Simultaneous detection of multiple green fluorescent proteins in live cells by fluorescence lifetime imaging microscopy
暂无分享,去创建一个
Rainer Pepperkok | R. Pepperkok | P. Bastiaens | S. Geley | A. Squire | Anthony Squire | Stephan Geley | Philippe I.H. Bastiaens
[1] M. Zernicka-Goetz,et al. Following cell fate in the living mouse embryo. , 1997, Development.
[2] S. Nagata,et al. pEF-BOS, a powerful mammalian expression vector. , 1990, Nucleic acids research.
[3] Roger Y. Tsien,et al. Double labelling of subcellular structures with organelle-targeted GFP mutants in vivo , 1996, Current Biology.
[4] S Falkow,et al. FACS-optimized mutants of the green fluorescent protein (GFP). , 1996, Gene.
[5] Roger Y. Tsien,et al. Improved green fluorescence , 1995, Nature.
[6] Robert M. Clegg,et al. Fluorescence lifetime imaging microscopy (FLIM): Spatial resolution of microstructures on the nanosecond time scale , 1993 .
[7] Robert M. Clegg,et al. Rapid acquisition, analysis, and display of fluorescence lifetime-resolved images for real-time applications , 1997 .
[8] G. Weber,et al. Resolution of the fluorescence lifetimes in a heterogeneous system by phase and modulation measurements , 1981 .
[9] J. Lippincott-Schwartz,et al. Two-color green fluorescent protein time-lapse imaging. , 1998, BioTechniques.
[10] M. Chalfie. GREEN FLUORESCENT PROTEIN , 1995, Photochemistry and photobiology.
[11] R. Pepperkok,et al. Partitioning of the Golgi Apparatus during Mitosis in Living HeLa Cells , 1997, The Journal of cell biology.
[12] G. Banting,et al. TGN38-green fluorescent protein hybrid proteins expressed in stably transfected eukaryotic cells provide a tool for the real-time, in vivo study of membrane traffic pathways and suggest a possible role for ratTGN38. , 1996, Journal of cell science.
[13] R. Pepperkok,et al. Dissociation of Coatomer from Membranes Is Required for Brefeldin A–induced Transfer of Golgi Enzymes to the Endoplasmic Reticulum , 1997, The Journal of cell biology.
[14] Joseph R. Lakowicz,et al. Lifetime‐selective fluorescence imaging using an rf phase‐sensitive camera , 1991 .
[15] R. Tsien,et al. Fluorescent indicators for Ca2+based on green fluorescent proteins and calmodulin , 1997, Nature.
[16] Thomas Cremer,et al. Volume ratios of painted chromosome territories 5, 7 and X in female human cell nuclei studied with confocal laser microscopy and the Cavalieri estimator , 1995 .
[17] Kjell Carlsson,et al. Confocal fluorescence microscopy using spectral and lifetime information to simultaneously record four fluorophores with high channel separation , 1997 .
[18] T. Meyer,et al. Green Fluorescent Protein (GFP)-tagged Cysteine-rich Domains from Protein Kinase C as Fluorescent Indicators for Diacylglycerol Signaling in Living Cells , 1998, The Journal of cell biology.
[19] M. Zernicka-Goetz,et al. An indelible lineage marker for Xenopus using a mutated green fluorescent protein. , 1996, Development.
[20] P. Bastiaens,et al. Three dimensional image restoration in fluorescence lifetime imaging microscopy , 1999, Journal of microscopy.
[21] Robert M. Clegg,et al. Fluorescence Lifetime-Resolved Imaging Microscopy: A General Description of Lifetime-Resolved Imaging Measurements , 1996 .
[22] A Miyawaki,et al. Measurement of cytosolic, mitochondrial, and Golgi pH in single living cells with green fluorescent proteins. , 1998, Proceedings of the National Academy of Sciences of the United States of America.
[23] J. Pines,et al. Human cyclins B1 and B2 are localized to strikingly different structures: B1 to microtubules, B2 primarily to the Golgi apparatus. , 1995, The EMBO journal.
[24] A S Verkman,et al. Green fluorescent protein as a noninvasive intracellular pH indicator. , 1998, Biophysical journal.
[25] R. Tsien,et al. Engineering green fluorescent protein for improved brightness, longer wavelengths and fluorescence resonance energy transfer , 1996, Current Biology.
[26] Enrico Gratton,et al. Time-resolved fluorescence microscopy using two-photon excitation , 1995 .