The Ataxia (axJ) Mutation Causes Abnormal GABAA Receptor Turnover in Mice
Author(s) -
Corinna Lappe-Siefke,
Sven Loebrich,
Wulf Hevers,
Oliver B. Waidmann,
Michaela Schweizer,
Susanne Fehr,
JeanMarc Fritschy,
Ivan Đikić,
Jens Eilers,
Scott M. Wilson,
Matthias Kneussel
Publication year - 2009
Publication title -
plos genetics
Language(s) - English
Resource type - Journals
SCImago Journal Rank - 3.587
H-Index - 233
eISSN - 1553-7404
pISSN - 1553-7390
DOI - 10.1371/journal.pgen.1000631
Subject(s) - biology , cerebellum , ataxia , gabaa receptor , neuroscience , cerebellar ataxia , motor coordination , microbiology and biotechnology , cerebellar cortex , receptor , mutant , mutation , genetics , gene
Ataxia represents a pathological coordination failure that often involves functional disturbances in cerebellar circuits. Purkinje cells (PCs) characterize the only output neurons of the cerebellar cortex and critically participate in regulating motor coordination. Although different genetic mutations are known that cause ataxia, little is known about the underlying cellular mechanisms. Here we show that a mutated ax J gene locus, encoding the ubiquitin-specific protease 14 (Usp14), negatively influences synaptic receptor turnover. Ax J mouse mutants, characterized by cerebellar ataxia, display both increased GABA A receptor (GABA A R) levels at PC surface membranes accompanied by enlarged IPSCs. Accordingly, we identify physical interaction of Usp14 and the GABA A R α1 subunit. Although other currently unknown changes might be involved, our data show that ubiquitin-dependent GABA A R turnover at cerebellar synapses contributes to ax J -mediated behavioural impairment.
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