首页> 美国卫生研究院文献>The Journal of Physiology >Kv3.3 channels harbouring a mutation of spinocerebellar ataxia type 13 alter excitability and induce cell death in cultured cerebellar Purkinje cells
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Kv3.3 channels harbouring a mutation of spinocerebellar ataxia type 13 alter excitability and induce cell death in cultured cerebellar Purkinje cells

机译:携带13型脊髓小脑共济失调突变的Kv3.3通道改变兴奋性并诱导培养的小脑Purkinje细胞死亡

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摘要

>Abstract The cerebellum plays crucial roles in controlling sensorimotor functions. The neural output from the cerebellar cortex is transmitted solely by Purkinje cells (PCs), whose impairment causes cerebellar ataxia. Spinocerebellar ataxia type 13 (SCA13) is an autosomal dominant disease, and SCA13 patients exhibit cerebellar atrophy and cerebellar symptoms. Recent studies have shown that missense mutations in the voltage-gated K+ channel Kv3.3 are responsible for SCA13. In the rodent brain, Kv3.3 mRNAs are expressed most strongly in PCs, suggesting that the mutations severely affect PCs in SCA13 patients. Nevertheless, how these mutations affect the function of Kv3.3 in PCs and, consequently, the morphology and neuronal excitability of PCs remains unclear. To address these questions, we used lentiviral vectors to express mutant mouse Kv3.3 (mKv3.3) channels harbouring an R424H missense mutation, which corresponds to the R423H mutation in the Kv3.3 channels of SCA13 patients, in mouse cerebellar cultures. The R424H mutant-expressing PCs showed decreased outward current density, broadened action potentials and elevated basal [Ca2+]i compared with PCs expressing wild-type mKv3.3 subunits or those expressing green fluorescent protein alone. Moreover, expression of R424H mutant subunits induced impaired dendrite development and cell death selectively in PCs, both of which were rescued by blocking P/Q-type Ca2+ channels in the culture conditions. We therefore concluded that expression of R424H mutant subunits in PCs markedly affects the function of endogenous Kv3 channels, neuronal excitability and, eventually, basal [Ca2+]i, leading to cell death. These results suggest that PCs in SCA13 patients also exhibit similar defects in PC excitability and induced cell death, which may explain the pathology of SCA13.
机译:>摘要小脑在控制感觉运动功能中起着至关重要的作用。小脑皮层的神经输出仅通过浦肯野细胞(PC)传递,其损伤会导致小脑共济失调。脊髓小脑共济失调13型(SCA13)是常染色体显性疾病,SCA13患者表现出小脑萎缩和小脑症状。最近的研究表明,电压门控的K + 通道Kv3.3中的错义突变是SCA13的原因。在啮齿动物的大脑中,Kv3.3 mRNA在PC中表达最强,表明该突变严重影响SCA13患者的PC。尽管如此,这些突变如何影响PC中Kv3.3的功能,以及如何影响PC的形态和神经元兴奋性仍不清楚。为了解决这些问题,我们使用慢病毒载体在小鼠小脑培养物中表达携带R424H错义突变的突变小鼠Kv3.3(mKv3.3)通道,该通道对应于SCA13患者Kv3.3通道中的R423H突变。与表达野生型mKv3.3亚基或仅表达绿色荧光蛋白的PC相比,表达R424H突变体的PC显示出降低的外向电流密度,扩大的动作电位和升高的基础[Ca 2 + ] i。此外,R424H突变体亚基的表达可选择性地诱导PC中的枝晶发育受损和细胞死亡,通过在培养条件下阻断P / Q型Ca 2 + 通道来挽救两者。因此,我们得出结论,R424H突变亚基在PC中的表达显着影响内源性Kv3通道的功能,神经元兴奋性并最终影响基础[Ca 2 + ] i,从而导致细胞死亡。这些结果表明,SCA13患者中的PC在PC兴奋性和诱导的细胞死亡方面也表现出类似的缺陷,这可能解释了SCA13的病理。

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