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非洲长颌鱼小脑后尾叶浦肯野细胞上平行纤维突触的细胞类型特异性可塑性。

Cell type-specific plasticity at parallel fiber synapses onto Purkinje cells in the posterior caudal lobe of the mormyrid fish cerebellum.

作者信息

Zhang Yueping, Magnus Gerhard, Han Victor Z

机构信息

Department of Pediatrics and Neuroscience, Xijing Hospital , Xi'an , China.

Center for Integrative Brain Research, Seattle Children's Research Institute , Seattle, Washington.

出版信息

J Neurophysiol. 2018 Aug 1;120(2):644-661. doi: 10.1152/jn.00175.2018. Epub 2018 Apr 18.

Abstract

It has been demonstrated that there are two morphological subtypes of Purkinje cells (PCs)-fan-shaped Purkinje cells (fPCs) and multipolar Purkinje cells (mPCs)-in the posterior caudal lobe of the mormyrid fish cerebellum, but whether these cell types are also functionally distinct is unknown. Here, we have used electrophysiological and pharmacological tools in a slice preparation to demonstrate that pairing parallel fiber (PF) and climbing fiber (CF) inputs at a low frequency induces long-term depression (LTD) in fPCs but long-term potentiation (LTP) in mPCs. The induction of plasticity in both cell types required postsynaptic Ca and type 1α metabotropic glutamate receptors. However, the LTD in fPCs was inducted via a calcium/calmodulin-dependent protein kinase II cascade, whereas LTP induction in mPCs required calcineurin. Moreover, the LTD in fPCs and LTP in mPCs were accompanied by changes to the corresponding paired-pulse ratios and their coefficients of variation, suggesting presynaptic modes of expression for the plasticity at PF terminals for both cell types. Hence, the synaptic plasticity at PF synapses onto PCs in the posterior caudal lobe of the mormyrid cerebellum is cell type specific, with both pre- and postsynaptic mechanisms contributing to its induction and expression. NEW & NOTEWORTHY Much has been learnt about the cerebellar long-term depression (LTD) in the cortex. More recent work has shown that long-term potentiation (LTP) is equally important for cerebellar motor learning. Here we report for the first time that plasticity in the mormyrid cerebellum is cell type specific, e.g., following the conventional pairing of parallel and climbing fiber inputs in an in vitro preparation leads to LTD in one Purkinje cell subtype and LTP in another.

摘要

已经证明,在 Mormyrid 鱼小脑的尾后叶中存在两种形态学亚型的浦肯野细胞(PCs)——扇形浦肯野细胞(fPCs)和多极浦肯野细胞(mPCs),但这些细胞类型在功能上是否也不同尚不清楚。在这里,我们在脑片制备中使用电生理和药理学工具来证明,低频配对平行纤维(PF)和攀缘纤维(CF)输入在 fPCs 中诱导长时程抑制(LTD),而在 mPCs 中诱导长时程增强(LTP)。两种细胞类型中可塑性的诱导都需要突触后钙和 1α 型代谢型谷氨酸受体。然而,fPCs 中的 LTD 是通过钙/钙调蛋白依赖性蛋白激酶 II级联反应诱导的,而 mPCs 中 LTP 的诱导需要钙调神经磷酸酶。此外,fPCs 中的 LTD 和 mPCs 中的 LTP 伴随着相应配对脉冲比率及其变异系数的变化,这表明两种细胞类型在 PF 终末可塑性的突触前表达模式。因此,Mormyrid 小脑尾后叶中 PF 突触到 PCs 上的突触可塑性是细胞类型特异性的,突触前和突触后机制都有助于其诱导和表达。新发现与值得注意的是,关于小脑皮质中的长时程抑制(LTD)已经了解很多。最近的研究表明,长时程增强(LTP)对小脑运动学习同样重要。在这里,我们首次报道 Mormyrid 小脑的可塑性是细胞类型特异性的,例如,在体外制备中按照传统方式配对平行纤维和攀缘纤维输入会在一种浦肯野细胞亚型中导致 LTD,而在另一种亚型中导致 LTP。

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