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Results: 1 to 20 of 103

Similar articles for PubMed (Select 20488980)

1.

Detection and quantification of beta2AR internalization in living cells using FAP-based biosensor technology.

Fisher GW, Adler SA, Fuhrman MH, Waggoner AS, Bruchez MP, Jarvik JW.

J Biomol Screen. 2010 Jul;15(6):703-9. doi: 10.1177/1087057110370892. Epub 2010 May 20.

PMID:
20488980
2.

Fluorogen activating proteins in flow cytometry for the study of surface molecules and receptors.

Saunders MJ, Szent-Gyorgyi C, Fisher GW, Jarvik JW, Bruchez MP, Waggoner AS.

Methods. 2012 Jul;57(3):308-17. doi: 10.1016/j.ymeth.2012.02.003. Epub 2012 Feb 16.

3.

Fluorogen-activating proteins as biosensors of cell-surface proteins in living cells.

Holleran J, Brown D, Fuhrman MH, Adler SA, Fisher GW, Jarvik JW.

Cytometry A. 2010 Aug;77(8):776-82. doi: 10.1002/cyto.a.20925.

4.

High-throughput flow cytometry compatible biosensor based on fluorogen activating protein technology.

Wu Y, Tapia PH, Fisher GW, Waggoner AS, Jarvik J, Sklar LA.

Cytometry A. 2013 Feb;83(2):220-6. doi: 10.1002/cyto.a.22242. Epub 2013 Jan 9.

5.

Real-time detection of protein trafficking with high-throughput flow cytometry (HTFC) and fluorogen-activating protein (FAP) base biosensor.

Wu Y, Tapia PH, Jarvik J, Waggoner AS, Sklar LA.

Curr Protoc Cytom. 2014 Jan 2;67:Unit 9.43.. doi: 10.1002/0471142956.cy0943s67.

6.

High-throughput analysis of ligand-induced internalization of β2-adrenoceptors using the coiled-coil tag-probe method.

Takeda Y, Yano Y, Matsuzaki K.

Anal Chem. 2012 Feb 7;84(3):1754-9. doi: 10.1021/ac203231n. Epub 2012 Jan 30.

PMID:
22243418
7.

Internal trafficking and surface mobility of a functionally intact beta2-adrenergic receptor-green fluorescent protein conjugate.

Barak LS, Ferguson SS, Zhang J, Martenson C, Meyer T, Caron MG.

Mol Pharmacol. 1997 Feb;51(2):177-84.

8.

Binding of the beta2 adrenergic receptor to N-ethylmaleimide-sensitive factor regulates receptor recycling.

Cong M, Perry SJ, Hu LA, Hanson PI, Claing A, Lefkowitz RJ.

J Biol Chem. 2001 Nov 30;276(48):45145-52. Epub 2001 Sep 27.

9.

beta-arrestin-dependent, G protein-independent ERK1/2 activation by the beta2 adrenergic receptor.

Shenoy SK, Drake MT, Nelson CD, Houtz DA, Xiao K, Madabushi S, Reiter E, Premont RT, Lichtarge O, Lefkowitz RJ.

J Biol Chem. 2006 Jan 13;281(2):1261-73. Epub 2005 Nov 9.

10.
11.

Fluorescence ratiometric detection of ligand-induced receptor internalization using extracellular coiled-coil tag-probe labeling.

Yano Y, Matsuzaki K.

FEBS Lett. 2011 Jul 21;585(14):2385-8. doi: 10.1016/j.febslet.2011.06.012. Epub 2011 Jun 23.

13.

Arf6 negatively controls the rapid recycling of the β2 adrenergic receptor.

Macia E, Partisani M, Paleotti O, Luton F, Franco M.

J Cell Sci. 2012 Sep 1;125(Pt 17):4026-35. doi: 10.1242/jcs.102343. Epub 2012 May 18.

14.

Discovery of regulators of receptor internalization with high-throughput flow cytometry.

Wu Y, Tapia PH, Fisher GW, Simons PC, Strouse JJ, Foutz T, Waggoner AS, Jarvik J, Sklar LA.

Mol Pharmacol. 2012 Oct;82(4):645-57. Epub 2012 Jul 5.

15.
16.

Agonist-stimulated reactive oxygen species formation regulates beta2-adrenergic receptor signal transduction.

Moniri NH, Daaka Y.

Biochem Pharmacol. 2007 Jun 30;74(1):64-73. Epub 2007 Mar 24.

PMID:
17451656
17.

Differences in endosomal targeting of human (beta)1- and (beta)2-adrenergic receptors following clathrin-mediated endocytosis.

Liang W, Curran PK, Hoang Q, Moreland RT, Fishman PH.

J Cell Sci. 2004 Feb 15;117(Pt 5):723-34. Epub 2004 Jan 20.

19.

β2 adrenergic receptor fluorescent protein fusions traffic to the plasma membrane and retain functionality.

Bubnell J, Pfister P, Sapar ML, Rogers ME, Feinstein P.

PLoS One. 2013 Sep 23;8(9):e74941. doi: 10.1371/journal.pone.0074941. eCollection 2013.

20.

Comparison of G-protein coupled receptor desensitization-related beta-arrestin redistribution using confocal and non-confocal imaging.

Haasen D, Wolff M, Valler MJ, Heilker R.

Comb Chem High Throughput Screen. 2006 Jan;9(1):37-47.

PMID:
16454685
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