Fast spatiotemporal correlation spectroscopy to determine protein lateral diffusion laws in live cell membranes
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Enrico Gratton | Fabio Beltram | Francesco Cardarelli | Carmine Di Rienzo | E. Gratton | F. Beltram | F. Cardarelli | C. Di Rienzo
[1] Hervé Rigneault,et al. Fluorescence correlation spectroscopy diffusion laws to probe the submicron cell membrane organization. , 2005, Biophysical journal.
[2] Enrico Gratton,et al. Analysis of molecular concentration and brightness from fluorescence fluctuation data with an electron multiplied CCD camera. , 2008, Biophysical journal.
[3] S. Semrau,et al. Particle image correlation spectroscopy (PICS): retrieving nanometer-scale correlations from high-density single-molecule position data. , 2007, Biophysical journal.
[4] Thorsten Wohland,et al. Electron multiplying charge-coupled device camera based fluorescence correlation spectroscopy. , 2006, Analytical chemistry.
[5] Kai Simons,et al. Model systems, lipid rafts, and cell membranes. , 2004, Annual review of biophysics and biomolecular structure.
[6] S. Hell,et al. Direct observation of the nanoscale dynamics of membrane lipids in a living cell , 2009, Nature.
[7] P. Schwille,et al. Partitioning, diffusion, and ligand binding of raft lipid analogs in model and cellular plasma membranes. , 2012, Biochimica et biophysica acta.
[8] D. Marguet,et al. Spot variation fluorescence correlation spectroscopy allows for superresolution chronoscopy of confinement times in membranes. , 2011, Biophysical journal.
[9] S W Hell,et al. STED nanoscopy reveals molecular details of cholesterol- and cytoskeleton-modulated lipid interactions in living cells. , 2011, Biophysical journal.
[10] Akihiro Kusumi,et al. Phospholipids undergo hop diffusion in compartmentalized cell membrane , 2002, The Journal of cell biology.
[11] F. Ritort,et al. Thermal activation and ATP dependence of the cytoskeleton remodeling dynamics. , 2009, Physical review. E, Statistical, nonlinear, and soft matter physics.
[12] Jonas Ries,et al. Studying slow membrane dynamics with continuous wave scanning fluorescence correlation spectroscopy. , 2006, Biophysical journal.
[13] A Kusumi,et al. Single molecule imaging of green fluorescent proteins in living cells: E-cadherin forms oligomers on the free cell surface. , 2001, Biophysical journal.
[14] Hong Qian,et al. Nanometre-level analysis demonstrates that lipid flow does not drive membrane glycoprotein movements , 1989, Nature.
[15] M. Fivaz,et al. Dynamics of GPI-anchored proteins on the surface of living cells. , 2006, Nanomedicine : nanotechnology, biology, and medicine.
[16] H Schindler,et al. Imaging of single molecule diffusion. , 1996, Proceedings of the National Academy of Sciences of the United States of America.
[17] S. Hell,et al. Breaking the diffraction resolution limit by stimulated emission: stimulated-emission-depletion fluorescence microscopy. , 1994, Optics letters.
[18] K. Ritchie,et al. The fence and picket structure of the plasma membrane of live cells as revealed by single molecule techniques (Review) , 2003, Molecular membrane biology.
[19] Akihiro Kusumi,et al. Hierarchical organization of the plasma membrane: Investigations by single‐molecule tracking vs. fluorescence correlation spectroscopy , 2010, FEBS letters.
[20] A. Kusumi,et al. Confined lateral diffusion of membrane receptors as studied by single particle tracking (nanovid microscopy). Effects of calcium-induced differentiation in cultured epithelial cells. , 1993, Biophysical journal.
[21] Philip S Low,et al. Imaging of the diffusion of single band 3 molecules on normal and mutant erythrocytes. , 2009, Blood.
[22] Akihiro Kusumi,et al. Three-dimensional reconstruction of the membrane skeleton at the plasma membrane interface by electron tomography , 2006, The Journal of cell biology.
[23] Akihiro Kusumi,et al. Molecular Dynamics and Interactions for Creation of Stimulation‐Induced Stabilized Rafts from Small Unstable Steady‐State Rafts , 2004, Traffic.
[24] Santiago Costantino,et al. Spatiotemporal image correlation spectroscopy (STICS) theory, verification, and application to protein velocity mapping in living CHO cells. , 2005, Biophysical journal.
[25] S. Singer,et al. The fluid mosaic model of the structure of cell membranes. , 1972, Science.
[26] Michael Edidin,et al. Short class I major histocompatibility complex cytoplasmic tails differing in charge detect arbiters of lateral diffusion in the plasma membrane. , 2004, Biophysical journal.
[27] Akihiro Kusumi,et al. Paradigm shift of the plasma membrane concept from the two-dimensional continuum fluid to the partitioned fluid: high-speed single-molecule tracking of membrane molecules. , 2005, Annual review of biophysics and biomolecular structure.
[28] M. Edidin. The state of lipid rafts: from model membranes to cells. , 2003, Annual review of biophysics and biomolecular structure.
[29] Elliot L Elson,et al. Phase separation in biological membranes: integration of theory and experiment. , 2010, Annual review of biophysics.
[30] W. Webb,et al. Molecular crowding on the cell surface. , 1988, Science.
[31] Claire M Brown,et al. Probing the integrin-actin linkage using high-resolution protein velocity mapping , 2006, Journal of Cell Science.
[32] E. Pandzic,et al. STICCS reveals matrix-dependent adhesion slipping and gripping in migrating cells. , 2012, Biophysical journal.
[33] E Gratton,et al. Scanning two-photon fluctuation correlation spectroscopy: particle counting measurements for detection of molecular aggregation. , 1996, Biophysical journal.
[34] Hervé Rigneault,et al. Dynamic molecular confinement in the plasma membrane by microdomains and the cytoskeleton meshwork , 2006, The EMBO journal.
[35] A Kusumi,et al. Barriers for lateral diffusion of transferrin receptor in the plasma membrane as characterized by receptor dragging by laser tweezers: fence versus tether , 1995, The Journal of cell biology.