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Less means more: The magnitude of synaptic plasticity along the hippocampal dorso‐ventral axis is inversely related to the expression levels of plasticity‐related neurotransmitter receptors

机译:较少的意味着更多:沿海马背腹轴的突触可塑性的大小与可塑性相关神经递质受体的表达水平反向相关

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Abstract The dorsoventral axis of the hippocampus exhibits functional differentiations with regard to (spatial Vs emotional) learning and information retention (rapid encoding Vs long‐term storage), as well as its sensitivity to neuromodulation and information received from extrahippocampal structures. The mechanisms that underlie these differentiations remain unclear. Here, we explored neurotransmitter receptor expression along the dorsoventral hippocampal axis and compared hippocampal synaptic plasticity in the CA1 region of the dorsal (DH), intermediate (IH) and ventral hippocampi (VH). We observed a very distinct gradient of expression of the N‐methyl‐D‐aspartate receptor GluN2B subunit in the Stratum radiatum (DH IH VH). A similar distribution gradient (DH IH VH) was evident in the hippocampus for GluN1, the metabotropic glutamate receptors mGlu1 and mGlu2/3, GABA B and the dopamine‐D1 receptor. GABA A exhibited the opposite expression relationship (DH??IH??VH). Neurotransmitter release probability was lowest in DH. Surprisingly, identical afferent stimulation conditions resulted in hippocampal synaptic plasticity that was the most robust in the DH, compared with IH and VH. These data suggest that differences in hippocampal information processing and synaptic plasticity along the dorsoventral axis may relate to specific differences in the expression of plasticity‐related neurotransmitter receptors. This gradient may support the fine‐tuning and specificity of hippocampal synaptic encoding.
机译:摘要海马的背轴轴表现出与(空间VS情绪)学习和信息保留(快速编码VS长期储存)的功能区分,以及其对来自覆盖疫苗机结构的神经调节和信息的敏感性。这些差异的机制仍然不清楚。在这里,我们沿着多叶窝海马轴探讨了神经递质受体表达,并比较了背部(DH),中间体(IH)和腹侧海马(VH)的CA1区中的海马突触塑性。我们观察到在层辐射辐射物中的N-甲基-D-天冬氨酸受体GLUN2B亚单位的表达非常明显梯度(DH< IH< VH)。在GLUN1的海马中,类似的分布梯度(DH< IH< vH)是显而易见的,所述谷氨酸谷氨酸受体MGLU1和MGLU2 / 3,GABA B和多巴胺-D1受体。 GABA A表现出相反的表达关系(DH?&?IH?&?vh)。神经递质释放概率在DH中最低。令人惊讶的是,与IH和VH相比,相同的传入刺激条件导致海马突触塑性是DH中最强壮的。这些数据表明,沿着背络轴的海马信息处理和突触可塑性的差异可以涉及可塑性相关神经递质受体表达的特定差异。该梯度可以支持海马突触编码的微调和特异性。

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