Literature DB >> 9742134

Cloning and expression of two related connexins from the perch retina define a distinct subgroup of the connexin family.

J O'Brien1, R Bruzzone, T W White, M R Al-Ubaidi, H Ripps.   

Abstract

We have cloned cDNAs for two closely related connexins (Cx), Cx35 and Cx34.7, from a perch retinal cDNA library. Sequencing of PCR products from genomic DNA revealed that both connexins have an intron 71 bp after the translation initiation site; in Cx35, the intron is 900 bp in length, whereas in Cx34.7 it is approximately 20 kb. Southern blots of genomic DNA suggest that the two connexins represent independent single copy genes. In Northern blots, Cx35 and Cx34.7 transcripts were detected in retina and brain; Cx34.7 also showed a weak signal in smooth muscle (gut) RNA. Antibodies against Cx35 labeled a 30 kDa band on a Western blot of retinal membranes, and in histological sections, the pattern of antibody recognition was consistent with labeling of bipolar cells and unidentified processes in the inner plexiform and nerve fiber layers. When expressed in Xenopus oocytes, Cx35 and Cx34.7 formed homotypic gap junctions, but the junctional conductance between paired oocytes expressing Cx35 was 10-fold greater than that recorded for gap junctional channels formed by Cx34.7. The homotypic gap-junctional channels were closed in a voltage-dependent manner but with relatively weak voltage sensitivity. Heterotypic gap junctions formed by Cx35 and Cx34.7 displayed junctional conductances similar to those of Cx34.7 homotypic pairs and showed a slightly asymmetric current-voltage relationship; the side expressing Cx35 exhibited a higher sensitivity to transjunctional potentials. An analysis of the sequence and gene structure of the connexin family revealed that perch Cx35 and Cx34.7, skate Cx35, and mouse Cx36 constitute a novel gamma subgroup.

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Year:  1998        PMID: 9742134      PMCID: PMC6793016     

Source DB:  PubMed          Journal:  J Neurosci        ISSN: 0270-6474            Impact factor:   6.167


  46 in total

1.  Limitations of the dual voltage clamp method in assaying conductance and kinetics of gap junction channels.

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Journal:  Biophys J       Date:  1992-10       Impact factor: 4.033

Review 2.  Multiple connexin proteins in single intercellular channels: connexin compatibility and functional consequences.

Authors:  T W White; R Bruzzone
Journal:  J Bioenerg Biomembr       Date:  1996-08       Impact factor: 2.945

3.  Formation of gap junctions by expression of connexins in Xenopus oocyte pairs.

Authors:  K I Swenson; J R Jordan; E C Beyer; D L Paul
Journal:  Cell       Date:  1989-04-07       Impact factor: 41.582

4.  Structure of a gap junction gene: rat connexin-32.

Authors:  T Miller; G Dahl; R Werner
Journal:  Biosci Rep       Date:  1988-10       Impact factor: 3.840

5.  Gap-junctional properties of electrically coupled skate horizontal cells in culture.

Authors:  H Qian; R P Malchow; H Ripps
Journal:  Vis Neurosci       Date:  1993 Mar-Apr       Impact factor: 3.241

6.  Horizontal cells in the retina of the rabbit.

Authors:  R F Dacheux; E Raviola
Journal:  J Neurosci       Date:  1982-10       Impact factor: 6.167

Review 7.  Syncytial integration by a network of coupled bipolar cells in the retina.

Authors:  R R Poznanski; O Umino
Journal:  Prog Neurobiol       Date:  1997-10       Impact factor: 11.685

8.  Bovine connexin44, a lens gap junction protein: molecular cloning, immunologic characterization, and functional expression.

Authors:  V K Gupta; V M Berthoud; N Atal; J A Jarillo; L C Barrio; E C Beyer
Journal:  Invest Ophthalmol Vis Sci       Date:  1994-09       Impact factor: 4.799

9.  Selective interactions among the multiple connexin proteins expressed in the vertebrate lens: the second extracellular domain is a determinant of compatibility between connexins.

Authors:  T W White; R Bruzzone; S Wolfram; D L Paul; D A Goodenough
Journal:  J Cell Biol       Date:  1994-05       Impact factor: 10.539

10.  Characteristics of bipolar-bipolar coupling in the carp retina.

Authors:  T Saito; T Kujiraoka
Journal:  J Gen Physiol       Date:  1988-02       Impact factor: 4.086

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  42 in total

1.  Quinine blocks specific gap junction channel subtypes.

Authors:  M Srinivas; M G Hopperstad; D C Spray
Journal:  Proc Natl Acad Sci U S A       Date:  2001-09-04       Impact factor: 11.205

2.  Functional expression of the murine connexin 36 gene coding for a neuron-specific gap junctional protein.

Authors:  B Teubner; J Degen; G Söhl; M Güldenagel; F F Bukauskas; E B Trexler; V K Verselis; C I De Zeeuw; C G Lee; C A Kozak; E Petrasch-Parwez; R Dermietzel; K Willecke
Journal:  J Membr Biol       Date:  2000-08-01       Impact factor: 1.843

3.  A genomewide survey of developmentally relevant genes in Ciona intestinalis. X. Genes for cell junctions and extracellular matrix.

Authors:  Yasunori Sasakura; Eiichi Shoguchi; Naohito Takatori; Shuichi Wada; Ian A Meinertzhagen; Yutaka Satou; Nori Satoh
Journal:  Dev Genes Evol       Date:  2003-05-10       Impact factor: 0.900

4.  Cone photoreceptors in bass retina use two connexins to mediate electrical coupling.

Authors:  John O'Brien; H Bao Nguyen; Stephen L Mills
Journal:  J Neurosci       Date:  2004-06-16       Impact factor: 6.167

5.  Testicular connexin 43, a precocious molecular target for the effect of environmental toxicants on male fertility.

Authors:  Georges Pointis; Jérôme Gilleron; Diane Carette; Dominique Segretain
Journal:  Spermatogenesis       Date:  2011-10-01

Review 6.  Two independent forms of activity-dependent potentiation regulate electrical transmission at mixed synapses on the Mauthner cell.

Authors:  Roger Cachope; Alberto E Pereda
Journal:  Brain Res       Date:  2012-07-04       Impact factor: 3.252

7.  Calcium-dependent binding of calmodulin to neuronal gap junction proteins.

Authors:  Gary S Burr; Cheryl K Mitchell; Yenabi J Keflemariam; Ruth Heidelberger; John O'Brien
Journal:  Biochem Biophys Res Commun       Date:  2005-10-07       Impact factor: 3.575

8.  Cerebrospinal Fluid-Contacting Neurons Sense pH Changes and Motion in the Hypothalamus.

Authors:  Elham Jalalvand; Brita Robertson; Hervé Tostivint; Peter Löw; Peter Wallén; Sten Grillner
Journal:  J Neurosci       Date:  2018-07-23       Impact factor: 6.167

9.  Short-range functional interaction between connexin35 and neighboring chemical synapses.

Authors:  A Pereda; J O'Brien; J I Nagy; M Smith; F Bukauskas; K G V Davidson; N Kamasawa; T Yasumura; J E Rash
Journal:  Cell Commun Adhes       Date:  2003 Jul-Dec

10.  Regulation of neuronal connexin-36 channels by pH.

Authors:  Daniel González-Nieto; Juan M Gómez-Hernández; Belén Larrosa; Cristina Gutiérrez; María D Muñoz; Ilaria Fasciani; John O'Brien; Agata Zappalà; Federico Cicirata; Luis C Barrio
Journal:  Proc Natl Acad Sci U S A       Date:  2008-10-28       Impact factor: 11.205

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