Weak Ergodicity Breaking of Receptor Motion in Living Cells Stemming from Random Diffusivity
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M. Lewenstein | J. A. Torreño-Pina | C. Manzo | P. Massignan | G. Lapeyre | M. F. G. Parajo | J. A. Torreno-Pina
[1] Observation of a Fragmented, Strongly Interacting Fermi Gas. , 2015, Physical review letters.
[2] Andrey G. Cherstvy,et al. Anomalous diffusion models and their properties: non-stationarity, non-ergodicity, and ageing at the centenary of single particle tracking. , 2014, Physical chemistry chemical physics : PCCP.
[3] A. Cambi,et al. Enhanced receptor–clathrin interactions induced by N-glycan–mediated membrane micropatterning , 2014, Proceedings of the National Academy of Sciences.
[4] Akihiro Kusumi,et al. Tracking single molecules at work in living cells. , 2014, Nature chemical biology.
[5] Gary W Slater,et al. Diffusing diffusivity: a model for anomalous, yet Brownian, diffusion. , 2014, Physical review letters.
[6] M. Lewenstein,et al. Nonergodic subdiffusion from Brownian motion in an inhomogeneous medium. , 2014, Physical review letters.
[7] Maxime Dahan,et al. Mapping the energy and diffusion landscapes of membrane proteins at the cell surface using high-density single-molecule imaging and Bayesian inference: application to the multiscale dynamics of glycine receptors in the neuronal membrane. , 2014, Biophysical journal.
[8] Andrey G. Cherstvy,et al. Particle invasion, survival, and non-ergodicity in 2D diffusion processes with space-dependent diffusivity. , 2013, Soft matter.
[9] Sylvain Gigan,et al. Brownian Motion in a Speckle Light Field: Tunable Anomalous Diffusion and Selective Optical Manipulation , 2013, Scientific Reports.
[10] C. Jacobs-Wagner,et al. Physical Nature of the Bacterial Cytoplasm , 2014 .
[11] T. Esslinger,et al. Direct Observation of Fragmentation in a Disordered, Strongly Interacting Fermi Gas , 2013, 1311.5174.
[12] Sheng Liu,et al. Multi-Color Quantum Dot Tracking Using a High-Speed Hyperspectral Line-Scanning Microscope , 2013, PloS one.
[13] Ralf Metzler,et al. Noisy continuous time random walks. , 2013, The Journal of chemical physics.
[14] Andrey G. Cherstvy,et al. Anomalous diffusion and ergodicity breaking in heterogeneous diffusion processes , 2013, 1303.5533.
[15] A. Kuznetsov,et al. Intracellular transport of insulin granules is a subordinated random walk , 2013, Proceedings of the National Academy of Sciences.
[16] T. Franosch,et al. Anomalous transport in the crowded world of biological cells , 2013, Reports on progress in physics. Physical Society.
[17] Emilio J. Gualda,et al. The Neck Region of the C-type Lectin DC-SIGN Regulates Its Surface Spatiotemporal Organization and Virus-binding Capacity on Antigen-presenting Cells* , 2012, The Journal of Biological Chemistry.
[18] R. Metzler,et al. Strange kinetics of single molecules in living cells , 2012 .
[19] Jürgen Köhler,et al. Fractional Brownian motion in crowded fluids , 2012 .
[20] E. Chong,et al. Obstructed diffusion propagator analysis for single-particle tracking. , 2012, Physical review. E, Statistical, nonlinear, and soft matter physics.
[21] X. Michalet. Erratum: Mean square displacement analysis of single-particle trajectories with localization error: Brownian motion in an isotropic medium [Phys. Rev. E82, 041914 (2010)] , 2011 .
[22] Aubrey V. Weigel,et al. Ergodic and nonergodic processes coexist in the plasma membrane as observed by single-molecule tracking , 2011, Proceedings of the National Academy of Sciences.
[23] M. Modugno,et al. Observation of subdiffusion in a disordered interacting system. , 2010, Physical review letters.
[24] R. Metzler,et al. In vivo anomalous diffusion and weak ergodicity breaking of lipid granules. , 2010, Physical review letters.
[25] X. Michalet. Mean square displacement analysis of single-particle trajectories with localization error: Brownian motion in an isotropic medium. , 2010, Physical review. E, Statistical, nonlinear, and soft matter physics.
[26] Y. Garini,et al. Transient anomalous diffusion of telomeres in the nucleus of mammalian cells. , 2009, Physical review letters.
[27] C. Figdor,et al. The C‐type lectin DC‐SIGN internalizes soluble antigens and HIV‐1 virions via a clathrin‐dependent mechanism , 2009, European journal of immunology.
[28] A. Sergé,et al. Dynamic multiple-target tracing to probe spatiotemporal cartography of cell membranes , 2008, Nature Methods.
[29] R. Metzler,et al. Random time-scale invariant diffusion and transport coefficients. , 2008, Physical review letters.
[30] J. Klafter,et al. Nonergodicity mimics inhomogeneity in single particle tracking. , 2008, Physical review letters.
[31] J. Klafter,et al. Probing microscopic origins of confined subdiffusion by first-passage observables , 2008, Proceedings of the National Academy of Sciences.
[32] J. Lippincott-Schwartz,et al. High-density mapping of single-molecule trajectories with photoactivated localization microscopy , 2008, Nature Methods.
[33] J. Klafter,et al. First-passage times in complex scale-invariant media , 2007, Nature.
[34] Ralf Metzler,et al. Subdiffusion and weak ergodicity breaking in the presence of a reactive boundary. , 2007, Physical review letters.
[35] C. Figdor,et al. Ligand-conjugated quantum dots monitor antigen uptake and processing by dendritic cells. , 2007, Nano letters.
[36] G. Nabel,et al. Leukocyte-specific protein 1 interacts with DC-SIGN and mediates transport of HIV to the proteasome in dendritic cells , 2007, The Journal of experimental medicine.
[37] Haw Yang,et al. Quantitative characterization of changes in dynamical behavior for single-particle tracking studies. , 2006, Journal of Physical Chemistry B.
[38] M. Dentz,et al. Modeling non‐Fickian transport in geological formations as a continuous time random walk , 2006 .
[39] Golan Bel,et al. Weak Ergodicity Breaking in the Continuous-Time Random Walk , 2005 .
[40] M. Weiss,et al. Anomalous subdiffusion is a measure for cytoplasmic crowding in living cells. , 2004, Biophysical journal.
[41] Y. Kooyk,et al. DC-SIGN: escape mechanism for pathogens , 2003, Nature Reviews Immunology.
[42] N. F. Hulst,et al. Single molecule lifetime fluctuations reveal segmental dynamics in polymers. , 2003, Physical review letters.
[43] A. Triller,et al. The role of receptor diffusion in the organization of the postsynaptic membrane , 2003, Nature Reviews Neuroscience.
[44] E. Barkai. Aging in subdiffusion generated by a deterministic dynamical system. , 2003, Physical review letters.
[45] W. Weis,et al. Structural Basis for Selective Recognition of Oligosaccharides by DC-SIGN and DC-SIGNR , 2001, Science.
[46] Daniel A. Mitchell,et al. A Novel Mechanism of Carbohydrate Recognition by the C-type Lectins DC-SIGN and DC-SIGNR , 2001, The Journal of Biological Chemistry.
[47] Douglas S Kwon,et al. DC-SIGN, a Dendritic Cell–Specific HIV-1-Binding Protein that Enhances trans-Infection of T Cells , 2000, Cell.
[48] A. Young,et al. Spin glasses and random fields , 1997 .
[49] K. Jacobson,et al. Single-particle tracking: applications to membrane dynamics. , 1997, Annual review of biophysics and biomolecular structure.
[50] M. Saxton. Anomalous diffusion due to binding: a Monte Carlo study. , 1996, Biophysical journal.
[51] J. Quastel. Diffusion in Disordered Media , 1996 .
[52] K. Jacobson,et al. Detection of temporary lateral confinement of membrane proteins using single-particle tracking analysis. , 1995, Biophysical journal.
[53] M. Saxton. Anomalous diffusion due to obstacles: a Monte Carlo study. , 1994, Biophysical journal.
[54] J. Bouchaud,et al. Anomalous diffusion in disordered media: Statistical mechanisms, models and physical applications , 1990 .
[55] M. Shlesinger,et al. Stochastic pathway to anomalous diffusion. , 1987, Physical review. A, General physics.
[56] B. Mandelbrot,et al. Fractional Brownian Motions, Fractional Noises and Applications , 1968 .