Fluorescence resonance energy transfer microscopy: a mini review.
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[1] M. Bond,et al. Cyclic AMP-dependent Protein Kinase Binding to A-kinase Anchoring Proteins in Living Cells by Fluorescence Resonance Energy Transfer of Green Fluorescent Protein Fusion Proteins* , 1999, The Journal of Biological Chemistry.
[2] Z. Kam,et al. Mapping of adherens junction components using microscopic resonance energy transfer imaging. , 1995, Journal of cell science.
[3] L. Stryer. Fluorescence energy transfer as a spectroscopic ruler. , 1978, Annual review of biochemistry.
[4] B. Meer,et al. Resonance Energy Transfer: Theory and Data , 1994 .
[5] J. Benovic,et al. Role of Arrestins in Endocytosis and Signaling of α2-Adrenergic Receptor Subtypes* , 1999, The Journal of Biological Chemistry.
[6] Ammasi Periasamy,et al. Digital deconvolution FRET microscopy: 3D visualization of protein-protein interactions in a single living cell , 1998, Photonics West - Biomedical Optics.
[7] Ammasi Periasamy,et al. Two-photon excitation energy transfer microscopy , 2000, Photonics West - Biomedical Optics.
[8] C. Garrett,et al. Two-Photon Excitation in CaF 2 : Eu 2+ , 1961 .
[9] S. Schmid,et al. Control of EGF Receptor Signaling by Clathrin-Mediated Endocytosis , 1996, Science.
[10] T M Jovin,et al. Luminescence digital imaging microscopy. , 1989, Annual review of biophysics and biophysical chemistry.
[11] K. Sullivan,et al. Green Fluorescent Proteins , 1999 .
[12] Horst Wallrabe,et al. Wide-Field, Confocal, Two-Photon, and Lifetime Resonance Energy Transfer Imaging Microscopy , 2001 .
[13] David M. Coleman,et al. A Two-Dimensional Fluorescence Lifetime Imaging System Using a Gated Image Intensifier , 1991 .
[14] R. Tsien,et al. Engineering green fluorescent protein for improved brightness, longer wavelengths and fluorescence resonance energy transfer , 1996, Current Biology.
[15] R. Day,et al. Visualization of Pit-1 transcription factor interactions in the living cell nucleus by fluorescence resonance energy transfer microscopy. , 1998, Molecular endocrinology.
[16] W. Cascio,et al. Laser Scanning Confocal Microscopy Applied to Living Cells and Tissues , 2001 .
[17] A. Periasamy,et al. An evaluation of two‐photon excitation versus confocal and digital deconvolution fluorescence microscopy imaging in xenopus morphogenesis , 1999, Microscopy research and technique.
[18] Maria Goeppert-Mayer. Über Elementarakte mit zwei Quantensprüngen , 1931 .
[19] G. M. Di Guglielmo,et al. Compartmentalization of SHC, GRB2 and mSOS, and hyperphosphorylation of Raf‐1 by EGF but not insulin in liver parenchyma. , 1994, The EMBO journal.
[20] S. Mayor,et al. GPI-anchored proteins are organized in submicron domains at the cell surface , 1998, Nature.
[21] G. M. Di Guglielmo,et al. Compartmentalized signal transduction by receptor tyrosine kinases. , 1995, Trends in cell biology.
[22] D. Bar-Sagi,et al. SH3 domains direct cellular localization of signaling molecules , 1993, Cell.
[23] B. Herman,et al. Quantitative fluorescence resonance energy transfer measurements using fluorescence microscopy. , 1998, Biophysical journal.
[24] A. Sorkin,et al. Endocytosis of Functional Epidermal Growth Factor Receptor-Green Fluorescent Protein Chimera* , 1998, The Journal of Biological Chemistry.
[25] B. Tocqué,et al. Grb2 and Its Apoptotic Isoform Grb3-3 Associate with Heterogeneous Nuclear Ribonucleoprotein C, and These Interactions Are Modulated by Poly(U) RNA* , 1998, The Journal of Biological Chemistry.
[26] Ammasi Periasamy,et al. Bleed-through and photobleaching correction in multiphoton FRET microscopy , 2001, SPIE BiOS.
[27] G. Cox. Biological confocal microscopy , 2002 .
[28] S. Dower,et al. Fluorescence Resonance Energy Transfer Reveals Interleukin (IL)-1-dependent Aggregation of IL-1 Type I Receptors That Correlates with Receptor Activation (*) , 1995, The Journal of Biological Chemistry.
[29] L. Brand,et al. Resonance energy transfer: methods and applications. , 1994, Analytical biochemistry.
[30] Joseph R. Lakowicz,et al. Lifetime‐selective fluorescence imaging using an rf phase‐sensitive camera , 1991 .
[31] Ammasi Periasamy,et al. Computerized fluorescence microscopic vision in the biomedical sciences , 1994 .
[32] Ammasi Periasamy,et al. TIME-RESOLVED FLUORESCENCE LIFETIME IMAGING MICROSCOPY USING A PICOSECOND PULSED TUNABLE DYE LASER SYSTEM , 1996 .
[33] Kristin K. Sharman,et al. Error analysis of the rapid lifetime determination method for double-exponential decays and new windowing schemes. , 1999, Analytical chemistry.
[34] H. Cheung. Resonance Energy Transfer , 2002 .
[35] P. Selvin. Fluorescence resonance energy transfer. , 1995, Methods in enzymology.
[36] Richard N. Day,et al. Visualizing protein interactions in living cells using digitized GFP imaging and FRET microscopy. , 1999, Methods in cell biology.
[37] A. Periasamy. Methods in Cellular Imaging , 2001, Methods in Physiology.
[38] Nanxin Li,et al. Guanine-nucleotide-releasing factor hSos1 binds to Grb2 and links receptor tyrosine kinases to Ras signalling , 1993, Nature.
[39] W. Denk,et al. Two-photon laser scanning fluorescence microscopy. , 1990, Science.
[40] R. Day,et al. Fret imaging of pit-1 protein interactions in living cells. , 1998, Journal of biomedical optics.
[41] A. Kenworthy,et al. Distribution of a Glycosylphosphatidylinositol-anchored Protein at the Apical Surface of MDCK Cells Examined at a Resolution of <100 Å Using Imaging Fluorescence Resonance Energy Transfer , 1998, The Journal of cell biology.
[42] F. Wouters,et al. Fluorescence lifetime imaging of receptor tyrosine kinase activity in cells , 1999, Current Biology.
[43] A Kusumi,et al. Fluorescence lifetime imaging microscopy (flimscopy). Methodology development and application to studies of endosome fusion in single cells. , 1993, Biophysical journal.
[44] R. Tsien,et al. Monitoring protein conformations and interactions by fluorescence resonance energy transfer between mutants of green fluorescent protein. , 2000, Methods in enzymology.
[45] Robert M. Clegg,et al. Fluorescence lifetime imaging microscopy (FLIM): Spatial resolution of microstructures on the nanosecond time scale , 1993 .
[46] C. Garrett,et al. Two-photon excitation in CaF2:Eu2+ , 2003 .
[47] R. Tsien,et al. Fluorescent indicators for Ca2+based on green fluorescent proteins and calmodulin , 1997, Nature.
[48] J. Eisinger,et al. The orientational freedom of molecular probes. The orientation factor in intramolecular energy transfer. , 1979, Biophysical journal.
[49] T. Pawson,et al. The SH2 and SH3 domains of mammalian Grb2 couple the EGF receptor to the Ras activator mSos1 , 1993, Nature.
[50] Y. Kido,et al. Grb2/Ash binds directly to tyrosines 1068 and 1086 and indirectly to tyrosine 1148 of activated human epidermal growth factor receptors in intact cells. , 1994, The Journal of biological chemistry.
[51] T. Jovin,et al. Proximity relationships between the type I receptor for Fcεe (FcεeRI) and the mast cell function‐associated antigen (MAFA) studied by donor photobleaching fluorescence resonance energy transfer microscopy , 1996, European journal of immunology.