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Invest Ophthalmol Vis Sci
2006 Oct 01;4710:4474-81. doi: 10.1167/iovs.05-1582.
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Functional characterization of a naturally occurring Cx50 truncation.
DeRosa AM, Mui R, Srinivas M, White TW.
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PURPOSE: Lens connexins undergo proteolytic cleavage of their C termini during fiber maturation. Although the functional significance of this is unknown, cleavage has been correlated with changes in channel-gating properties. This study evaluates the functional consequences of this endogenous truncation by characterizing the properties of a C-terminal truncated Cx50 protein.
METHODS: Murine and human Cx50 were truncated at amino acids 290 and 294, respectively, before expression in paired Xenopus oocytes or mammalian cells. Protein expression was evaluated by immunocytochemistry. Dual whole-cell voltage clamp techniques were used to analyze macroscopic and single-channel conductance, voltage-gating properties, and kinetics; pH gating sensitivity was measured by superfusion with 100% CO2-saturated media.
RESULTS: Cx50tr290 channels exhibited an 86% to 89% reduction in mean macroscopic conductance compared with full-length Cx50. Heterotypic channels formed functional gap junctions, displayed an intermediate level of coupling, and exhibited unaltered voltage-gating properties. C-terminal truncation did not alter single-channel gating characteristics or unitary conductance. Interestingly, truncated and full-length Cx50 channel conductances were reversibly blocked by cytoplasmic acidification.
CONCLUSIONS: C-terminal truncation of Cx50 did not inhibit the formation of homotypic or heterotypic channels. However, a significant decrease in conductance was observed for truncated channels, a phenomenon independent of alterations in voltage-gating sensitivity, kinetics, or chemical gating. These results provide a plausible explanation for the 50% decrease in junctional coupling observed during lens fiber maturation.
Baldo,
Spatial variations in membrane properties in the intact rat lens.
1992, Pubmed
Baldo,
Spatial variations in membrane properties in the intact rat lens.
1992,
Pubmed Baldo,
Gap junctional coupling in lenses from alpha(8) connexin knockout mice.
2001,
Pubmed Bassnett,
Lens organelle degradation.
2002,
Pubmed Bruzzone,
Loss-of-function and residual channel activity of connexin26 mutations associated with non-syndromic deafness.
2003,
Pubmed
,
Xenbase Bruzzone,
Connections with connexins: the molecular basis of direct intercellular signaling.
1996,
Pubmed Donaldson,
Molecular solutions to mammalian lens transparency.
2001,
Pubmed Donaldson,
Changes in lens connexin expression lead to increased gap junctional voltage dependence and conductance.
1995,
Pubmed
,
Xenbase Eckert,
pH gating of lens fibre connexins.
2002,
Pubmed Evans,
Gap junctions: structure and function (Review).
2002,
Pubmed Gerido,
Connexin disorders of the ear, skin, and lens.
2004,
Pubmed Gong,
Gap junctional coupling in lenses lacking alpha3 connexin.
1998,
Pubmed Gruijters,
Immunolocalization of MP70 in lens fiber 16-17-nm intercellular junctions.
1987,
Pubmed Harris,
Emerging issues of connexin channels: biophysics fills the gap.
2001,
Pubmed Jacobs,
Gap junction processing and redistribution revealed by quantitative optical measurements of connexin46 epitopes in the lens.
2004,
Pubmed Jiang,
Changes in connexin expression and distribution during chick lens development.
1995,
Pubmed
,
Xenbase Kistler,
MP38 contains the membrane-embedded domain of the lens fiber gap junction protein MP70.
1990,
Pubmed Lin,
Processing of the gap junction protein connexin50 in the ocular lens is accomplished by calpain.
1997,
Pubmed Lin,
Spatial differences in gap junction gating in the lens are a consequence of connexin cleavage.
1998,
Pubmed
,
Xenbase Makowski,
Gap junction structures. II. Analysis of the x-ray diffraction data.
1977,
Pubmed Mathias,
Physiological properties of the normal lens.
1997,
Pubmed Mathias,
Cell to cell communication and pH in the frog lens.
1991,
Pubmed Milks,
Topology of the 32-kd liver gap junction protein determined by site-directed antibody localizations.
1988,
Pubmed Peracchia,
CO(2) sensitivity of voltage gating and gating polarity of gapjunction channels--connexin40 and its COOH-terminus-truncated mutant.
2004,
Pubmed
,
Xenbase Piatigorsky,
Lens differentiation in vertebrates. A review of cellular and molecular features.
1981,
Pubmed Rup,
Chick connexin-56, a novel lens gap junction protein. Molecular cloning and functional expression.
1993,
Pubmed Sosinsky,
Molecular organization of gap junction membrane channels.
1996,
Pubmed Spray,
Equilibrium properties of a voltage-dependent junctional conductance.
1981,
Pubmed
,
Xenbase Srinivas,
Voltage dependence of macroscopic and unitary currents of gap junction channels formed by mouse connexin50 expressed in rat neuroblastoma cells.
1999,
Pubmed Stergiopoulos,
Hetero-domain interactions as a mechanism for the regulation of connexin channels.
1999,
Pubmed
,
Xenbase Sue Menko,
Lens epithelial cell differentiation.
2002,
Pubmed Unger,
Three-dimensional structure of a recombinant gap junction membrane channel.
1999,
Pubmed White,
Nonredundant gap junction functions.
2003,
Pubmed White,
Genetic diseases and gene knockouts reveal diverse connexin functions.
1999,
Pubmed White,
Multiple connexin proteins in single intercellular channels: connexin compatibility and functional consequences.
1996,
Pubmed White,
Mouse Cx50, a functional member of the connexin family of gap junction proteins, is the lens fiber protein MP70.
1992,
Pubmed
,
Xenbase Willecke,
Structural and functional diversity of connexin genes in the mouse and human genome.
2002,
Pubmed Xu,
Functional role of the carboxyl terminal domain of human connexin 50 in gap junctional channels.
2002,
Pubmed Zampighi,
The specialized junctions of the lens.
1992,
Pubmed