Ts65Dn, a mouse model of Down syndrome, exhibits increased GABAB-induced potassium current

被引:94
作者
Best, Tyler K.
Siarey, Richard J.
Galdzicki, Zygmunt
机构
[1] Uniformed Serv Univ Hlth Sci, Sch Med, Dept Anat Physiol & Genet, Bethesda, MD 20814 USA
[2] Uniformed Serv Univ Hlth Sci, Sch Med, Grad Program Neurosci, Bethesda, MD 20814 USA
关键词
D O I
10.1152/jn.00626.2006
中图分类号
Q189 [神经科学];
学科分类号
071006 ;
摘要
Ts65Dn, a mouse model of Down syndrome, exhibits increased GABA(B)-induced potassium current. J Neurophysiol 97: 892 - 900, 2007. First published November 8, 2006; doi:10.1152/jn. 00626.2006. Down syndrome (DS) is the most common nonheritable cause of mental retardation. DS is the result of the presence of an extra chromosome 21 and its phenotype may be a consequence of overexpressed genes from that chromosome. One such gene is Kcnj6/Girk2, which encodes the G-protein-coupled inward rectifying potassium channel subunit 2 (GIRK2). We have recently shown that the DS mouse model, Ts65Dn, overexpresses GIRK2 throughout the brain and in particular the hippocampus. Here we report that this overexpression leads to a significant increase (similar to 2-fold) in GABA(B)-mediated GIRK current in primary cultured hippocampal neurons. The dose response curves for peak and steady-state GIRK current density is significantly shifted left toward lower concentrations of baclofen in Ts65Dn neurons compared with diploid controls, consistent with increased functional expression of GIRK channels. Stationary fluctuation analysis of baclofen-induced GIRK current from Ts65Dn neurons indicated no significant change in single-channel conductance compared with diploid. However, significant increases in GIRK channel density was found in Ts65Dn neurons. In normalized baclofen-induced GIRK current and GIRK current kinetics no difference was found between diploid and Ts65Dn neurons, which suggests unimpaired mechanisms of interaction between GIRK channel and GABA(B) receptor. These results indicate that increased expression of GIRK2 containing channels have functional consequences that likely affect the balance between excitatory and inhibitory neuronal transmission.
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页码:892 / 900
页数:9
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