Fluorescent proteins for live-cell imaging with super-resolution.
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[1] Yongdeng Zhang,et al. A unique series of reversibly switchable fluorescent proteins with beneficial properties for various applications , 2012, Proceedings of the National Academy of Sciences.
[2] U Valentin Nägerl,et al. Two-color STED microscopy of living synapses using a single laser-beam pair. , 2011, Biophysical journal.
[3] Franz Oswald,et al. Identification of GFP-like Proteins in Nonbioluminescent, Azooxanthellate Anthozoa Opens New Perspectives for Bioprospecting , 2004, Marine Biotechnology.
[4] Christian Eggeling,et al. Structural basis for reversible photoswitching in Dronpa , 2007, Proceedings of the National Academy of Sciences.
[5] A. Miyawaki,et al. An optical marker based on the UV-induced green-to-red photoconversion of a fluorescent protein , 2002, Proceedings of the National Academy of Sciences of the United States of America.
[6] Atsushi Miyawaki,et al. Semi‐rational engineering of a coral fluorescent protein into an efficient highlighter , 2005, EMBO reports.
[7] A. Kraegeloh,et al. STED microscopy and its applications: new insights into cellular processes on the nanoscale. , 2012, Chemphyschem : a European journal of chemical physics and physical chemistry.
[8] Konstantin A Lukyanov,et al. Chromophore-assisted light inactivation (CALI) using the phototoxic fluorescent protein KillerRed , 2006, Nature Protocols.
[9] A. Miyawaki,et al. Rational design of photoconvertible and biphotochromic fluorescent proteins for advanced microscopy applications. , 2011, Chemistry & biology.
[10] John S. Condeelis,et al. A photoswitchable orange-to-far-red fluorescent protein, PSmOrange , 2011, Nature Methods.
[11] D. Shcherbo,et al. Bright far-red fluorescent protein for whole-body imaging , 2007, Nature Methods.
[12] Stefan W. Hell,et al. Breaking the diffraction resolution barrier in far-field microscopy by molecular optical bistability , 2006 .
[13] David W Piston,et al. Fluorescent proteins at a glance , 2011, Journal of Cell Science.
[14] Kristin L. Hazelwood,et al. Far-red fluorescent tags for protein imaging in living tissues. , 2009, The Biochemical journal.
[15] Christian Eggeling,et al. Photoswitchable fluorescent proteins enable monochromatic multilabel imaging and dual color fluorescence nanoscopy , 2008, Nature Biotechnology.
[16] M. J. Cormier,et al. Primary structure of the Aequorea victoria green-fluorescent protein. , 1992, Gene.
[17] Travis J Gould,et al. Superresolution imaging of multiple fluorescent proteins with highly overlapping emission spectra in living cells. , 2011, Biophysical journal.
[18] S. Lukyanov,et al. Fluorescent proteins from nonbioluminescent Anthozoa species , 1999, Nature Biotechnology.
[19] M. Davidson,et al. Engineered fluorescent proteins: innovations and applications , 2009, Nature Methods.
[20] Konstantin A Lukyanov,et al. Photoswitchable cyan fluorescent protein for protein tracking , 2004, Nature Biotechnology.
[21] Atsushi Miyawaki,et al. A fluorescent variant of a protein from the stony coral Montipora facilitates dual-color single-laser fluorescence cross-correlation spectroscopy , 2006, Nature Biotechnology.
[22] Gerd Ulrich Nienhaus,et al. Online image analysis software for photoactivation localization microscopy , 2009, Nature Methods.
[23] Prabuddha Sengupta,et al. Visualizing cell structure and function with point-localization superresolution imaging. , 2012, Developmental cell.
[24] S. Weiss,et al. Achieving increased resolution and more pixels with Superresolution Optical Fluctuation Imaging (SOFI) , 2010, Optics express.
[25] Peter Dedecker,et al. A stroboscopic approach for fast photoactivation-localization microscopy with Dronpa mutants. , 2007, Journal of the American Chemical Society.
[26] Michael Z. Lin,et al. Improving the photostability of bright monomeric orange and red fluorescent proteins , 2008, Nature Methods.
[27] V. Verkhusha,et al. Photoactivatable fluorescent proteins , 2005, Nature Reviews Molecular Cell Biology.
[28] Mark Bates,et al. Super-resolution fluorescence microscopy. , 2009, Annual review of biochemistry.
[29] S. Weiss,et al. Fast, background-free, 3D super-resolution optical fluctuation imaging (SOFI) , 2009, Proceedings of the National Academy of Sciences.
[30] M. Field,et al. The nature of transient dark states in a photoactivatable fluorescent protein. , 2011, Journal of the American Chemical Society.
[31] Mark Bates,et al. Evaluation of fluorophores for optimal performance in localization-based super-resolution imaging , 2011, Nature Methods.
[32] A. Miyawaki,et al. Higher resolution in localizationmicroscopy by slower switching of a photochromic protein , 2010, Photochemical & photobiological sciences : Official journal of the European Photochemistry Association and the European Society for Photobiology.
[33] X. Xie,et al. Probing Gene Expression in Live Cells, One Protein Molecule at a Time , 2006, Science.
[34] A. Miyawaki,et al. A Green-emitting Fluorescent Protein from Galaxeidae Coral and Its Monomeric Version for Use in Fluorescent Labeling* , 2003, Journal of Biological Chemistry.
[35] Dylan T Burnette,et al. Bleaching/blinking assisted localization microscopy for superresolution imaging using standard fluorescent molecules , 2011, Proceedings of the National Academy of Sciences.
[36] R. Heim,et al. Understanding structure-function relationships in the Aequorea victoria green fluorescent protein. , 1999, Methods in cell biology.
[37] Timothy D. Fenn,et al. Crystal structures of the luciferase and green fluorescent protein from Renilla reniformis. , 2007, Journal of molecular biology.
[38] G. Nienhaus. The green fluorescent protein: a key tool to study chemical processes in living cells. , 2008, Angewandte Chemie.
[39] Marco A Mena,et al. Blue fluorescent proteins with enhanced brightness and photostability from a structurally targeted library , 2006, Nature Biotechnology.
[40] T. Bonhoeffer,et al. Live-cell imaging of dendritic spines by STED microscopy , 2008, Proceedings of the National Academy of Sciences.
[41] Yiming Li,et al. Fast and efficient molecule detection in localization-based super-resolution microscopy by parallel adaptive histogram equalization. , 2013, ACS nano.
[42] G Ulrich Nienhaus,et al. A far-red fluorescent protein with fast maturation and reduced oligomerization tendency from Entacmaea quadricolor (Anthozoa, Actinaria) , 2002, Proceedings of the National Academy of Sciences of the United States of America.
[43] M. Davidson,et al. Advances in fluorescent protein technology , 2011, Journal of Cell Science.
[44] Carla Coltharp,et al. Superresolution microscopy for microbiology , 2012, Cellular microbiology.
[45] R Y Tsien,et al. Understanding, improving and using green fluorescent proteins. , 1995, Trends in biochemical sciences.
[46] Atsushi Miyawaki,et al. Crystallographic evidence for water-assisted photo-induced peptide cleavage in the stony coral fluorescent protein Kaede. , 2007, Journal of molecular biology.
[47] A. Wlodawer,et al. Structural Basis for Phototoxicity of the Genetically Encoded Photosensitizer KillerRed* , 2009, The Journal of Biological Chemistry.
[48] Richard H. Sherman,et al. Chaotic communications in the presence of noise , 1993, Optics & Photonics.
[49] Joerg Bewersdorf,et al. Far-red fluorescent protein excitable with red lasers for flow cytometry and superresolution STED nanoscopy. , 2010, Biophysical journal.
[50] S. Remington. Fluorescent proteins: maturation, photochemistry and photophysics. , 2006, Current opinion in structural biology.
[51] Ralf Palmisano,et al. Multifocal two-photon laser scanning microscopy combined with photo-activatable GFP for in vivo monitoring of intracellular protein dynamics in real time. , 2007, Journal of structural biology.
[52] G. Ulrich Nienhaus,et al. mRuby, a Bright Monomeric Red Fluorescent Protein for Labeling of Subcellular Structures , 2009, PloS one.
[53] P. Matousek,et al. Observation of excited-state proton transfer in green fluorescent protein using ultrafast vibrational spectroscopy. , 2005, Journal of the American Chemical Society.
[54] M. Heilemann,et al. Dual Color Photoactivation Localization Microscopy of Cardiomyopathy-associated Desmin Mutants* , 2012, The Journal of Biological Chemistry.
[55] G Ulrich Nienhaus,et al. Optimized and far-red-emitting variants of fluorescent protein eqFP611. , 2008, Chemistry & biology.
[56] Ultrafast Electronic and Vibrational Dynamics of Stabilized A State Mutants of the Green Fluorescent Protein (GFP): Snipping the Proton Wire. , 2008, Chemical physics.
[57] Atsushi Miyawaki,et al. Green fluorescent protein-like proteins in reef Anthozoa animals. , 2002, Cell structure and function.
[58] G. Ulrich Nienhaus,et al. Photoconvertible Fluorescent Protein EosFP: Biophysical Properties and Cell Biology Applications , 2006, Photochemistry and photobiology.
[59] V. Malashkevich,et al. Photoactivation mechanism of PAmCherry based on crystal structures of the protein in the dark and fluorescent states , 2009, Proceedings of the National Academy of Sciences of the United States of America.
[60] J. Wiedenmann,et al. Structural basis for photo-induced protein cleavage and green-to-red conversion of fluorescent protein EosFP. , 2005, Proceedings of the National Academy of Sciences of the United States of America.
[61] Takeharu Nagai,et al. Cyan-emitting and orange-emitting fluorescent proteins as a donor/acceptor pair for fluorescence resonance energy transfer. , 2004, The Biochemical journal.
[62] S. Lukyanov,et al. Fluorescent proteins and their applications in imaging living cells and tissues. , 2010, Physiological reviews.
[63] R. Mathies,et al. Mapping GFP structure evolution during proton transfer with femtosecond Raman spectroscopy , 2009, Nature.
[64] Chiranjib Chakraborty,et al. Recent advances of fluorescent technologies for drug discovery and development. , 2009, Current pharmaceutical design.
[65] G. Nienhaus. The "wiggling and jiggling of atoms" leading to excited-state proton transfer in green fluorescent protein. , 2010, Chemphyschem : a European journal of chemical physics and physical chemistry.
[66] F. Beltram,et al. Single amino acid replacement makes Aequorea victoria fluorescent proteins reversibly photoswitchable. , 2010, Journal of the American Chemical Society.
[67] B. Vallone,et al. Chromophore-protein interactions in the anthozoan green fluorescent protein asFP499. , 2006, Biophysical journal.
[68] Bo Huang,et al. Super-resolution optical microscopy: multiple choices. , 2010, Current opinion in chemical biology.
[69] Ian M. Sander,et al. Structural basis for the fast maturation of Arthropoda green fluorescent protein , 2006, EMBO reports.
[70] O. Shimomura,et al. Extraction, purification and properties of aequorin, a bioluminescent protein from the luminous hydromedusan, Aequorea. , 1962, Journal of cellular and comparative physiology.
[71] T. Martínez,et al. Protonic gating of excited-state twisting and charge localization in GFP chromophores: a mechanistic hypothesis for reversible photoswitching. , 2010, Journal of the American Chemical Society.
[72] G. Manning,et al. Amphioxus encodes the largest known family of green fluorescent proteins, which have diversified into distinct functional classes , 2009, BMC Evolutionary Biology.
[73] S. Hell. Far-Field Optical Nanoscopy , 2007, Science.
[74] Nathan C Shaner,et al. A guide to choosing fluorescent proteins , 2005, Nature Methods.
[75] Robert E Campbell,et al. Exploration of new chromophore structures leads to the identification of improved blue fluorescent proteins. , 2007, Biochemistry.
[76] Yasushi Okamura,et al. Improving membrane voltage measurements using FRET with new fluorescent proteins , 2008, Nature Methods.
[77] Ilan Davis,et al. A cell biologist's guide to high resolution imaging. , 2012, Methods in enzymology.
[78] V. Verkhusha,et al. Engineering of a monomeric green-to-red photoactivatable fluorescent protein induced by blue light , 2006, Nature Biotechnology.
[79] A. Egner,et al. Two-color far-field fluorescence nanoscopy based on photoswitchable emitters , 2007 .
[80] K. Spindler,et al. Cracks in the beta-can: fluorescent proteins from Anemonia sulcata (Anthozoa, Actinaria). , 2000, Proceedings of the National Academy of Sciences of the United States of America.
[81] V. Adam,et al. Structural basis of enhanced photoconversion yield in green fluorescent protein-like protein Dendra2. , 2009, Biochemistry.
[82] Ricardo Henriques,et al. PALM and STORM: Unlocking live‐cell super‐resolution , 2011, Biopolymers.
[83] Suliana Manley,et al. Photoactivatable mCherry for high-resolution two-color fluorescence microscopy , 2009, Nature Methods.
[84] Christian Eggeling,et al. Breaking the diffraction barrier in fluorescence microscopy at low light intensities by using reversibly photoswitchable proteins. , 2005, Proceedings of the National Academy of Sciences of the United States of America.
[85] Robert E Campbell,et al. Hue-shifted monomeric variants of Clavularia cyan fluorescent protein: identification of the molecular determinants of color and applications in fluorescence imaging , 2008 .
[86] Vladislav V Verkhusha,et al. Monomeric fluorescent timers that change color from blue to red report on cellular trafficking. , 2009, Nature chemical biology.
[87] Pengcheng Li,et al. Ultra-fast, high-precision image analysis for localization-based super resolution microscopy. , 2010, Optics express.
[88] R. Tsien,et al. Evolution of new nonantibody proteins via iterative somatic hypermutation. , 2004, Proceedings of the National Academy of Sciences of the United States of America.
[89] J. Wiedenmann,et al. Two-photon excitation and photoconversion of EosFP in dual-color 4Pi confocal microscopy. , 2007, Biophysical journal.
[90] George H Patterson,et al. Probing nucleocytoplasmic transport by two‐photon activation of PA‐GFP , 2006, Microscopy research and technique.
[91] Christian Eggeling,et al. Fluorescence Nanoscopy in Whole Cells by Asynchronous Localization of Photoswitching Emitters , 2007, Biophysical journal.
[92] H. Leonhardt,et al. A guide to super-resolution fluorescence microscopy , 2010, The Journal of cell biology.
[93] Vladislav V Verkhusha,et al. An orange fluorescent protein with a large Stokes shift for single-excitation multicolor FCCS and FRET imaging. , 2012, Journal of the American Chemical Society.
[94] Kristin L. Hazelwood,et al. A bright and photostable photoconvertible fluorescent protein for fusion tags , 2009, Nature Methods.
[95] E. Abbe. Beiträge zur Theorie des Mikroskops und der mikroskopischen Wahrnehmung , 1873 .
[96] C. Scharnagl,et al. Molecular basis for pH sensitivity and proton transfer in green fluorescent protein: protonation and conformational substates from electrostatic calculations. , 1999, Biophysical journal.
[97] X. Zhuang,et al. Breaking the Diffraction Barrier: Super-Resolution Imaging of Cells , 2010, Cell.
[98] G Ulrich Nienhaus,et al. Red fluorescent protein eqFP611 and its genetically engineered dimeric variants. , 2005, Journal of biomedical optics.
[99] S. Hell,et al. Stimulated emission depletion (STED) nanoscopy of a fluorescent protein-labeled organelle inside a living cell , 2008, Proceedings of the National Academy of Sciences.
[100] Takeharu Nagai,et al. Shift anticipated in DNA microarray market , 2002, Nature Biotechnology.
[101] V. Malashkevich,et al. Structural characterization of acylimine-containing blue and red chromophores in mTagBFP and TagRFP fluorescent proteins. , 2010, Chemistry & biology.
[102] M. Lill,et al. Proton shuttle in green fluorescent protein studied by dynamic simulations , 2002, Proceedings of the National Academy of Sciences of the United States of America.
[103] Alberto Diaspro,et al. Two-photon activation and excitation properties of PA-GFP in the 720-920-nm region. , 2005, Biophysical journal.
[104] L. Stryer,et al. Fluorescent phycobiliprotein conjugates for analyses of cells and molecules , 1982, The Journal of cell biology.
[105] S. Lukyanov,et al. GFP-like proteins as ubiquitous metazoan superfamily: evolution of functional features and structural complexity. , 2004, Molecular biology and evolution.
[106] Michael W. Davidson,et al. Dual-color superresolution imaging of genetically expressed probes within individual adhesion complexes , 2007, Proceedings of the National Academy of Sciences.
[107] M. Gustafsson. Nonlinear structured-illumination microscopy: wide-field fluorescence imaging with theoretically unlimited resolution. , 2005, Proceedings of the National Academy of Sciences of the United States of America.
[108] Bin Wu,et al. Monomeric red fluorescent proteins with a large Stokes shift , 2010, Proceedings of the National Academy of Sciences.
[109] Michael W. Davidson,et al. The fluorescent protein palette: tools for cellular imaging. , 2009, Chemical Society reviews.
[110] Irving L. Weissman,et al. "Fluorescent timer": protein that changes color with time. , 2000, Science.
[111] J. Lippincott-Schwartz,et al. Imaging Intracellular Fluorescent Proteins at Nanometer Resolution , 2006, Science.
[112] Michael Z. Lin,et al. Improving FRET dynamic range with bright green and red fluorescent proteins , 2012, Nature Methods.
[113] Michael D. Mason,et al. Ultra-high resolution imaging by fluorescence photoactivation localization microscopy. , 2006, Biophysical journal.
[114] Gerd Ulrich Nienhaus,et al. Fluorescent proteins for live cell imaging: Opportunities, limitations, and challenges , 2009, IUBMB life.
[115] A Miyawaki,et al. Dynamic and quantitative Ca2+ measurements using improved cameleons. , 1999, Proceedings of the National Academy of Sciences of the United States of America.
[116] S. Remington,et al. Structure and mechanism of the photoactivatable green fluorescent protein. , 2009, Journal of the American Chemical Society.
[117] Konstantin A Lukyanov,et al. Red fluorescent protein with reversibly photoswitchable absorbance for photochromic FRET. , 2010, Chemistry & biology.
[118] S J Remington,et al. Structural basis for dual excitation and photoisomerization of the Aequorea victoria green fluorescent protein. , 1997, Proceedings of the National Academy of Sciences of the United States of America.
[119] M. Field,et al. Structural characterization of IrisFP, an optical highlighter undergoing multiple photo-induced transformations , 2008, Proceedings of the National Academy of Sciences.
[120] Konstantin A Lukyanov,et al. zFP538, a yellow-fluorescent protein from Zoanthus, contains a novel three-ring chromophore. , 2005, Biochemistry.
[121] G. Nienhaus,et al. Mechanistic insights into reversible photoactivation in proteins of the GFP family. , 2012, Biophysical journal.
[122] Keng C Chou,et al. Review of Super-Resolution Fluorescence Microscopy for Biology , 2011, Applied spectroscopy.
[123] Konstantin A Lukyanov,et al. Fluorescent proteins as a toolkit for in vivo imaging. , 2005, Trends in biotechnology.
[124] M. Gustafsson,et al. Subdiffraction resolution in continuous samples , 2009 .
[125] Anna I Krylov,et al. Insight into the common mechanism of the chromophore formation in the red fluorescent proteins: the elusive blue intermediate revealed. , 2012, Journal of the American Chemical Society.
[126] James M. Wilson,et al. A Comparative Analysis of Novel Fluorescent Proteins as Reporters for Gene Transfer Studies , 2007, The journal of histochemistry and cytochemistry : official journal of the Histochemistry Society.
[127] J. J. Macklin,et al. Nonlinear structured-illumination microscopy with a photoswitchable protein reveals cellular structures at 50-nm resolution , 2011, Proceedings of the National Academy of Sciences.
[128] Peter Dedecker,et al. Reversible single-molecule photoswitching in the GFP-like fluorescent protein Dronpa. , 2005, Proceedings of the National Academy of Sciences of the United States of America.
[129] George H. Patterson,et al. A Photoactivatable GFP for Selective Photolabeling of Proteins and Cells , 2002, Science.
[130] Christian Eggeling,et al. Fluorescence fluctuation spectroscopy in subdiffraction focal volumes. , 2005, Physical review letters.
[131] Michael Z. Lin,et al. Autofluorescent proteins with excitation in the optical window for intravital imaging in mammals. , 2009, Chemistry & biology.
[132] Michael W. Davidson,et al. A bright monomeric green fluorescent protein derived from Branchiostoma lanceolatum , 2013, Nature Methods.
[133] Dmitriy M Chudakov,et al. Conversion of red fluorescent protein into a bright blue probe. , 2008, Chemistry & biology.
[134] Michael J Rust,et al. Sub-diffraction-limit imaging by stochastic optical reconstruction microscopy (STORM) , 2006, Nature Methods.
[135] Hsiao-Yun Wu,et al. Characterization and application of single fluorescent nanodiamonds as cellular biomarkers , 2007, Proceedings of the National Academy of Sciences.
[136] Mark A Rizzo,et al. An improved cyan fluorescent protein variant useful for FRET , 2004, Nature Biotechnology.
[137] R. Tsien,et al. On/off blinking and switching behaviour of single molecules of green fluorescent protein , 1997, Nature.
[138] R. Tsien,et al. A monomeric red fluorescent protein , 2002, Proceedings of the National Academy of Sciences of the United States of America.
[139] S. Gambhir,et al. Quantum Dots for Live Cells, in Vivo Imaging, and Diagnostics , 2005, Science.
[140] Anya Salih,et al. It's cheap to be colorful , 2007, The FEBS journal.
[141] M. Chalfie,et al. Green fluorescent protein as a marker for gene expression. , 1994, Science.
[142] Konstantin A Lukyanov,et al. A colourless green fluorescent protein homologue from the non-fluorescent hydromedusa Aequorea coerulescens and its fluorescent mutants. , 2003, The Biochemical journal.
[143] J. Wiedenmann,et al. Trans-cis isomerization is responsible for the red-shifted fluorescence in variants of the red fluorescent protein eqFP611. , 2008, Journal of the American Chemical Society.
[144] S. Hell. Microscopy and its focal switch , 2008, Nature Methods.
[145] Roger Y. Tsien,et al. Crystal Structure of the Aequorea victoria Green Fluorescent Protein , 1996, Science.
[146] S. Hell,et al. Breaking the diffraction resolution limit by stimulated emission: stimulated-emission-depletion fluorescence microscopy. , 1994, Optics letters.
[147] A. Miyawaki,et al. Age-dependent Preferential Dense-Core Vesicle Exocytosis in Neuroendocrine Cells Revealed by Newly Developed Monomeric Fluorescent Timer Protein , 2010, Molecular biology of the cell.
[148] M. Gustafsson. Surpassing the lateral resolution limit by a factor of two using structured illumination microscopy , 2000, Journal of microscopy.
[149] P. Tinnefeld,et al. Super-resolution fluorescence imaging with blink microscopy. , 2013, Methods in molecular biology.
[150] Atsushi Miyawaki,et al. mKikGR, a Monomeric Photoswitchable Fluorescent Protein , 2008, PloS one.
[151] Per Niklas Hedde,et al. Optical imaging of nanoscale cellular structures , 2010, Biophysical Reviews.
[152] G. Nienhaus,et al. Ultra-small fluorescent metal nanoclusters: Synthesis and biological applications , 2011 .
[153] Robert E Campbell,et al. Fluorescent protein FRET pairs for ratiometric imaging of dual biosensors , 2008, Nature Methods.
[154] M. Zimmer. GFP: from jellyfish to the Nobel prize and beyond. , 2009, Chemical Society reviews.
[155] X. Shu,et al. An alternative excited‐state proton transfer pathway in green fluorescent protein variant S205V , 2007, Protein science : a publication of the Protein Society.
[156] Taekjip Ha,et al. Photophysics of fluorescent probes for single-molecule biophysics and super-resolution imaging. , 2012, Annual review of physical chemistry.
[157] Christian Eggeling,et al. Diffraction-unlimited all-optical imaging and writing with a photochromic GFP , 2011, Nature.
[158] Douglas C. Youvan,et al. Time-resolved spectroscopy of wild-type and mutant Green Fluorescent Proteins reveals excited state deprotonation consistent with fluorophore-protein interactions , 1996 .
[159] J. Goedhart,et al. Bright cyan fluorescent protein variants identified by fluorescence lifetime screening , 2010, Nature Methods.
[160] Joachim Goedhart,et al. Bright monomeric red fluorescent protein with an extended fluorescence lifetime , 2007, Nature Methods.
[161] Takeharu Nagai,et al. An ultramarine fluorescent protein with increased photostability and pH insensitivity , 2009, Nature Methods.
[162] Christian Eggeling,et al. Generation of monomeric reversibly switchable red fluorescent proteins for far-field fluorescence nanoscopy. , 2008, Biophysical journal.
[163] J. Lippincott-Schwartz,et al. Photoactivatable fluorescent proteins for diffraction-limited and super-resolution imaging. , 2009, Trends in cell biology.
[164] T. Terwilliger,et al. Engineering and characterization of a superfolder green fluorescent protein , 2006, Nature Biotechnology.
[165] F. Beltram,et al. Cis-trans photoisomerization of fluorescent-protein chromophores. , 2008, The journal of physical chemistry. B.
[166] J. Lippincott-Schwartz,et al. Bright monomeric photoactivatable red fluorescent protein for two-color super-resolution sptPALM of live cells. , 2010, Journal of the American Chemical Society.
[167] R. Blomley,et al. Stimulated emission depletion-based raster image correlation spectroscopy reveals biomolecular dynamics in live cells , 2013, Nature Communications.
[168] Xin Li,et al. A theoretical study on the nature of on- and off-states of reversibly photoswitching fluorescent protein Dronpa: absorption, emission, protonation, and Raman. , 2010, The journal of physical chemistry. B.
[169] V. Verkhusha,et al. Modern fluorescent proteins: from chromophore formation to novel intracellular applications. , 2011, BioTechniques.
[170] Vladislav V Verkhusha,et al. Conversion of the monomeric red fluorescent protein into a photoactivatable probe. , 2005, Chemistry & biology.
[171] P. Annibale,et al. Photoactivatable Fluorescent Protein mEos2 Displays Repeated Photoactivation after a Long-Lived Dark State in the Red Photoconverted Form , 2010 .
[172] Robert E Campbell,et al. Structural basis for reversible photobleaching of a green fluorescent protein homologue , 2007, Proceedings of the National Academy of Sciences.
[173] A. Miyawaki,et al. The E1 mechanism in photo-induced beta-elimination reactions for green-to-red conversion of fluorescent proteins. , 2009, Chemistry & biology.
[174] S. Lukyanov,et al. Tracking intracellular protein movements using photoswitchable fluorescent proteins PS-CFP2 and Dendra2 , 2007, Nature Protocols.
[175] Keith A. Lidke,et al. Fast, single-molecule localization that achieves theoretically minimum uncertainty , 2010, Nature Methods.
[176] F. Beltram,et al. Green fluorescent protein based pH indicators for in vivo use: a review , 2009, Analytical and bioanalytical chemistry.
[177] V. Adam,et al. From EosFP to mIrisFP: structure‐based development of advanced photoactivatable marker proteins of the GFP‐family , 2011, Journal of biophotonics.
[178] Steven C. Almo,et al. Extended Stokes Shift in Fluorescent Proteins: Chromophore–Protein Interactions in a Near-Infrared TagRFP675 Variant , 2013, Scientific Reports.
[179] Takeharu Nagai,et al. Direct measurement of protein dynamics inside cells using a rationally designed photoconvertible protein , 2008, Nature Methods.
[180] G Ulrich Nienhaus,et al. Novel fluorescent proteins for high-content screening. , 2006, Drug discovery today.
[181] Michael Z. Lin,et al. Mammalian Expression of Infrared Fluorescent Proteins Engineered from a Bacterial Phytochrome , 2009, Science.
[182] V. Verkhusha,et al. The molecular properties and applications of Anthozoa fluorescent proteins and chromoproteins , 2004, Nature Biotechnology.
[183] P. Chu,et al. Group IV nanoparticles: synthesis, properties, and biological applications. , 2010, Small.
[184] Christian Eggeling,et al. 1.8 A bright-state structure of the reversibly switchable fluorescent protein Dronpa guides the generation of fast switching variants. , 2007, The Biochemical journal.
[185] J. Wiedenmann,et al. Live-cell imaging with EosFP and other photoactivatable marker proteins of the GFP family , 2006, Expert review of proteomics.
[186] S. Boxer,et al. Ultra-fast excited state dynamics in green fluorescent protein: multiple states and proton transfer. , 1996, Proceedings of the National Academy of Sciences of the United States of America.
[187] A. Miyawaki,et al. Regulated Fast Nucleocytoplasmic Shuttling Observed by Reversible Protein Highlighting , 2004, Science.
[188] Konstantin A Lukyanov,et al. A strategy for the generation of non‐aggregating mutants of Anthozoa fluorescent proteins , 2002, FEBS letters.
[189] R. Tsien,et al. Improved monomeric red, orange and yellow fluorescent proteins derived from Discosoma sp. red fluorescent protein , 2004, Nature Biotechnology.
[190] S. Hell,et al. Molecular Basis of the Light-driven Switching of the Photochromic Fluorescent Protein Padron* , 2010, The Journal of Biological Chemistry.
[191] D. Toomre,et al. A new wave of cellular imaging. , 2010, Annual review of cell and developmental biology.
[192] W. Webb,et al. Precise nanometer localization analysis for individual fluorescent probes. , 2002, Biophysical journal.
[193] M. Sauer,et al. A new set of reversibly photoswitchable fluorescent proteins for use in transgenic plants. , 2013, Molecular plant.
[194] M. Field,et al. Photoconversion of the fluorescent protein EosFP: a hybrid potential simulation study reveals intersystem crossings. , 2009, Journal of the American Chemical Society.
[195] M. Zimmer,et al. The Role of the Protein Matrix in Green Fluorescent Protein Fluorescence , 2006, Photochemistry and photobiology.
[196] Atsushi Miyawaki,et al. GFP-like proteins stably accumulate in lysosomes. , 2008, Cell structure and function.
[197] Joachim Goedhart,et al. UvA-DARE ( Digital Academic Repository ) Optimization of fluorescent proteins for novel quantitative multiparameter microscopy approaches , 2007 .
[198] Peter Dedecker,et al. Subdiffraction imaging through the selective donut-mode depletion of thermally stable photoswitchable fluorophores: numerical analysis and application to the fluorescent protein Dronpa. , 2007, Journal of the American Chemical Society.
[199] T. Lasser,et al. Mapping molecular statistics with balanced super-resolution optical fluctuation imaging (bSOFI) , 2012, Optical Nanoscopy.
[200] J. Hofkens,et al. Photoconversion in the red fluorescent protein from the sea anemone Entacmaea quadricolor: is cis-trans isomerization involved? , 2006, Journal of the American Chemical Society.
[201] Shu Chien,et al. Fluorescence proteins, live-cell imaging, and mechanobiology: seeing is believing. , 2008, Annual review of biomedical engineering.
[202] G. Phillips,et al. The molecular structure of green fluorescent protein , 1996, Nature Biotechnology.
[203] A. Miyawaki,et al. Highlighted generation of fluorescence signals using simultaneous two-color irradiation on Dronpa mutants. , 2007, Biophysical journal.
[204] J. Wiedenmann,et al. EosFP, a fluorescent marker protein with UV-inducible green-to-red fluorescence conversion. , 2004, Proceedings of the National Academy of Sciences of the United States of America.
[205] Robert E Campbell,et al. Directed evolution of a monomeric, bright and photostable version of Clavularia cyan fluorescent protein: structural characterization and applications in fluorescence imaging. , 2006, The Biochemical journal.
[206] Vladislav V Verkhusha,et al. Engineering ESPT pathways based on structural analysis of LSSmKate red fluorescent proteins with large Stokes shift. , 2010, Journal of the American Chemical Society.
[207] J. Wiedenmann,et al. A photoactivatable marker protein for pulse-chase imaging with superresolution , 2010, Nature Methods.
[208] Yongdeng Zhang,et al. Rational design of true monomeric and bright photoactivatable fluorescent proteins , 2012, Nature Methods.
[209] S. Lukyanov,et al. Chromophore Environment Provides Clue to “Kindling Fluorescent Protein” Riddle* , 2003, The Journal of Biological Chemistry.
[210] Christian Eggeling,et al. rsEGFP2 enables fast RESOLFT nanoscopy of living cells , 2012, eLife.
[211] R. Tsien,et al. green fluorescent protein , 2020, Catalysis from A to Z.
[212] Adam C. Fisher,et al. Laboratory Evolution of Fast-Folding Green Fluorescent Protein Using Secretory Pathway Quality Control , 2008, PloS one.
[213] Oliver Griesbeck,et al. Efficiently folding and circularly permuted variants of the Sapphire mutant of GFP , 2003, BMC biotechnology.
[214] D. Bourgeois,et al. Low-temperature chromophore isomerization reveals the photoswitching mechanism of the fluorescent protein Padron. , 2011, Journal of the American Chemical Society.
[215] Vladislav V Verkhusha,et al. Beta-barrel scaffold of fluorescent proteins: folding, stability and role in chromophore formation. , 2013, International review of cell and molecular biology.
[216] M. Davidson,et al. A monomeric photoconvertible fluorescent protein for imaging of dynamic protein localization. , 2010, Journal of molecular biology.
[217] Christian Eggeling,et al. A reversibly photoswitchable GFP-like protein with fluorescence excitation decoupled from switching , 2011, Nature Biotechnology.
[218] Atsushi Miyawaki,et al. Visualizing Spatiotemporal Dynamics of Multicellular Cell-Cycle Progression , 2008, Cell.
[219] T. McAnaney,et al. Green fluorescent protein variants as ratiometric dual emission pH sensors. 2. Excited-state dynamics. , 2002, Biochemistry.
[220] Anya Salih,et al. Contributions of host and symbiont pigments to the coloration of reef corals , 2007, The FEBS journal.
[221] A. Miyawaki,et al. A Bilirubin-Inducible Fluorescent Protein from Eel Muscle , 2013, Cell.
[222] J. Lippincott-Schwartz,et al. Development and Use of Fluorescent Protein Markers in Living Cells , 2003, Science.
[223] R Y Tsien,et al. Biochemistry, mutagenesis, and oligomerization of DsRed, a red fluorescent protein from coral. , 2000, Proceedings of the National Academy of Sciences of the United States of America.
[224] Clive R. Bagshaw,et al. The photochemistry of fluorescent proteins: implications for their biological applications. , 2009, Chemical Society reviews.
[225] Michael W. Davidson,et al. mMaple: A Photoconvertible Fluorescent Protein for Use in Multiple Imaging Modalities , 2012, PloS one.
[226] Nathan C Shaner,et al. Novel chromophores and buried charges control color in mFruits. , 2006, Biochemistry.
[227] G. Nienhaus,et al. Small fluorescent nanoparticles at the nano–bio interface , 2013 .
[228] Shaoyou Chu,et al. Green fluorescent protein variants as ratiometric dual emission pH sensors. 1. Structural characterization and preliminary application. , 2002, Biochemistry.
[229] R. Tsien,et al. Reducing the Environmental Sensitivity of Yellow Fluorescent Protein , 2001, The Journal of Biological Chemistry.