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Items: 1 to 20 of 103

1.

Novel rab GAP-like protein, CIP85, interacts with connexin43 and induces its degradation.

Lan Z, Kurata WE, Martyn KD, Jin C, Lau AF.

Biochemistry. 2005 Feb 22;44(7):2385-96.

2.

The connexin43-interacting protein, CIP85, mediates the internalization of connexin43 from the plasma membrane.

Cochrane K, Su V, Lau AF.

Cell Commun Adhes. 2013 Aug;20(3-4):53-66. doi: 10.3109/15419061.2013.784745. Epub 2013 Apr 16.

PMID:
23586710
3.

Monoclonal antibodies against the connexin43-interacting protein CIP85.

Cochrane K, Berestecky JM, Kitamura C, Lau AF.

Hybridoma (Larchmt). 2009 Oct;28(5):355-61. doi: 10.1089/hyb.2009.0033.

4.

A novel connexin43-interacting protein, CIP75, which belongs to the UbL-UBA protein family, regulates the turnover of connexin43.

Li X, Su V, Kurata WE, Jin C, Lau AF.

J Biol Chem. 2008 Feb 29;283(9):5748-59. Epub 2007 Dec 13.

5.
6.

Tyrosine phosphorylation of connexin 43 by v-Src is mediated by SH2 and SH3 domain interactions.

Kanemitsu MY, Loo LW, Simon S, Lau AF, Eckhart W.

J Biol Chem. 1997 Sep 5;272(36):22824-31.

7.

Connexin43 PDZ2 binding domain mutants create functional gap junctions and exhibit altered phosphorylation.

Jin C, Martyn KD, Kurata WE, Warn-Cramer BJ, Lau AF.

Cell Commun Adhes. 2004 Mar-Aug;11(2-4):67-87.

8.

Structural changes in the carboxyl terminus of the gap junction protein connexin43 indicates signaling between binding domains for c-Src and zonula occludens-1.

Sorgen PL, Duffy HS, Sahoo P, Coombs W, Delmar M, Spray DC.

J Biol Chem. 2004 Dec 24;279(52):54695-701. Epub 2004 Oct 18.

9.

Ubiquitylation of the gap junction protein connexin-43 signals its trafficking from early endosomes to lysosomes in a process mediated by Hrs and Tsg101.

Leithe E, Kjenseth A, Sirnes S, Stenmark H, Brech A, Rivedal E.

J Cell Sci. 2009 Nov 1;122(Pt 21):3883-93. doi: 10.1242/jcs.053801. Epub 2009 Oct 6.

10.
11.

Ubiquitination of gap junction proteins.

Leithe E, Rivedal E.

J Membr Biol. 2007 Jun;217(1-3):43-51. Epub 2007 Jul 28. Review.

PMID:
17657522
12.

Structural and molecular mechanisms of gap junction remodeling in epicardial border zone myocytes following myocardial infarction.

Kieken F, Mutsaers N, Dolmatova E, Virgil K, Wit AL, Kellezi A, Hirst-Jensen BJ, Duffy HS, Sorgen PL.

Circ Res. 2009 May 8;104(9):1103-12. doi: 10.1161/CIRCRESAHA.108.190454. Epub 2009 Apr 2.

13.

Connexin43 interacts with Caveolin-3 in the heart.

Liu L, Li Y, Lin J, Liang Q, Sheng X, Wu J, Huang R, Liu S, Li Y.

Mol Biol Rep. 2010 Apr;37(4):1685-91. doi: 10.1007/s11033-009-9584-5. Epub 2009 Jun 21.

PMID:
19544087
14.

CCN3 (NOV) interacts with connexin43 in C6 glioma cells: possible mechanism of connexin-mediated growth suppression.

Fu CT, Bechberger JF, Ozog MA, Perbal B, Naus CC.

J Biol Chem. 2004 Aug 27;279(35):36943-50. Epub 2004 Jun 21.

16.

Molecular dynamics and in vitro analysis of Connexin43: A new 14-3-3 mode-1 interacting protein.

Park DJ, Freitas TA, Wallick CJ, Guyette CV, Warn-Cramer BJ.

Protein Sci. 2006 Oct;15(10):2344-55.

17.

Msx1 and Msx2 are functional interacting partners of T-box factors in the regulation of Connexin43.

Boogerd KJ, Wong LY, Christoffels VM, Klarenbeek M, Ruijter JM, Moorman AF, Barnett P.

Cardiovasc Res. 2008 Jun 1;78(3):485-93. doi: 10.1093/cvr/cvn049. Epub 2008 Feb 19.

18.

Association of connexin43 with E3 ubiquitin ligase TRIM21 reveals a mechanism for gap junction phosphodegron control.

Chen VC, Kristensen AR, Foster LJ, Naus CC.

J Proteome Res. 2012 Dec 7;11(12):6134-46. doi: 10.1021/pr300790h. Epub 2012 Nov 8.

PMID:
23106098
19.

A tyrosine-based sorting signal is involved in connexin43 stability and gap junction turnover.

Thomas MA, Zosso N, Scerri I, Demaurex N, Chanson M, Staub O.

J Cell Sci. 2003 Jun 1;116(Pt 11):2213-22.

20.

Connexin 43 interacts with zona occludens-1 and -2 proteins in a cell cycle stage-specific manner.

Singh D, Solan JL, Taffet SM, Javier R, Lampe PD.

J Biol Chem. 2005 Aug 26;280(34):30416-21. Epub 2005 Jun 26.

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