Direct multiplex imaging and optogenetics of RhoGTPases enabled by near-infrared FRET
暂无分享,去创建一个
[1] Vladislav V Verkhusha,et al. Near-Infrared Fluorescent Proteins, Biosensors, and Optogenetic Tools Engineered from Phytochromes. , 2017, Chemical reviews.
[2] Catherine Chapuis,et al. Multiplexing PKA and ERK1&2 kinases FRET biosensors in living cells using single excitation wavelength dual colour FLIM , 2017, Scientific Reports.
[3] Sarah Jenna,et al. Rac1/RhoA antagonism defines cell-to-cell heterogeneity during epidermal morphogenesis in nematodes , 2016, The Journal of cell biology.
[4] Daria M. Shcherbakova,et al. Bright monomeric near-infrared fluorescent proteins as tags and biosensors for multiscale imaging , 2016, Nature Communications.
[5] Gaudenz Danuser,et al. LOVTRAP, An Optogenetic System for Photo-induced Protein Dissociation , 2016, Nature Methods.
[6] K. Hahn,et al. FRET binding antenna reports spatiotemporal dynamics of GDI-Cdc42 GTPase interactions , 2016, Nature chemical biology.
[7] Bin Wu,et al. Optical Tools To Study the Isoform-Specific Roles of Small GTPases in Immune Cells , 2016, The Journal of Immunology.
[8] O. Pertz,et al. Spatio-temporal co-ordination of RhoA, Rac1 and Cdc42 activation during prototypical edge protrusion and retraction dynamics , 2016, Scientific Reports.
[9] Vladislav V Verkhusha,et al. Near-infrared fluorescent proteins engineered from bacterial phytochromes. , 2015, Current opinion in chemical biology.
[10] Vladislav V Verkhusha,et al. Natural photoreceptors as a source of fluorescent proteins, biosensors, and optogenetic tools. , 2015, Annual review of biochemistry.
[11] R. Singer,et al. Synonymous modification results in high-fidelity gene expression of repetitive protein and nucleotide sequences , 2015, Genes & development.
[12] J. Condeelis,et al. A Trio-Rac1-PAK1 signaling axis drives invadopodia disassembly , 2014, Nature Cell Biology.
[13] B. Sabatini,et al. A PKA activity sensor for quantitative analysis of endogenous GPCR signaling via 2-photon FRET-FLIM imaging , 2014, Front. Pharmacol..
[14] B. Barisas,et al. Quantification of Förster resonance energy transfer by monitoring sensitized emission in living plant cells , 2013, Front. Plant Sci..
[15] V. Verkhusha,et al. Far-red light photoactivatable near-infrared fluorescent proteins engineered from a bacterial phytochrome , 2013, Nature Communications.
[16] F. Nakamura. FilGAP and its close relatives: a mediator of Rho-Rac antagonism that regulates cell morphology and migration. , 2013, The Biochemical journal.
[17] V. Verkhusha,et al. Near-infrared fluorescent proteins for multicolor in vivo imaging , 2013, Nature Methods.
[18] M. Papiz,et al. Dimerization properties of the RpBphP2 chromophore-binding domain crystallized by homologue-directed mutagenesis. , 2012, Acta crystallographica. Section D, Biological crystallography.
[19] 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.
[20] P. Hordijk,et al. The N-Terminal DH-PH Domain of Trio Induces Cell Spreading and Migration by Regulating Lamellipodia Dynamics in a Rac1-Dependent Fashion , 2012, PloS one.
[21] M. Davidson,et al. An Enhanced Monomeric Blue Fluorescent Protein with the High Chemical Stability of the Chromophore , 2011, PloS one.
[22] Kazuhiro Aoki,et al. Development of an optimized backbone of FRET biosensors for kinases and GTPases , 2011, Molecular biology of the cell.
[23] Keith Burridge,et al. The 'invisible hand': regulation of RHO GTPases by RHOGDIs , 2011, Nature Reviews Molecular Cell Biology.
[24] Kami Kim,et al. Bright and stable near infra-red fluorescent protein for in vivo imaging , 2011, Nature Biotechnology.
[25] David A. Williams,et al. Rac GTPases in Human Diseases , 2010, Disease markers.
[26] A. Levchenko,et al. Visualization of JNK activity dynamics with a genetically encoded fluorescent biosensor , 2010, Proceedings of the National Academy of Sciences.
[27] Gaudenz Danuser,et al. Coordination of Rho GTPase activities during cell protrusion , 2009, Nature.
[28] Michael Z. Lin,et al. Mammalian Expression of Infrared Fluorescent Proteins Engineered from a Bacterial Phytochrome , 2009, Science.
[29] Ewan J McGhee,et al. Multiplexed FRET to image multiple signaling events in live cells. , 2008, Biophysical journal.
[30] Dmitriy M Chudakov,et al. Conversion of red fluorescent protein into a bright blue probe. , 2008, Chemistry & biology.
[31] D. Piston,et al. Fluorescent protein FRET: the good, the bad and the ugly. , 2007, Trends in biochemical sciences.
[32] J. Philo. Improved methods for fitting sedimentation coefficient distributions derived by time-derivative techniques. , 2006, Analytical biochemistry.
[33] K. Hahn,et al. Spatiotemporal dynamics of RhoA activity in migrating cells , 2006, Nature.
[34] Jean-Philippe Brunet,et al. Rotavirus Infection Induces Cytoskeleton Disorganization in Human Intestinal Epithelial Cells: Implication of an Increase in Intracellular Calcium Concentration , 2000, Journal of Virology.
[35] M. Schwartz,et al. Adhesion to the extracellular matrix regulates the coupling of the small GTPase Rac to its effector PAK , 2000, The EMBO journal.
[36] G. Patterson,et al. Photobleaching in two-photon excitation microscopy. , 2000, Biophysical journal.
[37] S. Diriong,et al. The two guanine nucleotide exchange factor domains of Trio link the Rac1 and the RhoA pathways in vivo , 1998, Oncogene.
[38] C. Nobes,et al. Regulation and function of the Rho subfamily of small GTPases. , 1994, Current opinion in genetics & development.
[39] C. Der,et al. Identification of residues critical for Ras(17N) growth-inhibitory phenotype and for Ras interaction with guanine nucleotide exchange factors , 1994, Molecular and cellular biology.
[40] K. D. Hardman,et al. An improved linker for single-chain Fv with reduced aggregation and enhanced proteolytic stability. , 1993, Protein engineering.
[41] W. Stafford,et al. Boundary analysis in sedimentation transport experiments: a procedure for obtaining sedimentation coefficient distributions using the time derivative of the concentration profile. , 1992, Analytical biochemistry.
[42] K. H. Drexhage,et al. Fluorescence quantum yield of oxazine and carbazine laser dyes , 1981 .
[43] L. Hodgson,et al. Quantitative ratiometric imaging of FRET-biosensors in living cells. , 2013, Methods in cell biology.
[44] L. Hodgson,et al. Multiplex imaging of Rho family GTPase activities in living cells. , 2012, Methods in molecular biology.
[45] A. Strongin,et al. Simultaneous visualization of protumorigenic Src and MT1-MMP activities with fluorescence resonance energy transfer. , 2010, Cancer research.
[46] K. Hahn,et al. Design and optimization of genetically encoded fluorescent biosensors: GTPase biosensors. , 2008, Methods in cell biology.
[47] K. Burridge,et al. Catching a GEF by its tail. , 2007, Trends in cell biology.
[48] K. Hahn,et al. Imaging and photobleach correction of Mero-CBD, sensor of endogenous Cdc42 activation. , 2006, Methods in enzymology.
[49] G. Bokoch,et al. Assay of Cdc42, Rac, and Rho GTPase activation by affinity methods. , 2002, Methods in enzymology.