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Impact of the leaner P/Q-type Ca2+ channel mutation on excitatory synaptic transmission in cerebellar Purkinje cells

机译:较瘦的P / Q型Ca2 +通道突变对小脑Purkinje细胞兴奋性突触传递的影响

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摘要

Loss-of-function mutations in the gene encoding P/Q-type Ca2+ channels cause cerebellar ataxia in mice and humans, but the underlying mechanism(s) are unknown. These Ca2+ channels play important roles in regulating both synaptic transmission and intrinsic membrane properties, and defects in either could contribute to ataxia. Our previous work described changes in intrinsic properties and excitability of cerebellar Purkinje cells (PCs) resulting from the leaner mutation, which is known to reduce whole-cell Ca2+ currents in PCs and cause severe ataxia. Here we describe the impact of this mutation on excitatory synaptic transmission from parallel and climbing fibres (PFs, CFs) to PCs in acute cerebellar slices. We found that in leaner PCs, PF-evoked excitatory postsynaptic currents (PF-EPSCs) are ˜50% smaller, and CF-evoked EPSCs are ˜80% larger, than in wild-type (WT) mice. To investigate whether reduced presynaptic Ca2+ entry plays a role in attenuating PF-EPSCs in leaner mice, we examined paired-pulse facilitation (PPF). We found that PPF is enhanced in leaner, suggesting that reduced presynaptic Ca2+ entry reduces neurotransmitter release at these synapses. Short-term plasticity was unchanged at CF–PC synapses, suggesting that CF-EPSCs are larger in leaner PCs because of increased synapse number or postsynaptic sensitivity, rather than enhanced presynaptic Ca2+ entry. To investigate the functional impact of the observed EPSC changes, we also compared excitatory postsynaptic potentials (EPSPs) elicited by PF and CF stimulation in WT and leaner PCs. Importantly, we found that despite pronounced changes in PF- and CF-EPSCs, evoked EPSPs in leaner mice are very similar to those observed in WT animals. These results suggest that changes in synaptic currents and intrinsic properties of PCs produced by the leaner mutation together maintain PC responsiveness to excitatory synaptic inputs. They also implicate other consequences of the leaner mutation as causes of abnormal cerebellar motor control in mutant mice.
机译:P / Q型Ca 2 + 通道编码基因的功能丧失突变引起小鼠和人类小脑性共济失调,但其潜在机制尚不清楚。这些Ca 2 + 通道在调节突触传递和固有膜特性中都起着重要作用,并且两者中的缺陷都可能导致共济失调。我们以前的工作描述了由于更瘦的突变而导致的小脑浦肯野细胞(PCs)的固有特性和兴奋性的变化,已知这种突变会减少PCs中的全细胞Ca 2 + 电流并引起严重的共济失调。在这里,我们描述了这种突变对急性小脑切片中从平行和攀爬纤维(PF,CF)到PC的兴奋性突触传递的影响。我们发现,在较瘦的PC中,与野生型(WT)小鼠相比,PF诱发的兴奋性突触后电流(PF-EPSC)约小50%,CF诱发的突触后电流约80%。为了研究减少的突触前Ca 2 + 进入是否在瘦小鼠中降低PF-EPSC的作用,我们研究了配对脉冲促进(PPF)。我们发现PPF在瘦肉中得到增强,表明减少的突触前Ca 2 + 进入减少了这些突触中神经递质的释放。 CF-PC突触的短期可塑性没有变化,这表明较瘦的PC中CF-EPSC较大,这是因为突触数量增加或突触后敏感性增加,而不是突触前Ca 2 + 进入增强。为了研究观察到的EPSC变化的功能影响,我们还比较了WT和瘦身PC中PF和CF刺激引起的兴奋性突触后电位(EPSPs)。重要的是,我们发现,尽管PF和CF-EPSC发生了明显变化,但瘦小鼠中诱发的EPSP与野生动物中观察到的非常相似。这些结果表明,由更瘦的突变产生的PC的突触电流和内在特性的变化共同保持PC对兴奋性突触输入的响应。它们还暗示了更瘦突变的其他后果,是突变小鼠中小脑运动控制异常的原因。

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