Biophysical Techniques for Detection of cAMP and cGMP in Living Cells
Abstract
:1. Introduction
2. Techniques to Measure Cyclic Nucleotides
2.1. Biochemical Methods
2.2. Cyclic Nucleotide Gated Channels (CNGCs)
2.3. Förster Resonance Energy Transfer (FRET) Based Sensors
2.3.1. FRET Sensors to Detect cAMP
2.3.1.1. Protein Kinase A (PKA) Based cAMP Sensors
2.3.1.2. Epac-Based cAMP Sensors
2.3.1.3. Cyclic Nucleotide Gated Channels (CNGC) Based cAMP Sensors
2.3.2. FRET Sensors to Detect cGMP
2.4. Single GFP-Linked Biosensors
2.5. Bioluminescence Resonance Energy Transfer (BRET) Based Sensors
3. Analysis of Compartmentalized Cyclic Nucleotide Signaling
4. Conclusions and Outlook
Acknowledgments
Conflict of Interest
References
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Biosensor | Sensitivity | Advantages/Disadvantages | References |
---|---|---|---|
CNGC -subunit wildtype C460W/E583M mutant | cAMP EC50 = 36 μM cGMP EC50 = 1.6 μM cAMP EC50 = 1 μM | Low cAMP/cGMP selectivity. Restriction to the subsarcolemmal compartment | [53,55] |
FRET based biosensors: | |||
FlCRhR (PKA based) | cAMP EC50 = 90 nM | Chemical labeling, purification and microinjection Relatively slow kinetics | [64] |
R-CFP, C-YFP (PKA based) | cAMP EC50 = 0.5–0.9 μM | Multimeric. Here and below: genetically encoded | [72–74] |
PKA-camps (PKA based) | cAMP EC50 = 1.9 μM | Single-chain architecture | [78] |
AKAR1-3 | Not applicable | Measures PKA catalytic activity in real time | [79–81] |
AKAR4 | Not applicable | Improved dynamic range | [82] |
Epac1/2-camps (Epac based) | cAMP EC50 = 2.4/0.9 μM | Single-chain. Faster kinetics than for multimeric sensors | [78] |
Epac2-camp300 CFP-Epac-YFP ( DEP,CD) | cAMP EC50 = 300 nM cAMP EC50 ~ 50 μM cAMP EC50 ~ 15 μM | High sensitivity Single-chain. Relatively low sensitivity | [104] [84,111,112] |
ICUE1/2 (Epac based) | cAMP EC50 ~ 10–50 μM | As above | [83,87] |
HCN2-camps (CNGC based) | cAMP EC50 = 6 μM | Good for cells with high basal cAMP concentrations | [88] |
CGY-Del1 | cGMP EC50 = 20 nM | Low cGMP/cAMP selectivity | [92,98] |
Cygnet-1/2 (PKG based) | cGMP EC50 = 1.5/1.9 μM | Single-chain. Relatively low sensitivity and temporal resolution | [90] |
cGES-DE2/5 (PDE2/5 based) | cGMP EC50 = 0.9/1.5 μM | Small size. Relatively low sensitivity | [98] |
redcGES-DE5 (PDE5 based) | cGMP EC50 = 40 nM | High sensitivity | [99] |
cGi-500/3000/6000 (PKG based) | cGMP EC50 = 500/3000/6000 nM | Small size. Relatively high sensitivity and dynamic range. Fast kinetics | [91] |
Non-FRET sensors: FlincGs cGMP | EC50 = 150nM (δ-FlincG) | Good dynamic range. Rapid kinetics | [108] |
Targeted biosensor | Structure | Microdomain | References |
---|---|---|---|
RI_epac and RII_epac | N-terminal dimerization-docking domains of RI or RII fused to Epac1-camps | PKA-RI and PKA-RII | [126] |
Epac1-camps-PDE3/4 | Fusion of Epac1-camps to N-terminus of PDEs | PDE3/4 | [127] |
cGES-DE2-PDE5 | Fusion of cGES-DE2 to N-terminus of PDE5 | PDE5 | [127] |
Epac1-camps-Hsp20 | Fusion of Epac1-camps to Hsp20 | Hsp20 | [128] |
SR-AKAR3 | Fusion of AKAR3 to the N-terminal helical transmembrane domain of phospholamban | SR membrane | [129] |
pm PKA-RII-CFP/C-YFP | 26 amino acid CAAX box sequence fused to the C-terminus of PKA-CFP | Subsarcolemmal | [130] |
pmEpac2-camps and AC8-Epac2-camps pmEpac1-camps | 10 amino acid sequence form Lyn kinase or AC8 are fused to N-terminus of Epac1/2-camps | Subsarcolemmal caveolar or associated with AC8 | [111,112] |
pm ICUE, NLS-ICUE, | mitoICUE Fusions of ICUE to CAAX box, nuclear localization signals or two different mitochondrial sequences | Subsarcolemmal, nuclear, mitochondrial | [83,131] |
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Sprenger, J.U.; Nikolaev, V.O. Biophysical Techniques for Detection of cAMP and cGMP in Living Cells. Int. J. Mol. Sci. 2013, 14, 8025-8046. https://doi.org/10.3390/ijms14048025
Sprenger JU, Nikolaev VO. Biophysical Techniques for Detection of cAMP and cGMP in Living Cells. International Journal of Molecular Sciences. 2013; 14(4):8025-8046. https://doi.org/10.3390/ijms14048025
Chicago/Turabian StyleSprenger, Julia U., and Viacheslav O. Nikolaev. 2013. "Biophysical Techniques for Detection of cAMP and cGMP in Living Cells" International Journal of Molecular Sciences 14, no. 4: 8025-8046. https://doi.org/10.3390/ijms14048025
APA StyleSprenger, J. U., & Nikolaev, V. O. (2013). Biophysical Techniques for Detection of cAMP and cGMP in Living Cells. International Journal of Molecular Sciences, 14(4), 8025-8046. https://doi.org/10.3390/ijms14048025