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Mechanisms of Supralinear Calcium Integration in Dendrites of Hippocampal CA1 Fast-Spiking Cells

机译:超线性钙整合在海马CA1突突细胞树突中的机制。

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摘要

In fast-spiking (FS), parvalbumin-expressing interneurons of the CA1 hippocampus, activation of the GluA2-lacking Ca2+-permeable AMPA receptors (CP-AMPARs) in basal dendrites is coupled to Ca2+-induced Ca2+-release (CICR), and can result in a supralinear summation of postsynaptic Ca2+-transients (post-CaTs). While this mechanism is important in controlling the direction of long-term plasticity, it is still unknown whether it can operate at all excitatory synapses converging onto FS cells or at a set of synapses receiving a particular input. Using a combination of patch-clamp recordings and two-photon Ca2+ imaging in acute mouse hippocampal slices with computational simulations, here we compared the generation of supralinear post-CaTs between apical and basal dendrites of FS cells. We found that, similar to basal dendrites, apical post-CaTs summated supralinearly and relied mainly on the activation of the CP-AMPARs, with a variable contribution of other Ca2+ sources, such as NMDA receptors, L-type voltage-gated Ca2+-channels and Ca2+ release. In addition, supralinear post-CaTs generated in apical dendrites had a slower decay time and a larger cumulative charge than those in basal, and were associated with a stronger level of somatic depolarization. The model predicted that modulation of ryanodine receptors and of the Ca2+ extrusion mechanisms, such as the Na+/Ca2+-exchanger and SERCA pump, had a major impact on the magnitude of supralinear post-CaTs. These data reveal that supralinear Ca2+ summation is a common mechanism of Ca2+ signaling at CP-AMPAR-containing synapses. Shaped in a location-specific manner through modulation of ryanodine receptors and Ca2+ extrusion mechanisms, CP-AMPAR/CICR signaling is suitable for synapse-specific bidirectional modification of incoming inputs in the absence of active dendritic conductances.
机译:在快速加标(FS)中,表达小白蛋白的CA1海马中枢神经元激活了基础树突中缺少GluA2的Ca 2 + 渗透性AMPA受体(CP-AMPAR)激活。 sup> 2 + 诱导的Ca 2 + -释放(CICR),并且可能导致突触后Ca 2 + 瞬态的超线性求和(猫)。尽管该机制对于控制长期可塑性的方向很重要,但仍不清楚它是否可以在收敛于FS细胞的所有兴奋性突触或接收特定输入的一组突触上起作用。结合膜片钳记录和双光子Ca 2 + 在急性小鼠海马切片中的成像和计算模拟,在这里我们比较了FS细胞的顶端和基底树突之间超线性后CaT的生成。我们发现,与基底树突相似,心尖后CaT呈超线性累加,主要依赖于CP-AMPAR的激活,其他Ca 2 + 来源(例如NMDA受体)的贡献也不同, L型电压门控的Ca 2 + 通道和Ca 2 + 释放。此外,在顶端树突中产生的超线性post-CAT的衰变时间更慢,累积电荷比基底的更长,并且与体细胞去极化水平更高有关。该模型预测,ryanodine受体和Ca 2 + 挤出机制的调节,例如Na + / Ca 2 + -交换子和SERCA泵对超线性后CaT的大小有重大影响。这些数据表明,超线性Ca 2 + 求和是Ca 2 + 信号在包含CP-AMPAR的突触中的常见机制。 CP-AMPAR / CICR信号传导通过调节ryanodine受体和Ca 2 + 挤出机制以位置特定的方式形成,适用于在没有活性树突电导的情况下对传入输入进行突触特定的双向修饰。 。

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