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Time-resolved FRET reports FGFR1 dimerization and formation of a complex with its effector PLCγ1

In vitro and in vivo imaging of protein tyrosine kinase activity requires minimally invasive, molecularly precise optical probes to provide spatiotemporal mechanistic information of dimerization and complex formation with downstream effectors. We present here a construct with genetically encoded, si...

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Autores principales: Perdios, Louis, Bunney, Tom D., Warren, Sean C., Dunsby, Christopher, French, Paul M.W., Tate, Edward W., Katan, Matilda
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Elsevier 2016
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4739061/
https://www.ncbi.nlm.nih.gov/pubmed/26482290
http://dx.doi.org/10.1016/j.jbior.2015.09.002
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author Perdios, Louis
Bunney, Tom D.
Warren, Sean C.
Dunsby, Christopher
French, Paul M.W.
Tate, Edward W.
Katan, Matilda
author_facet Perdios, Louis
Bunney, Tom D.
Warren, Sean C.
Dunsby, Christopher
French, Paul M.W.
Tate, Edward W.
Katan, Matilda
author_sort Perdios, Louis
collection PubMed
description In vitro and in vivo imaging of protein tyrosine kinase activity requires minimally invasive, molecularly precise optical probes to provide spatiotemporal mechanistic information of dimerization and complex formation with downstream effectors. We present here a construct with genetically encoded, site-specifically incorporated, bioorthogonal reporter that can be selectively labelled with exogenous fluorogenic probes to monitor the structure and function of fibroblast growth factor receptor (FGFR). GyrB.FGFR1KD.TC contains a coumermycin-induced artificial dimerizer (GyrB), FGFR1 kinase domain (KD) and a tetracysteine (TC) motif that enables fluorescent labelling with biarsenical dyes FlAsH-EDT(2) and ReAsH-EDT(2). We generated bimolecular system for time-resolved FRET (TR-FRET) studies, which pairs FlAsH-tagged GyrB.FGFR1KD.TC and N-terminal Src homology 2 (nSH2) domain of phospholipase Cγ (PLCγ), a downstream effector of FGFR1, fused to mTurquoise fluorescent protein (mTFP). We demonstrated phosphorylation-dependent TR-FRET readout of complex formation between mTFP.nSH2 and GyrB.FGFR1KD.TC. By further application of TR-FRET, we also demonstrated formation of the GyrB.FGFR1KD.TC homodimer by coumermycin-induced dimerization. Herein, we present a spectroscopic FRET approach to facilitate and propagate studies that would provide structural and functional insights for FGFR and other tyrosine kinases.
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spelling pubmed-47390612016-02-29 Time-resolved FRET reports FGFR1 dimerization and formation of a complex with its effector PLCγ1 Perdios, Louis Bunney, Tom D. Warren, Sean C. Dunsby, Christopher French, Paul M.W. Tate, Edward W. Katan, Matilda Adv Biol Regul Article In vitro and in vivo imaging of protein tyrosine kinase activity requires minimally invasive, molecularly precise optical probes to provide spatiotemporal mechanistic information of dimerization and complex formation with downstream effectors. We present here a construct with genetically encoded, site-specifically incorporated, bioorthogonal reporter that can be selectively labelled with exogenous fluorogenic probes to monitor the structure and function of fibroblast growth factor receptor (FGFR). GyrB.FGFR1KD.TC contains a coumermycin-induced artificial dimerizer (GyrB), FGFR1 kinase domain (KD) and a tetracysteine (TC) motif that enables fluorescent labelling with biarsenical dyes FlAsH-EDT(2) and ReAsH-EDT(2). We generated bimolecular system for time-resolved FRET (TR-FRET) studies, which pairs FlAsH-tagged GyrB.FGFR1KD.TC and N-terminal Src homology 2 (nSH2) domain of phospholipase Cγ (PLCγ), a downstream effector of FGFR1, fused to mTurquoise fluorescent protein (mTFP). We demonstrated phosphorylation-dependent TR-FRET readout of complex formation between mTFP.nSH2 and GyrB.FGFR1KD.TC. By further application of TR-FRET, we also demonstrated formation of the GyrB.FGFR1KD.TC homodimer by coumermycin-induced dimerization. Herein, we present a spectroscopic FRET approach to facilitate and propagate studies that would provide structural and functional insights for FGFR and other tyrosine kinases. Elsevier 2016-01 /pmc/articles/PMC4739061/ /pubmed/26482290 http://dx.doi.org/10.1016/j.jbior.2015.09.002 Text en © 2015 The Authors http://creativecommons.org/licenses/by/4.0/ This is an open access article under the CC BY license (http://creativecommons.org/licenses/by/4.0/).
spellingShingle Article
Perdios, Louis
Bunney, Tom D.
Warren, Sean C.
Dunsby, Christopher
French, Paul M.W.
Tate, Edward W.
Katan, Matilda
Time-resolved FRET reports FGFR1 dimerization and formation of a complex with its effector PLCγ1
title Time-resolved FRET reports FGFR1 dimerization and formation of a complex with its effector PLCγ1
title_full Time-resolved FRET reports FGFR1 dimerization and formation of a complex with its effector PLCγ1
title_fullStr Time-resolved FRET reports FGFR1 dimerization and formation of a complex with its effector PLCγ1
title_full_unstemmed Time-resolved FRET reports FGFR1 dimerization and formation of a complex with its effector PLCγ1
title_short Time-resolved FRET reports FGFR1 dimerization and formation of a complex with its effector PLCγ1
title_sort time-resolved fret reports fgfr1 dimerization and formation of a complex with its effector plcγ1
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4739061/
https://www.ncbi.nlm.nih.gov/pubmed/26482290
http://dx.doi.org/10.1016/j.jbior.2015.09.002
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