras, Evan Harrel, Ashley Kees, Christophe Mulle
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Abstract

Presynaptic short-term plasticity is thought to play a major role in the process of spike transfer within local circuits. Mossy fiber synapses between the axons of dentate gyrus (DG) granule cells and CA3 pyramidal cells (Mf-CA3 synapses) display a remarkable extent of presynaptic plasticity which endows these synaptic connections with detonator properties. The pattern of action potential firing, in the form of high frequency bursts in the DG, strongly controls the amplitude of synaptic responses and information transfer to CA3. Here we have investigated the role of presynaptic facilitation at Mf-CA3 synapses in the operation of CA3 circuits in vivo and in memory encoding. Syt7, a calcium sensor necessary for presynaptic facilitation, was selectively abrogated, in DG granule cells using Syt7 conditional KO mice (DG Syt7 KO mice). In hippocampal slices, we extend previous analysis to show that short-term presynaptic facilitation is selectively suppressed at Mf-CA3 synapses in the absence of Syt7, without any impact on basal synaptic properties and long-term potentiation. Short-term plasticity was found to be crucial for spike transfer between the DG and CA3 in conditions of naturalistic patterns of presynaptic firing. At the network level, in awake head-fixed mice, the abrogation of short-term plasticity largely reduced the co-activity of CA3 pyramidal cells. Finally, whereas DG Syt7 KO mice are not impaired in behavioral tasks based on pattern separation, they show deficits in spatial memory tasks which rely on the process of pattern completion. These results shed new light on the role of the detonator properties of DG-CA3 synapses, and give important insights into how this key synaptic feature translate at the population and behavioral levels.
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减弱海马苔藓纤维突触前促进作用会影响神经集合活动和空间记忆
突触前短期可塑性被认为在局部回路的尖峰传递过程中发挥着重要作用。齿状回(DG)颗粒细胞轴突与 CA3 锥体细胞之间的苔藓纤维突触(Mf-CA3 突触)具有显著的突触前可塑性,使这些突触连接具有引爆特性。在 DG 中,动作电位以高频爆发的形式发射,这种模式强烈地控制着突触反应的幅度以及向 CA3 的信息传递。在这里,我们研究了Mf-CA3突触前促进在体内CA3回路运行和记忆编码中的作用。通过使用 Syt7 条件性 KO 小鼠(DG Syt7 KO 小鼠),在 DG 颗粒细胞中选择性地消减突触前促进所必需的钙离子传感器 Syt7。在海马切片中,我们扩展了之前的分析,结果表明在缺乏 Syt7 的情况下,Mf-CA3 突触的短期突触前促进作用被选择性地抑制,而对基础突触特性和长期潜能没有任何影响。研究发现,在突触前发射的自然模式条件下,短期可塑性对DG和CA3之间的尖峰转移至关重要。在网络水平上,在清醒的头固定小鼠中,短期可塑性的减弱在很大程度上降低了CA3锥体细胞的共同活性。最后,虽然DG Syt7 KO小鼠在基于模式分离的行为任务中没有受损,但在依赖于模式完成过程的空间记忆任务中却表现出缺陷。这些结果揭示了DG-CA3突触的雷管特性的作用,并为这一关键突触特性如何在群体和行为水平上转化提供了重要见解。
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