Spontaneous cross-link of mutated alpha1 subunits during GABA(A) receptor assembly

J Biol Chem. 2007 Feb 16;282(7):4354-4363. doi: 10.1074/jbc.M609676200. Epub 2006 Dec 4.

Abstract

gamma-Aminobutyric acid, type A (GABA(A)) receptor alpha1 subunits containing a cysteine mutation at a position in the channel mouth (H109C) surprisingly formed a spontaneous cross-link with each other in receptors composed of alpha1H109C, beta3, and gamma2 subunits. Cross-linking of two alpha1H109C subunits did not significantly change the affinity of [(3)H]muscimol or [(3)H]Ro15-1788 binding in alpha1H109Cbeta3gamma2 receptors, but GABA displayed a reduced potency for activating chloride currents. On reduction of the disulfide bond, however, GABA activation as well as diazepam modulation was similar in mutated and wild-type receptors, suggesting that these receptors exhibited the same subunit stoichiometry and arrangement. Disulfide bonds could not be reoxidized by copper phenanthroline after having been reduced in completely assembled receptors, suggesting that cross-linking can only occur at an early stage of assembly. The cross-link of alpha1H109C subunits and the subsequent transport of the resulting homodimers to the cell surface caused a reduction of the intracellular pool of alpha1H109C subunits and a reduced formation of completely assembled receptors. The formation of alpha1H109C homodimers as well as of correctly assembled GABA(A) receptors containing cross-linked alpha1H109C subunits could indicate that homodimerization of alpha1 subunits via contacts located in the channel mouth might be one starting point of GABA(A) receptor assembly. Alternatively the assembly mechanism might have started with the formation of heterodimers followed by a cross-link of mutated alpha1 subunits at the heterotrimeric stage. The formation of cross-linked alpha1H109C homodimers would then have occurred independently in a separate pathway.

Publication types

  • Research Support, Non-U.S. Gov't

MeSH terms

  • Animals
  • Chloride Channels / chemistry
  • Chloride Channels / metabolism
  • Cysteine / chemistry*
  • Cysteine / genetics
  • Cysteine / metabolism
  • Dimerization
  • Muscimol / chemistry
  • Muscimol / metabolism
  • Oxidation-Reduction
  • Phenanthrolines / chemistry
  • Point Mutation*
  • Protein Structure, Quaternary / genetics
  • Protein Subunits / chemistry
  • Protein Subunits / genetics
  • Rats
  • Receptors, GABA-A / chemistry*
  • Receptors, GABA-A / genetics
  • Receptors, GABA-A / metabolism
  • Sulfides / chemistry
  • Sulfides / metabolism

Substances

  • Chloride Channels
  • Phenanthrolines
  • Protein Subunits
  • Receptors, GABA-A
  • Sulfides
  • Muscimol
  • Cysteine