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Gap junction channels allow for the passage of ions and small molecules between neighboring cells. These channels are formed by multimers of an integral membrane protein named connexin. In the heart and other tissues, the most abundant connexin is a 43-kDa, 382-amino acid protein termed connexin43 (Cx43). A characteristic property of connexin channels is that they close upon acidification of the intracellular space. Previous studies have shown that truncation of the carboxyl terminal of Cx43 impairs pH sensitivity. In the present study, we have used a combination of optical, electrophysiological, and molecular biological techniques and the oocyte expression system to further localize the regions of the carboxyl terminal that are involved in pH regulation of Cx43 channels. Our results show that regions 261-300 and 374-382 are essential components of a pH-dependent "gating particle," which is responsible for acidification-induced uncoupling of Cx43-expressing cells. Regions 261-300 and 374-382 seem to be interdependent. The function of region 261-300 may be related to the presence of a poly-proline repeat between amino acids 274 and 285. Furthermore, site-directed mutagenesis studies show that the function of region 374-382 is not directly related to its net balance of charges, although mutation of only one amino acid (aspartate 379) for asparagine impairs pH sensitivity to the same extent as truncation of the carboxyl terminal domain (from amino acid 257). The mutation in which serine 364 is substituted for proline, which has been associated with some cases of cardiac congenital malformations in humans, also disrupts the pH gating of Cx43, although deletion of amino acids 364-373 has no effect on acidification-induced uncoupling. These results provide new insight into the molecular mechanisms responsible for acidification-induced uncoupling of gap junction channels in the heart and in other Cx43-expressing structures.
Adzhubei,
Left-handed polyproline II helices commonly occur in globular proteins.
1993, Pubmed
Adzhubei,
Left-handed polyproline II helices commonly occur in globular proteins.
1993,
Pubmed Barrio,
Gap junctions formed by connexins 26 and 32 alone and in combination are differently affected by applied voltage.
1991,
Pubmed
,
Xenbase Bennett,
Biophysics of gap junctions.
1992,
Pubmed Bennett,
Gap junctions: new tools, new answers, new questions.
1991,
Pubmed Beyer,
Connexin43: a protein from rat heart homologous to a gap junction protein from liver.
1987,
Pubmed Britz-Cunningham,
Mutations of the Connexin43 gap-junction gene in patients with heart malformations and defects of laterality.
1995,
Pubmed Bruzzone,
Expression of chimeric connexins reveals new properties of the formation and gating behavior of gap junction channels.
1994,
Pubmed
,
Xenbase Cohen,
Modular binding domains in signal transduction proteins.
1995,
Pubmed Dahl,
Mutational analysis of gap junction formation.
1992,
Pubmed
,
Xenbase Dumont,
Oogenesis in Xenopus laevis (Daudin). I. Stages of oocyte development in laboratory maintained animals.
1972,
Pubmed
,
Xenbase Ek,
Role of histidine 95 on pH gating of the cardiac gap junction protein connexin43.
1994,
Pubmed
,
Xenbase Goldberg,
Dynamics of connexin43 phosphorylation in pp60v-src-transformed cells.
1993,
Pubmed Hoshi,
Biophysical and molecular mechanisms of Shaker potassium channel inactivation.
1990,
Pubmed
,
Xenbase Kumar,
Molecular biology and genetics of gap junction channels.
1992,
Pubmed Lim,
Structural determinants of peptide-binding orientation and of sequence specificity in SH3 domains.
1994,
Pubmed Lins,
The hydrophobic effect in protein folding.
1995,
Pubmed Liu,
A structural basis for the unequal sensitivity of the major cardiac and liver gap junctions to intracellular acidification: the carboxyl tail length.
1993,
Pubmed
,
Xenbase Morley,
Intramolecular interactions mediate pH regulation of connexin43 channels.
1996,
Pubmed
,
Xenbase Pressler,
Intracellular pH and cell-to-cell transmission in sheep Purkinje fibers.
1989,
Pubmed Spray,
Equilibrium properties of a voltage-dependent junctional conductance.
1981,
Pubmed
,
Xenbase Stauffer,
Structure of gap junction channels.
1992,
Pubmed Suchyna,
Identification of a proline residue as a transduction element involved in voltage gating of gap junctions.
1993,
Pubmed
,
Xenbase Swenson,
Formation of gap junctions by expression of connexins in Xenopus oocyte pairs.
1989,
Pubmed
,
Xenbase Toro,
Structural determinants in the interaction of Shaker inactivating peptide and a Ca(2+)-activated K+ channel.
1994,
Pubmed Vandeyar,
A simple and rapid method for the selection of oligodeoxynucleotide-directed mutants.
1988,
Pubmed Warn-Cramer,
Characterization of the mitogen-activated protein kinase phosphorylation sites on the connexin-43 gap junction protein.
1996,
Pubmed Werner,
Gating properties of connexin32 cell-cell channels and their mutants expressed in Xenopus oocytes.
1991,
Pubmed
,
Xenbase White,
Functional analysis of selective interactions among rodent connexins.
1995,
Pubmed
,
Xenbase White,
Selective interactions among the multiple connexin proteins expressed in the vertebrate lens: the second extracellular domain is a determinant of compatibility between connexins.
1994,
Pubmed
,
Xenbase Williamson,
The structure and function of proline-rich regions in proteins.
1994,
Pubmed Yu,
Structural basis for the binding of proline-rich peptides to SH3 domains.
1994,
Pubmed