Cochlear gap junctions coassembled from Cx26 and 30 show faster intercellular Ca2+ signaling than homomeric counterparts
- 1 March 2005
- journal article
- research article
- Published by American Physiological Society in American Journal of Physiology-Cell Physiology
- Vol. 288 (3) , C613-C623
- https://doi.org/10.1152/ajpcell.00341.2004
Abstract
The importance of connexins (Cxs) in cochlear functions has been demonstrated by the finding that mutations in Cx genes cause a large proportion of sensorineural hearing loss cases. However, it is still unclear how Cxs contribute to the cochlear function. Recent data ( 33 ) obtained from Cx30 knockout mice showing that a reduction of Cx diversity in assembling gap junctions is sufficient to cause deafness suggest that functional interactions of different subtypes of Cxs may be essential in normal hearing. In this work we show that the two major forms of Cxs (Cx26 and Cx30) in the cochlea have overlapping expression patterns beginning at early embryonic stages. Cx26 and Cx30 were colocalized in most gap junction plaques in the cochlea, and their coassembly was tested by coimmunoprecipitation. To compare functional differences of gap junctions with different molecular configurations, homo- and heteromeric gap junctions composed of Cx26 and/or Cx30 were reconstituted by transfections in human embryonic kidney-293 cells. The ratio imaging technique and fluorescent tracer diffusion assays were used to assess the function of reconstituted gap junctions. Our results revealed that gap junctions with different molecular configurations show differences in biochemical coupling, and that intercellular Ca2+ signaling across heteromeric gap junctions consisting of Cx26 and Cx30 was at least twice as fast as their homomerically assembled counterparts. Our data suggest that biochemical permeability and the dynamics of intercellular signaling through gap junction channels, in addition to gap junction-mediated intercellular ionic coupling, may be important factors to consider for studying functional roles of gap junctions in the cochlea.Keywords
This publication has 41 references indexed in Scilit:
- Expression of the connexin43- and connexin45-encoding genes in the developing and mature mouse inner earCell and tissue research, 2004
- Gap junctions in the inner ear: Comparison of distribution patterns in different vertebrates and assessement of connexin composition in mammalsJournal of Comparative Neurology, 2003
- Connexins 26 and 30 are co-assembled to form gap junctions in the cochlea of miceBiochemical and Biophysical Research Communications, 2003
- Gap junctions: structure and function (Review)Molecular Membrane Biology, 2002
- Mutations in GJB6 cause nonsyndromic autosomal dominant deafness at DFNA3 locusNature Genetics, 1999
- Assembly of heteromeric connexons in guinea‐pig liver en route to the Golgi apparatus, plasma membrane and gap junctionsEuropean Journal of Biochemistry, 1999
- Connexin-26 mutations in sporadic and inherited sensorineural deafnessThe Lancet, 1998
- Connections with Connexins: the Molecular Basis of Direct Intercellular SignalingEuropean Journal of Biochemistry, 1996
- Connexin Mutations in X-Linked Charcot-Marie-Tooth DiseaseScience, 1993
- Intercellular signaling in glial cells: Calcium waves and oscillations in response to mechanical stimulation and glutamateNeuron, 1991