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Cellular and circuit mechanisms underlying spinocerebellar ataxias

机译:脊髓小脑共济失调的细胞和电路机制

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Degenerative ataxias are a common form of neurodegenerative disease that affect about 20 individuals per 100,000. The autosomal dominant spinocerebellar ataxias (SCAs) are caused by a variety of protein coding mutations (single nucleotide changes, deletions and expansions) in single genes. Affected genes encode plasma membrane and intracellular ion channels, membrane receptors, protein kinases, protein phosphatases and proteins of unknown function. Although SCA-linked genes are quite diverse they share two key features: first, they are highly, although not exclusively, expressed in cerebellar Purkinje neurons (PNs), and second, when mutated they lead ultimately to the degeneration of PNs. In this review we summarize ataxia-related changes in PN neurophysiology that have been observed in various mouse knockout lines and in transgenic models of human SCA. We also highlight emerging evidence that altered metabotropic glutamate receptor signalling and disrupted calcium homeostasis in PNs form a common, early pathophysiological mechanism in SCAs. Together these findings indicate that aberrant calcium signalling and profound changes in PN neurophysiology precede PN cell loss and are likely to lead to cerebellar circuit dysfunction that explains behavioural signs of ataxia characteristic of the disease.
机译:退化性共济失调是神经退行性疾病的一种常见形式,每10万人中约有20个人受到影响。常染色体显性遗传性脊髓小脑共济失调(SCA)是由单个基因中的多种蛋白质编码突变(单核苷酸变化,缺失和扩增)引起的。受影响的基因编码质膜和细胞内离子通道,膜受体,蛋白激酶,蛋白磷酸酶和功能未知的蛋白。尽管SCA连接的基因非常多样,但它们具有两个关键特征:首先,它们在小脑浦肯野神经元(PNs)中高度表达,尽管不是排他性表达;其次,当突变时,它们最终导致PNs变性。在这篇综述中,我们总结了在各种小鼠基因敲除系和人类SCA转基因模型中观察到的共济失调相关的PN神经生理学变化。我们还重点介绍了新出现的证据,即PN中代谢型谷氨酸受体信号的改变和钙稳态的破坏在SCA中形成了常见的早期病理生理机制。这些发现共同表明,钙离子信号异常和PN神经生理的深刻变化是PN细胞丧失之前的结果,并可能导致小脑回路功能障碍,从而解释了该疾病共济失调的行为征象。

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