全部 标题 作者
关键词 摘要

OALib Journal期刊
ISSN: 2333-9721
费用:99美元

查看量下载量

相关文章

更多...
Sensors  2014 

Optimization of ERK Activity Biosensors for both Ratiometric and Lifetime FRET Measurements

DOI: 10.3390/s140101140

Keywords: genetically-encoded biosensor, ERK, FRET

Full-Text   Cite this paper   Add to My Lib

Abstract:

Among biosensors, genetically-encoded FRET-based biosensors are widely used to localize and measure enzymatic activities. Kinases activities are of particular interest as their spatiotemporal regulation has become crucial for the deep understanding of cell fate decisions. This is especially the case for ERK, whose activity is a key node in signal transduction pathways and can direct the cell into various processes. There is a constant need for better tools to analyze kinases in vivo, and to detect even the slightest variations of their activities. Here we report the optimization of the previous ERK activity reporters, EKAR and EKAREV. Those tools are constituted by two fluorophores adapted for FRET experiments, which are flanking a specific substrate of ERK, and a domain able to recognize and bind this substrate when phosphorylated. The latter phosphorylation allows a conformational change of the biosensor and thus a FRET signal. We improved those biosensors with modifications of: (i) fluorophores and (ii) linkers between substrate and binding domain, resulting in new versions that exhibit broader dynamic ranges upon EGF stimulation when FRET experiments are carried out by fluorescence lifetime and ratiometric measurements. Herein, we characterize those new biosensors and discuss their observed differences that depend on their fluorescence properties.

References

[1]  Bodart, J.F. Extracellular-regulated kinase-mitogen-activated protein kinase cascade: Unsolved issues. J. Cell Biochem. 2010, 109, 850–857.
[2]  Wang, R.; He, G.; Nelman-Gonzalez, M.; Ashorn, C.L.; Gallick, G.E.; Stukenberg, P.T.; Kirschner, M.W.; Kuang, J. Regulation of Cdc25C by ERK-MAP kinases during the G2/M transition. Cell 2007, 128, 1119–1132.
[3]  Yoon, S.; Seger, R. The extracellular signal-regulated kinase: Multiple substrates regulate diverse cellular functions. Growth Factors 2006, 24, 21–44.
[4]  Santos, S.D.; Verveer, P.J.; Bastiaens, P.I. Growth factor-induced MAPK network topology shapes Erk response determining PC-12 cell fate. Nat. Cell Biol. 2007, 9, 324–330.
[5]  Ferrell, J.E., Jr.; Machleder, E.M. The biochemical basis of an all-or-none cell fate switch in Xenopus oocytes. Science 1998, 280, 895–898.
[6]  Beaujois, R.; Riquet, F.; Cailliau, K.; Browayes, E.; Russo, C.; Blossey, R.; Vicogne, D.; Marin, M.; Lescuyer-Rousseau, A.; Vilain, J.P.; et al. Ultrasensitive MAPK/Erk activation in absence of protein synthesis in Xenopus oocytes. MAP Kinase 2013, 2, 1–9.
[7]  Russo, C.; Giuraniuc, C.; Blossey, R.; Bodart, J.F. On the equilibria of the MAPK cascade: Cooperativity, modularity and bistability. Phys. A Stat. Mech. Appl 2009, 388, 5070–5080.
[8]  Pullikuth, A.K.; Catling, A.D. Scaffold mediated regulation of MAPK signaling and cytoskeletal dynamics: A perspective. Cell Signal 2007, 19, 1621–1632.
[9]  Sipieter, F.; Vandame, P.; Spriet, C.; Leray, A.; Vincent, P.; Trinel, D.; Bodart, J.F.; Riquet, F.B.; Heliot, L. From FRET imaging to practical methodology for kinase activity sensing in living cells. Prog. Mol. Biol. Transl. Sci. 2013, 113, 145–216.
[10]  Kardash, E.; Bandemer, J.; Raz, E. Imaging protein activity in live embryos using fluorescence resonance energy transfer biosensors. Nat. Protoc. 2011, 6, 1835–1846.
[11]  Fujioka, A.; Terai, K.; Itoh, R.E.; Aoki, K.; Nakamura, T.; Kuroda, S.; Nishida, E.; Matsuda, M. Dynamics of the Ras/ERK MAPK cascade as monitored by fluorescent probes. J. Biol. Chem. 2006, 281, 8917–8926.
[12]  Tsuboi, Y.; Ichida, T.; Sugitani, S.; Genda, T.; Inayoshi, J.; Takamura, M.; Matsuda, Y.; Nomoto, M.; Aoyagi, Y. Overexpression of extracellular signal-regulated protein kinase and its correlation with proliferation in human hepatocellular carcinoma. Liver Int. 2004, 24, 432–436.
[13]  Sato, M.; Kawai, Y.; Umezawa, Y. Genetically encoded fluorescent indicators to visualize protein phosphorylation by extracellular signal-regulated kinase in single living cells. Anal. Chem. 2007, 79, 2570–2575.
[14]  Harvey, C.D.; Ehrhardt, A.G.; Cellurale, C.; Zhong, H.; Yasuda, R.; Davis, R.J.; Svoboda, K. A genetically encoded fluorescent sensor of ERK activity. Proc. Nat. Acad. Sci. USA 2008, 105, 19264–19269.
[15]  Eymin, B.; Claverie, P.; Salon, C.; Brambilla, C.; Brambilla, E.; Gazzeri, S. p14ARF triggers G2 arrest through ERK-mediated Cdc25C phosphorylation, ubiquitination and proteasomal degradation. Cell Cycle 2006, 5, 759–765.
[16]  Komatsu, N.; Aoki, K.; Yamada, M.; Yukinaga, H.; Fujita, Y.; Kamioka, Y.; Matsuda, M. Development of an optimized backbone of FRET biosensors for kinases and GTPases. Mol. Biol. Cell 2011, 22, 4647–4656.
[17]  Klarenbeek, J.B.; Goedhart, J.; Hink, M.A.; Gadella, T.W.; Jalink, K. A mTurquoise-based cAMP sensor for both FLIM and ratiometric read-out has improved dynamic range. PLoS One 2011, 6, e19170.
[18]  Depry, C.; Allen, M.D.; Zhang, J. Visualization of PKA activity in plasma membrane microdomains. Mol. Biosyst. 2011, 7, 52–58.
[19]  Allen, M.D.; Zhang, J. Subcellular dynamics of protein kinase a activity visualized by FRET-based reporters. Biochem. Biophys. Res. Commun. 2006, 348, 716–721.
[20]  Goedhart, J.; van Weeren, L.; Hink, M.A.; Vischer, N.O.; Jalink, K.; Gadella, T.W., Jr. Bright cyan fluorescent protein variants identified by fluorescence lifetime screening. Nat. Methods 2010, 7, 137–139.
[21]  Kremers, G.J.; Goedhart, J.; van Munster, E.B.; Gadella, T.W., Jr. Cyan and yellow super fluorescent proteins with improved brightness, protein folding, and FRET Forster radius. Biochemistry 2006, 45, 6570–6580.
[22]  Fritz, R.D.; Letzelter, M.; Reimann, A.; Martin, K.; Fusco, L.; Ritsma, L.; Ponsioen, B.; Fluri, E.; Schulte-Merker, S.; van Rheenen, J.; et al. A versatile toolkit to produce sensitive FRET biosensors to visualize signaling in time and space. Sci. Signal 2013, 6, 12.

Full-Text

Contact Us

service@oalib.com

QQ:3279437679

WhatsApp +8615387084133