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Detecting cAMP-induced Epac activation by fluorescence resonance energy transfer: Epac as a novel cAMP indicator
被引:337
作者:
Ponsioen, B
Zhao, J
Riedl, J
Zwartkruis, F
van der Krogt, G
Zaccolo, M
Moolenaar, WH
Bos, JL
Jalink, K
机构:
[1] UMCU, Dept Physiol Chem, NL-3584 CG Utrecht, Netherlands
[2] Netherlands Canc Inst, Div Cell Biol, NL-1066 CX Amsterdam, Netherlands
[3] Netherlands Canc Inst, Div Cellular Biochem, NL-1066 CX Amsterdam, Netherlands
[4] Netherlands Canc Inst, Ctr Biomed Genet, NL-1066 CX Amsterdam, Netherlands
[5] UMCU, Ctr Biomed Genet, NL-3584 CG Utrecht, Netherlands
[6] Venetian Inst Mol Med, Dulbecco Telethon Inst, I-35124 Padua, Italy
来源:
关键词:
Epac;
PKA;
cAMP;
FRET;
D O I:
10.1038/sj.embor.7400290
中图分类号:
Q5 [生物化学];
Q7 [分子生物学];
学科分类号:
071010 ;
081704 ;
摘要:
Epac1 is a guanine nucleotide exchange factor for Rap1 that is activated by direct binding of cAMP. In vitro studies suggest that cAMP relieves the interaction between the regulatory and catalytic domains of Epac. Here, we monitor Epac1 activation in vivo by using a CFP-Epac-YFP fusion construct. When expressed in mammalian cells, CFP-Epac-YFP shows significant fluorescence resonance energy transfer ( FRET). FRET rapidly decreases in response to the cAMP-raising agents, whereas it fully recovers after addition of cAMP-lowering agonists. Thus, by undergoing a cAMP-induced conformational change, CFP-Epac-YFP serves as a highly sensitive cAMP indicator in vivo. When compared with a protein kinase A (PKA)-based sensor, Epac-based cAMP probes show an extended dynamic range and a better signal-to-noise ratio; furthermore, as a single polypeptide, CFP-Epac-YFP does not suffer from the technical problems encountered with multisubunit PKA-based sensors. These properties make Epac-based FRET probes the preferred indicators for monitoring cAMP levels in vivo.
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页码:1176 / 1180
页数:5
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