Decreased subunit stability as a novel mechanism for potassium current impairment by a KCNQ2 C terminus mutation causing benign familial neonatal convulsions

被引:55
作者
Soldovieri, MV
Castaldo, P
Iodice, L
Miceli, F
Barrese, V
Bellini, G
del Giudice, EM
Pascotto, A
Bonatti, S
Annunziato, L
Taglialatela, M [1 ]
机构
[1] Univ Naples Federico II, Div Pharmacol, Dept Neurosci, I-80131 Naples, Italy
[2] Univ Naples Federico II, Dept Biochem & Med Biotechnol, I-80131 Naples, Italy
[3] Univ Naples 2, Chair Child Neuropsychiat, I-80131 Naples, Italy
[4] Univ Naples 2, Dept Pediat, I-80131 Naples, Italy
[5] Univ Molise, Dept Hlth Sci, I-86100 Campobasso, Italy
[6] Univ Ancona, Dept Neurosci, I-60121 Ancona, Italy
关键词
D O I
10.1074/jbc.M510980200
中图分类号
Q5 [生物化学]; Q7 [分子生物学];
学科分类号
071010 ; 081704 ;
摘要
KCNQ2 and KCNQ3 K+ channel subunits underlie the muscarinicregulated K+ current (I-KM), a widespread regulator of neuronal excitability. Mutations in KCNQ2- or KCNQ3- encoding genes cause benign familiar neonatal convulsions (BFNCs), a rare autosomal-dominant idiopathic epilepsy of the newborn. In the present study, we have investigated, by means of electrophysiological, biochemical, and immunocytochemical techniques in transiently transfected cells, the consequences prompted by a BFNC-causing 1-bp deletion (2043 Delta T) in the KCNQ2 gene; this frameshift mutation caused the substitution of the last 163 amino acids of the KCNQ2 C terminus and the extension of the subunit by additional 56 residues. The 2043 Delta T mutation abolished voltage-gated K+ currents produced upon homomeric expression of KCNQ2 subunits, dramatically reduced the steady-state cellular levels of KCNQ2 subunits, and prevented their delivery to the plasma membrane. Metabolic labeling experiments revealed that mutant KCNQ2 subunits underwent faster degradation; 10-h treatment with the proteasomal inhibitor MG132 (20 mu M) at least partially reversed such enhanced degradation. Co-expression with KCNQ3 subunits reduced the degradation rate of mutant KCNQ2 subunits and led to their expression on the plasma membrane. Finally, co-expression of KCNQ2 2043 Delta T together with KCNQ3 subunits generated functional voltage-gated K+ currents having pharmacological and biophysical properties of heteromeric channels. Collectively, the present results suggest that mutation-induced reduced stability of KCNQ2 subunits may cause epilepsy in neonates.
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页码:418 / 428
页数:11
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