論文

査読有り
2014年1月

Kv3.3 channels harbouring a mutation of spinocerebellar ataxia type 13 alter excitability and induce cell death in cultured cerebellar Purkinje cells

JOURNAL OF PHYSIOLOGY-LONDON
  • Tomohiko Irie
  • ,
  • Yasunori Matsuzaki
  • ,
  • Yuko Sekino
  • ,
  • Hirokazu Hirai

592
1
開始ページ
229
終了ページ
247
記述言語
英語
掲載種別
研究論文(学術雑誌)
DOI
10.1113/jphysiol.2013.264309
出版者・発行元
WILEY-BLACKWELL

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.

リンク情報
DOI
https://doi.org/10.1113/jphysiol.2013.264309
PubMed
https://www.ncbi.nlm.nih.gov/pubmed/24218544
Web of Science
https://gateway.webofknowledge.com/gateway/Gateway.cgi?GWVersion=2&SrcAuth=JSTA_CEL&SrcApp=J_Gate_JST&DestLinkType=FullRecord&KeyUT=WOS:000329141200015&DestApp=WOS_CPL
ID情報
  • DOI : 10.1113/jphysiol.2013.264309
  • ISSN : 0022-3751
  • eISSN : 1469-7793
  • PubMed ID : 24218544
  • Web of Science ID : WOS:000329141200015

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