神经科学
浦肯野细胞
阵发性运动障碍
兴奋性突触后电位
肌张力障碍
突触后电位
基因亚型
神经递质
小脑
抑制性突触后电位
生物
细胞生物学
化学
生物化学
受体
基因
内科学
医学
中枢神经系统
帕金森病
运动障碍
疾病
作者
Hyun-Tae Kim,Nesrine Melliti,Eva Breithausen,Katrin Michel,Sara Ferrando Colomer,Ekaterina Poguzhelskaya,Paulina Nemcova,Laura A. Ewell,Sandra Blaess,Albert Becker,Julika Pitsch,Dirk Dietrich,Susanne Schoch
出处
期刊:Brain
[Oxford University Press]
日期:2024-03-13
标识
DOI:10.1093/brain/awae081
摘要
Full-length RIM1 and 2 are key components of the presynaptic active zone that ubiquitously control excitatory and inhibitory neurotransmitter release. Here, we report that the function of the small RIM isoform RIM4, consisting of a single C2 domain, is strikingly different from that of the long isoforms. RIM4 is dispensable for neurotransmitter release but plays a postsynaptic, cell-type specific role in cerebellar Purkinje cells that is essential for normal motor function. In the absence of RIM4, Purkinje cell intrinsic firing is reduced and caffeine-sensitive, and dendritic integration of climbing fibre input is disturbed. Mice lacking RIM4, but not mice lacking RIM1/2, selectively in Purkinje cells exhibit a severe, hours-long paroxysmal dystonia. These episodes can also be induced by caffeine, ethanol or stress and closely resemble the deficits seen with mutations of the PNKD (paroxysmal non-kinesigenic dystonia) gene. Our data reveal essential postsynaptic functions of RIM proteins and show non-overlapping specialized functions of a small isoform despite high homology to a single domain in the full-length proteins.
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