Global analysis of time correlated single photon counting FRET-FLIM data
Optics Express, Vol. 17, Issue 8, pp. 6493-6508 (2009)
http://dx.doi.org/10.1364/OE.17.006493
Acrobat PDF (755 KB)
Abstract
Fluorescence lifetime imaging microscopy (FLIM) can be used to quantify molecular reactions in cells by detecting fluorescence resonance energy transfer (FRET). Confocal FLIM systems based on time correlated single photon counting (TCSPC) methods provide high spatial resolution and high sensitivity, but suffer from poor signal to noise ratios (SNR) that complicate quantitative analysis. We extend a global analysis method, originally developed for single frequency domain FLIM data, with a new filtering method optimized for FRET-FLIM data and apply it to TCSPC data. With this approach, the fluorescent lifetimes and relative concentrations of free and interacting molecules can be reliably estimated, even if the SNR is low. The required calibration values of the impulse response function are directly estimated from the data, eliminating the need for reference samples. The proposed method is efficient and robust, and can be routinely applied to analyze FRET-FLIM data acquired in intact cells.
© 2009 Optical Society of America
1. Introduction
J. R. Lakowicz, Principles of Fluorescence Spectroscopy , 3rd ed. (Springer, 2006). [CrossRef]
K. Carlsson, A. Liljeborg, R. M. Andersson, and H. Brismar, “Confocal pH imaging of microscopic specimens using fluorescence lifetimes and phase fluorometry: influence of parameter choice on system performance,” J. Microsc. 199, 106–114 (2000). [CrossRef] [PubMed]
P. I. H. Bastiaens and A. Squire, “Fluorescence lifetime imaging microscopy: spatial resolution of biochemical processes in the cell,” Trends Cell Biol. 9, 48–52 (1999).' [CrossRef] [PubMed]
F. S. Wouters, P. J. Verveer, and P. I. H. Bastiaens, “Imaging biochemistry inside cells,” Trends Cell Biol. 11, 203–211 (2001). [CrossRef] [PubMed]
F. S. Wouters, P. J. Verveer, and P. I. H. Bastiaens, “Imaging biochemistry inside cells,” Trends Cell Biol. 11, 203–211 (2001). [CrossRef] [PubMed]
A. Schönle, M. Glatz, and S. W. Hell, “Four-dimensional multiphoton microscopy with time-correlated single-photon counting,” Appl. Opt. 39, 6306–6311 (2000). [CrossRef]
W. Becker, A. Bergmann, M. A. Hink, K. König, K. Benndorf, and C. Biskup, “Fluorescence lifetime imaging by time-correlated single-photon counting,” Microsc. Res. Tech. 63, 58–66 (2004). [CrossRef]
M. Peter and S. M. Ameer-Beg, “Imaging molecular interactions by multiphoton FLIM,” Biol. Cell 96, 231–236 (2004). [CrossRef] [PubMed]
E. Gratton, S. Breusegem, J. Sutin, Q. Ruan, and N. Barry, “Fluorescence lifetime imaging for the two-photon microscope: time-domain and frequency-domain methods,” J. Biomed. Opt. 8, 381–390 (2003). [CrossRef] [PubMed]
S. Pelet, M. J. R. Previte, L. H. Laiho, and P. T. C. So, “A fast global fitting algorithm for fluorescence lifetime imaging microscopy based on image segmentation,” Biophys. J. 87, 2807–2817 (2004). [CrossRef] [PubMed]
P. Barber, S. Ameer-Beg, J. Gilbey, R. J. Edens, I. Ezike, and B. Vojnovic, “Global and pixel kinetic data analysis for FRET detection by multi-photon time-domain FLIM,” Proc. SPIE 5700, 171–181 (2005). [CrossRef]
P. Barber, S. Ameer-Beg, J. Gilbey, L. Carlin, M. Keppler, T. Ng, and B. Vojnovic, “Multiphoton time-domain fluorescence lifetime imaging microscopy: practical application to protein-protein interactions using global analysis,” J. R. Soc. Interface 6, S93–S105 (2008). [CrossRef]
P. J. Verveer, A. Squire, and P. I. H. Bastiaens, “Global analysis of fluorescence lifetime imaging microscopy data,” Biophys. J. 78, 2127–2137 (2000). [CrossRef] [PubMed]
P. J. Verveer, F. S. Wouters, A. R. Reynolds, and P. I. H. Bastiaens, “Quantitative imaging of lateral ErbB1 receptor signal propagation in the plasma membrane,” Science 290, 1567–1570 (2000). [CrossRef] [PubMed]
P. J. Verveer and P. I. H. Bastiaens, “Evaluation of global analysis algorithms for single frequency fluorescence lifetime imaging microscopy data,” J. Microsc. 209, 1–7 (2003). [CrossRef] [PubMed]
A. H. A. Clayton, Q. S. Hanley, and P. J. Verveer, “Graphical representation and multicomponent analysis of single-frequency fluorescence lifetime imaging microscopy data,” J. Microsc. 213, 1–5 (2004). [CrossRef]
P. J. Verveer, F. S. Wouters, A. R. Reynolds, and P. I. H. Bastiaens, “Quantitative imaging of lateral ErbB1 receptor signal propagation in the plasma membrane,” Science 290, 1567–1570 (2000). [CrossRef] [PubMed]
T. Ng, M. Parsons, W. E. Hughes, J. Monypenny, D. Zicha, A. Gautreau, M. Arpin, S. Gschmeissner, P. J. Verveer, P. I. H. Bastiaens, and P. J. Parker, “Ezrin is a downstream effector of trafficking PKC-integrin complexes involved in the control of cell motility,” EMBO J. 20, 2723–2741 (2001). [CrossRef] [PubMed]
A. R. Reynolds, C. Tischer, P. J. Verveer, O. Rocks, and P. I. H. Bastiaens, “EGFR activation coupled to inhibition of tyrosine phosphatases causes lateral signal propagation,” Nat. Cell Biol. 5, 447–453 (2003). [CrossRef] [PubMed]
O. Rocks, A. Peyker, M. Kahms, P. J. Verveer, C. Koerner, M. Lumbierres, J. Kuhlmann, H. Waldmann, A. Wittinghofer, and P. I. H. Bastiaens, “An acylation cycle regulates localization and activity of palmitoylated Ras isoforms,” Science 307, 1746–1752 (2005). [CrossRef] [PubMed]
G. Xouri, A. Squire, M. Dimaki, B. Geverts, P. J. Verveer, S. Taraviras, H. Nishitani, A. B. Houtsmuller, P. I. H. Bastiaens, and Z. Lygerou, “Cdt1 associates dynamically with chromatin throughout G1 and recruits Geminin onto chromatin,” EMBO J. 26, 1303–14 (2007). [CrossRef] [PubMed]
M. Digman, V. R. Caiolfa, M. Zamai, and E. Gratton, “The Phasor approach to fluorescence lifetime imaging analysis,” Biophys. J. (2007). [PubMed]
R. A. Colyer, C. Lee, and E. Gratton, “A novel fluorescence lifetime imaging system that optimizes photon efficiency,” Microsc. Res. Tech. 71, 201–213 (2008). [CrossRef]
S. Padilla-Parra, N. Audugé, M. Coppey-Moisan, and M. Tramier, “Quantitative FRET analysis by fast acquisition time domain FLIM at high spatial resolution in living cells,” Biophys. J. 95, 2976–2988 (2008). [CrossRef] [PubMed]
2. Theory
J. R. Lakowicz, Principles of Fluorescence Spectroscopy , 3rd ed. (Springer, 2006). [CrossRef]
2.1. Fourier analysis of time-domain FLIM data
2.2. Global analysis of bi-exponential time-domain FLIM data
A. H. A. Clayton, Q. S. Hanley, and P. J. Verveer, “Graphical representation and multicomponent analysis of single-frequency fluorescence lifetime imaging microscopy data,” J. Microsc. 213, 1–5 (2004). [CrossRef]
D. M. Jameson, E. Gratton, and R. Hall, “The measurement and analysis of heterogeneous emissions by multi-frequency phase and modulation fluorometry.” Appl. Spec. Rev. 20, 55–106 (1984). [CrossRef]
P. J. Verveer and P. I. H. Bastiaens, “Evaluation of global analysis algorithms for single frequency fluorescence lifetime imaging microscopy data,” J. Microsc. 209, 1–7 (2003). [CrossRef] [PubMed]
D. M. Jameson, E. Gratton, and R. Hall, “The measurement and analysis of heterogeneous emissions by multi-frequency phase and modulation fluorometry.” Appl. Spec. Rev. 20, 55–106 (1984). [CrossRef]
P. J. Verveer and P. I. H. Bastiaens, “Evaluation of global analysis algorithms for single frequency fluorescence lifetime imaging microscopy data,” J. Microsc. 209, 1–7 (2003). [CrossRef] [PubMed]
A. H. A. Clayton, Q. S. Hanley, and P. J. Verveer, “Graphical representation and multicomponent analysis of single-frequency fluorescence lifetime imaging microscopy data,” J. Microsc. 213, 1–5 (2004). [CrossRef]
A. Esposito, H. C. Gerritsen, and F. S. Wouters, “Fluorescence lifetime heterogeneity resolution in the frequency domain by lifetime moments analysis,” Biophys. J. 89, 4286–4299 (2005). [CrossRef] [PubMed]
G. I. Redford and R. M. Clegg, “Polar plot representation for frequency-domain analysis of fluorescence lifetimes,” J. Fluoresc. 15, 805–815 (2005). [CrossRef] [PubMed]
2.3. The impulse response function
2.4. Global analysis of FRET-FLIM data
G. W. Gordon, G. Berry, X. H. Liang, B. Levine, and B. Herman, “Quantitative fluorescence resonance energy transfer measurements using fluorescence microscopy,” Biophys. J. 74, 2702–2713 (1998). [CrossRef] [PubMed]
P. J. Verveer, A. Squire, and P. I. H. Bastiaens, “Global analysis of fluorescence lifetime imaging microscopy data,” Biophys. J. 78, 2127–2137 (2000). [CrossRef] [PubMed]
P. J. Verveer, F. S. Wouters, A. R. Reynolds, and P. I. H. Bastiaens, “Quantitative imaging of lateral ErbB1 receptor signal propagation in the plasma membrane,” Science 290, 1567–1570 (2000). [CrossRef] [PubMed]
T. Ng, M. Parsons, W. E. Hughes, J. Monypenny, D. Zicha, A. Gautreau, M. Arpin, S. Gschmeissner, P. J. Verveer, P. I. H. Bastiaens, and P. J. Parker, “Ezrin is a downstream effector of trafficking PKC-integrin complexes involved in the control of cell motility,” EMBO J. 20, 2723–2741 (2001). [CrossRef] [PubMed]
A. R. Reynolds, C. Tischer, P. J. Verveer, O. Rocks, and P. I. H. Bastiaens, “EGFR activation coupled to inhibition of tyrosine phosphatases causes lateral signal propagation,” Nat. Cell Biol. 5, 447–453 (2003). [CrossRef] [PubMed]
O. Rocks, A. Peyker, M. Kahms, P. J. Verveer, C. Koerner, M. Lumbierres, J. Kuhlmann, H. Waldmann, A. Wittinghofer, and P. I. H. Bastiaens, “An acylation cycle regulates localization and activity of palmitoylated Ras isoforms,” Science 307, 1746–1752 (2005). [CrossRef] [PubMed]
G. Xouri, A. Squire, M. Dimaki, B. Geverts, P. J. Verveer, S. Taraviras, H. Nishitani, A. B. Houtsmuller, P. I. H. Bastiaens, and Z. Lygerou, “Cdt1 associates dynamically with chromatin throughout G1 and recruits Geminin onto chromatin,” EMBO J. 26, 1303–14 (2007). [CrossRef] [PubMed]
J. R. Lakowicz, Principles of Fluorescence Spectroscopy , 3rd ed. (Springer, 2006). [CrossRef]
2.5. Global analysis of TCSPC data with low SNR
F. S. Wouters and P. I. H. Bastiaens, “Fluorescence lifetime imaging of receptor tyrosine kinase activity in cells,” Curr. Biol. 9, 1127–1130 (1999). [CrossRef] [PubMed]
3. Materials and methods
3.1. Simulations
3.2. Data analysis
- TCSPC curves are extracted from several data sets, from donor-only samples and from samples with acceptor. Pixels with a total number of photons less than a preset threshold of 20 counts are excluded from the analysis.
- The parameters of the IRF, σ and t 0, are calculated from the Fourier transform of the average of the selected curves, as described in section 2.3.
- The Fourier coefficient of the nth harmonic is calculated from each TCSPC curve:where bk i s the number of counts in the kth bin of the histogram of photon counts acquired at pixel i, and B is the total number of used bins. Using Eq. (14) and σ and t 0 these Fourier coefficients are corrected for En to obtain Ri n .
- The distribution of R n,1 of the donor-only data is estimated by a weighted mean and standard deviation of the real and imaginary parts, to obtain R̄ n,1, σReR n,1 and σImR n,1. The weight in each pixel is chosen equal to the square root of the number of photons, which is an estimator for the SNR of a Poisson process (SNR = N/√N, with N the mean and variance of the Poisson process).
- All points from images with donor and acceptor are filtered according to the procedure described in section 2.5, assuming a symmetrical distribution of the donor with mean R̄ n,1 and standard deviation equal to the average of the estimated standard deviations: σ R n,1 = (σReR n,1 + σImR n,1)/2.
- A straight line ImRi n = un + vn ReRi n is fit through all remaining donor/acceptor points Ri n given the constraint that this line should pass through the point R̄ n,1:and the slope v is estimated by least squares estimation:where SR = ∑ iwi ReRi n , SI = ∑ iwi ImRi n ,SRR = ∑ iwi (ReRi n )2, SRI = ∑ iwi ReRi n ImRi n , and Sw = ∑ iwi . The weights wi are chosen equal to 1/Ii , where Ii is the total number of counts in pixel i. The calculation of these sums does not require all Ri n to be stored in memory simultaneously, and memory requirements are therefore low.
- The two lifetimes follow from un and vn , according to Eq. (11).
- In each pixel the fractional fluorescence intensities α i of the short lifetime species are found using Eq. (12), and converted to relative concentrations by renormalization with the estimated lifetimes as described by Verveer et al. [13].
P. J. Verveer, A. Squire, and P. I. H. Bastiaens, “Global analysis of fluorescence lifetime imaging microscopy data,” Biophys. J. 78, 2127–2137 (2000). [CrossRef] [PubMed]
3.3. Sample preparation
3.4. Measurement of the impulse response function
3.5. TCSPC measurements
4. Results
4.1. Simulations
4.2. Application to FRET in cells
P. J. Verveer, F. S. Wouters, A. R. Reynolds, and P. I. H. Bastiaens, “Quantitative imaging of lateral ErbB1 receptor signal propagation in the plasma membrane,” Science 290, 1567–1570 (2000). [CrossRef] [PubMed]
F. S. Wouters and P. I. H. Bastiaens, “Fluorescence lifetime imaging of receptor tyrosine kinase activity in cells,” Curr. Biol. 9, 1127–1130 (1999). [CrossRef] [PubMed]
P. J. Verveer, F. S. Wouters, A. R. Reynolds, and P. I. H. Bastiaens, “Quantitative imaging of lateral ErbB1 receptor signal propagation in the plasma membrane,” Science 290, 1567–1570 (2000). [CrossRef] [PubMed]
A. H. A. Clayton, Q. S. Hanley, and P. J. Verveer, “Graphical representation and multicomponent analysis of single-frequency fluorescence lifetime imaging microscopy data,” J. Microsc. 213, 1–5 (2004). [CrossRef]
P. J. Verveer, F. S. Wouters, A. R. Reynolds, and P. I. H. Bastiaens, “Quantitative imaging of lateral ErbB1 receptor signal propagation in the plasma membrane,” Science 290, 1567–1570 (2000). [CrossRef] [PubMed]
F. S. Wouters and P. I. H. Bastiaens, “Fluorescence lifetime imaging of receptor tyrosine kinase activity in cells,” Curr. Biol. 9, 1127–1130 (1999). [CrossRef] [PubMed]
5. Discussion
S. Pelet, M. J. R. Previte, L. H. Laiho, and P. T. C. So, “A fast global fitting algorithm for fluorescence lifetime imaging microscopy based on image segmentation,” Biophys. J. 87, 2807–2817 (2004). [CrossRef] [PubMed]
P. Barber, S. Ameer-Beg, J. Gilbey, R. J. Edens, I. Ezike, and B. Vojnovic, “Global and pixel kinetic data analysis for FRET detection by multi-photon time-domain FLIM,” Proc. SPIE 5700, 171–181 (2005). [CrossRef]
P. Barber, S. Ameer-Beg, J. Gilbey, L. Carlin, M. Keppler, T. Ng, and B. Vojnovic, “Multiphoton time-domain fluorescence lifetime imaging microscopy: practical application to protein-protein interactions using global analysis,” J. R. Soc. Interface 6, S93–S105 (2008). [CrossRef]
S. Pelet, M. J. R. Previte, L. H. Laiho, and P. T. C. So, “A fast global fitting algorithm for fluorescence lifetime imaging microscopy based on image segmentation,” Biophys. J. 87, 2807–2817 (2004). [CrossRef] [PubMed]
P. Barber, S. Ameer-Beg, J. Gilbey, L. Carlin, M. Keppler, T. Ng, and B. Vojnovic, “Multiphoton time-domain fluorescence lifetime imaging microscopy: practical application to protein-protein interactions using global analysis,” J. R. Soc. Interface 6, S93–S105 (2008). [CrossRef]
References and links
J. R. Lakowicz, Principles of Fluorescence Spectroscopy , 3rd ed. (Springer, 2006). [CrossRef] | |
K. Carlsson, A. Liljeborg, R. M. Andersson, and H. Brismar, “Confocal pH imaging of microscopic specimens using fluorescence lifetimes and phase fluorometry: influence of parameter choice on system performance,” J. Microsc. 199, 106–114 (2000). [CrossRef] [PubMed] | |
R. M. Clegg, “Fluorescence resonance energy tranfer,” Fluorescence Imaging Spectroscopy and Microscopy 137, 179–251 (1996). | |
P. I. H. Bastiaens and A. Squire, “Fluorescence lifetime imaging microscopy: spatial resolution of biochemical processes in the cell,” Trends Cell Biol. 9, 48–52 (1999).' [CrossRef] [PubMed] | |
F. S. Wouters, P. J. Verveer, and P. I. H. Bastiaens, “Imaging biochemistry inside cells,” Trends Cell Biol. 11, 203–211 (2001). [CrossRef] [PubMed] | |
A. Schönle, M. Glatz, and S. W. Hell, “Four-dimensional multiphoton microscopy with time-correlated single-photon counting,” Appl. Opt. 39, 6306–6311 (2000). [CrossRef] | |
W. Becker, A. Bergmann, M. A. Hink, K. König, K. Benndorf, and C. Biskup, “Fluorescence lifetime imaging by time-correlated single-photon counting,” Microsc. Res. Tech. 63, 58–66 (2004). [CrossRef] | |
M. Peter and S. M. Ameer-Beg, “Imaging molecular interactions by multiphoton FLIM,” Biol. Cell 96, 231–236 (2004). [CrossRef] [PubMed] | |
E. Gratton, S. Breusegem, J. Sutin, Q. Ruan, and N. Barry, “Fluorescence lifetime imaging for the two-photon microscope: time-domain and frequency-domain methods,” J. Biomed. Opt. 8, 381–390 (2003). [CrossRef] [PubMed] | |
S. Pelet, M. J. R. Previte, L. H. Laiho, and P. T. C. So, “A fast global fitting algorithm for fluorescence lifetime imaging microscopy based on image segmentation,” Biophys. J. 87, 2807–2817 (2004). [CrossRef] [PubMed] | |
P. Barber, S. Ameer-Beg, J. Gilbey, R. J. Edens, I. Ezike, and B. Vojnovic, “Global and pixel kinetic data analysis for FRET detection by multi-photon time-domain FLIM,” Proc. SPIE 5700, 171–181 (2005). [CrossRef] | |
P. Barber, S. Ameer-Beg, J. Gilbey, L. Carlin, M. Keppler, T. Ng, and B. Vojnovic, “Multiphoton time-domain fluorescence lifetime imaging microscopy: practical application to protein-protein interactions using global analysis,” J. R. Soc. Interface 6, S93–S105 (2008). [CrossRef] | |
P. J. Verveer, A. Squire, and P. I. H. Bastiaens, “Global analysis of fluorescence lifetime imaging microscopy data,” Biophys. J. 78, 2127–2137 (2000). [CrossRef] [PubMed] | |
P. J. Verveer, F. S. Wouters, A. R. Reynolds, and P. I. H. Bastiaens, “Quantitative imaging of lateral ErbB1 receptor signal propagation in the plasma membrane,” Science 290, 1567–1570 (2000). [CrossRef] [PubMed] | |
P. J. Verveer and P. I. H. Bastiaens, “Evaluation of global analysis algorithms for single frequency fluorescence lifetime imaging microscopy data,” J. Microsc. 209, 1–7 (2003). [CrossRef] [PubMed] | |
A. H. A. Clayton, Q. S. Hanley, and P. J. Verveer, “Graphical representation and multicomponent analysis of single-frequency fluorescence lifetime imaging microscopy data,” J. Microsc. 213, 1–5 (2004). [CrossRef] | |
T. Ng, M. Parsons, W. E. Hughes, J. Monypenny, D. Zicha, A. Gautreau, M. Arpin, S. Gschmeissner, P. J. Verveer, P. I. H. Bastiaens, and P. J. Parker, “Ezrin is a downstream effector of trafficking PKC-integrin complexes involved in the control of cell motility,” EMBO J. 20, 2723–2741 (2001). [CrossRef] [PubMed] | |
A. R. Reynolds, C. Tischer, P. J. Verveer, O. Rocks, and P. I. H. Bastiaens, “EGFR activation coupled to inhibition of tyrosine phosphatases causes lateral signal propagation,” Nat. Cell Biol. 5, 447–453 (2003). [CrossRef] [PubMed] | |
O. Rocks, A. Peyker, M. Kahms, P. J. Verveer, C. Koerner, M. Lumbierres, J. Kuhlmann, H. Waldmann, A. Wittinghofer, and P. I. H. Bastiaens, “An acylation cycle regulates localization and activity of palmitoylated Ras isoforms,” Science 307, 1746–1752 (2005). [CrossRef] [PubMed] | |
G. Xouri, A. Squire, M. Dimaki, B. Geverts, P. J. Verveer, S. Taraviras, H. Nishitani, A. B. Houtsmuller, P. I. H. Bastiaens, and Z. Lygerou, “Cdt1 associates dynamically with chromatin throughout G1 and recruits Geminin onto chromatin,” EMBO J. 26, 1303–14 (2007). [CrossRef] [PubMed] | |
M. Digman, V. R. Caiolfa, M. Zamai, and E. Gratton, “The Phasor approach to fluorescence lifetime imaging analysis,” Biophys. J. (2007). [PubMed] | |
R. A. Colyer, C. Lee, and E. Gratton, “A novel fluorescence lifetime imaging system that optimizes photon efficiency,” Microsc. Res. Tech. 71, 201–213 (2008). [CrossRef] | |
S. Padilla-Parra, N. Audugé, M. Coppey-Moisan, and M. Tramier, “Quantitative FRET analysis by fast acquisition time domain FLIM at high spatial resolution in living cells,” Biophys. J. 95, 2976–2988 (2008). [CrossRef] [PubMed] | |
D. M. Jameson, E. Gratton, and R. Hall, “The measurement and analysis of heterogeneous emissions by multi-frequency phase and modulation fluorometry.” Appl. Spec. Rev. 20, 55–106 (1984). [CrossRef] | |
A. Esposito, H. C. Gerritsen, and F. S. Wouters, “Fluorescence lifetime heterogeneity resolution in the frequency domain by lifetime moments analysis,” Biophys. J. 89, 4286–4299 (2005). [CrossRef] [PubMed] | |
G. I. Redford and R. M. Clegg, “Polar plot representation for frequency-domain analysis of fluorescence lifetimes,” J. Fluoresc. 15, 805–815 (2005). [CrossRef] [PubMed] | |
G. W. Gordon, G. Berry, X. H. Liang, B. Levine, and B. Herman, “Quantitative fluorescence resonance energy transfer measurements using fluorescence microscopy,” Biophys. J. 74, 2702–2713 (1998). [CrossRef] [PubMed] | |
F. S. Wouters and P. I. H. Bastiaens, “Fluorescence lifetime imaging of receptor tyrosine kinase activity in cells,” Curr. Biol. 9, 1127–1130 (1999). [CrossRef] [PubMed] |
OCIS Codes
(170.1420) Medical optics and biotechnology : Biology
(170.1790) Medical optics and biotechnology : Confocal microscopy
(170.2520) Medical optics and biotechnology : Fluorescence microscopy
(170.3650) Medical optics and biotechnology : Lifetime-based sensing
(170.6280) Medical optics and biotechnology : Spectroscopy, fluorescence and luminescence
ToC Category:
Medical Optics and Biotechnology
History
Original Manuscript: January 23, 2009
Revised Manuscript: February 26, 2009
Manuscript Accepted: March 10, 2009
Published: April 3, 2009
Virtual Issues
Vol. 4, Iss. 6 Virtual Journal for Biomedical Optics
Citation
Hernan E. Grecco, Pedro Roda-Navarro, and Peter J. Verveer, "Global analysis of time correlated single photon counting FRET-FLIM data," Opt. Express 17, 6493-6508 (2009)
http://www.opticsinfobase.org/oe/abstract.cfm?URI=oe-17-8-6493
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References
- J. R. Lakowicz, Principles of Fluorescence Spectroscopy, 3rd ed. (Springer, 2006). [CrossRef]
- K. Carlsson, A. Liljeborg, R. M. Andersson, and H. Brismar, "Confocal pH imaging of microscopic specimens using fluorescence lifetimes and phase fluorometry: influence of parameter choice on system performance," J. Microsc. 199, 106-114 (2000). [CrossRef] [PubMed]
- R. M. Clegg, "Fluorescence resonance energy tranfer," Fluorescence Imaging Spectroscopy and Microscopy 137, 179-251 (1996).
- P. I. H. Bastiaens and A. Squire, "Fluorescence lifetime imaging microscopy: spatial resolution of biochemical processes in the cell," Trends Cell Biol. 9, 48-52 (1999). [CrossRef] [PubMed]
- F. S. Wouters, P. J. Verveer, and P. I. H. Bastiaens, "Imaging biochemistry inside cells," Trends Cell Biol. 11, 203-211 (2001). [CrossRef] [PubMed]
- A. Schonle, M. Glatz, and S. W. Hell, "Four-dimensional multiphoton microscopy with time-correlated singlephoton counting," Appl. Opt. 39, 6306-6311 (2000). [CrossRef]
- W. Becker, A. Bergmann, M. A. Hink, K. Konig, K. Benndorf, and C. Biskup, "Fluorescence lifetime imaging by time-correlated single-photon counting," Microsc. Res. Tech. 63, 58-66 (2004). [CrossRef]
- M. Peter and S. M. Ameer-Beg, "Imaging molecular interactions by multiphoton FLIM," Biol. Cell 96, 231-236 (2004). [CrossRef] [PubMed]
- E. Gratton, S. Breusegem, J. Sutin, Q. Ruan, and N. Barry, "Fluorescence lifetime imaging for the two-photon microscope: time-domain and frequency-domain methods," J. Biomed. Opt. 8, 381-390 (2003). [CrossRef] [PubMed]
- S. Pelet, M. J. R. Previte, L. H. Laiho, and P. T. C. So, "A fast global fitting algorithm for fluorescence lifetime imaging microscopy based on image segmentation," Biophys. J. 87, 2807-2817 (2004). [CrossRef] [PubMed]
- P. Barber, S. Ameer-Beg, J. Gilbey, R. J. Edens, I. Ezike, and B. Vojnovic, "Global and pixel kinetic data analysis for FRET detection by multi-photon time-domain FLIM," Proc. SPIE 5700, 171-181 (2005). [CrossRef]
- P. Barber, S. Ameer-Beg, J. Gilbey, L. Carlin, M. Keppler, T. Ng, and B. Vojnovic, "Multiphoton time-domain fluorescence lifetime imaging microscopy: practical application to protein-protein interactions using global analysis," J. R. Soc. Interface 6, S93-S105 (2008). [CrossRef]
- P. J. Verveer, A. Squire, and P. I. H. Bastiaens, "Global analysis of fluorescence lifetime imaging microscopy data," Biophys. J. 78, 2127-2137 (2000). [CrossRef] [PubMed]
- P. J. Verveer, F. S. Wouters, A. R. Reynolds, and P. I. H. Bastiaens, "Quantitative imaging of lateral ErbB1 receptor signal propagation in the plasma membrane," Science 290, 1567-1570 (2000). [CrossRef] [PubMed]
- P. J. Verveer and P. I. H. Bastiaens, "Evaluation of global analysis algorithms for single frequency fluorescence lifetime imaging microscopy data," J. Microsc. 209, 1-7 (2003). [CrossRef] [PubMed]
- A. H. A. Clayton, Q. S. Hanley, and P. J. Verveer, "Graphical representation and multicomponent analysis of single-frequency fluorescence lifetime imaging microscopy data," J. Microsc. 213, 1-5 (2004). [CrossRef]
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