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Mutant Connexin 50 (S276F) Inhibits Channel and Hemichannel Functions Inducing Cataract

Overview
Journal J Genet
Specialty Genetics
Date 2015 Jul 16
PMID 26174669
Citations 7
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Abstract

This study was designed to detect the expression, detergent resistance, subcellular localization, and channel and hemichannel functions of mutant Cx50 to understand the forming mechanism for inducing congenital cataract by a novel mutation p.S276F in connexin 50 (Cx50) reported previously by us. HeLa and human lens epithelial (HLE) cells were transfected with wild-type Cx50 and mutant Cx50 (S276F). We examined the functional characteristics of mutant Cx50 (S276F) in comparison with those of wild-type Cx50 using immunoblot, confocal fluorescence microscopy, dye transfer analysis and dye uptake assay. The mutant and wild-type Cx50 were expressed in equal levels and could efficiently localize to the plasma membrane without transportation and assembly problems. Scrape loading dye transfer was significantly evident in cells transfected with wild-type Cx50 compared to those in cells transfected with mutant Cx50 and cotransfected with wild-type and mutant Cx50. The dye uptake was found to be significantly lower in cells transfected with mutant Cx50 than in cells transfected with wild- type Cx50 and cells cotransfected with wild-type and mutant Cx50. The transfected HeLa and HLE cell lines showed similar performance in all the experiments. These results indicated that the mutant Cx50 (S276F) might inhibit the function of gap junction channel in a dominant negative manner, but inhibit the hemichannel function in a recessive negative manner.

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References
1.
Li W, Nagy J . Activation of fibres in rat sciatic nerve alters phosphorylation state of connexin-43 at astrocytic gap junctions in spinal cord: evidence for junction regulation by neuronal-glial interactions. Neuroscience. 2000; 97(1):113-23. DOI: 10.1016/s0306-4522(00)00032-4. View

2.
Willecke K, Eiberger J, Degen J, Eckardt D, Romualdi A, Guldenagel M . Structural and functional diversity of connexin genes in the mouse and human genome. Biol Chem. 2002; 383(5):725-37. DOI: 10.1515/BC.2002.076. View

3.
Bennett M, Contreras J, Bukauskas F, Saez J . New roles for astrocytes: gap junction hemichannels have something to communicate. Trends Neurosci. 2003; 26(11):610-7. PMC: 3694339. DOI: 10.1016/j.tins.2003.09.008. View

4.
Li J, Wang Q, Fu Q, Zhu Y, Zhai Y, Yu Y . A novel connexin 50 gene (gap junction protein, alpha 8) mutation associated with congenital nuclear and zonular pulverulent cataract. Mol Vis. 2013; 19:767-74. PMC: 3626375. View

5.
Evans W, De Vuyst E, Leybaert L . The gap junction cellular internet: connexin hemichannels enter the signalling limelight. Biochem J. 2006; 397(1):1-14. PMC: 1479757. DOI: 10.1042/BJ20060175. View