International audienceCurrently used techniques for the analysis of single-molecule trajectories only exploit a small part of the available information stored in the data. Here, we apply a Bayesian inference scheme to trajectories of confined receptors that are targeted by pore-forming toxins to extract the two-dimensional confining potential that restricts the motion of the receptor. The receptor motion is modeled by the overdamped Langevin equation of motion. The method uses most of the information stored in the trajectory and converges quickly onto inferred values, while providing the uncertainty on the determined values. The inference is performed on the polynomial development of the potential and on the diffusivities that have been dis...
Membrane proteins move in heterogeneous environments with spatially (sometimes temporally) varying f...
doi:10.1063/1.2166379In general, the direct application of the Jarzynski equality (JE) to reconstruc...
AbstractQuantitative tracking of particle motion using live-cell imaging is a powerful approach to u...
International audienceCurrently used techniques for the analysis of single-molecule trajectories onl...
AbstractCurrently used techniques for the analysis of single-molecule trajectories only exploit a sm...
Membrane proteins move in heterogeneous environments with spatially (sometimes temporally) varying f...
International audienceWe propose a Bayesian method to extract the diffusivity of biomolecules evolvi...
International audienceMapping of the forces on biomolecules in cell membranes has spurred the develo...
AbstractDynamic single-molecule force spectroscopy is often used to distort bonds. The resulting res...
Diffusing membrane constituents are constantly exposed to a variety of forces that influence their s...
AbstractA large number (tens of thousands) of single molecular trajectories on a cell membrane can n...
International audienceTracking single molecules in living cells provides invaluable information on t...
AbstractThe diffusion of receptors within the two-dimensional environment of the plasma membrane is ...
International audienceWe present a Bayesian framework for inferring spatio-temporal maps of diffusiv...
AbstractProtein mobility is conventionally analyzed in terms of an effective diffusion. Yet, this de...
Membrane proteins move in heterogeneous environments with spatially (sometimes temporally) varying f...
doi:10.1063/1.2166379In general, the direct application of the Jarzynski equality (JE) to reconstruc...
AbstractQuantitative tracking of particle motion using live-cell imaging is a powerful approach to u...
International audienceCurrently used techniques for the analysis of single-molecule trajectories onl...
AbstractCurrently used techniques for the analysis of single-molecule trajectories only exploit a sm...
Membrane proteins move in heterogeneous environments with spatially (sometimes temporally) varying f...
International audienceWe propose a Bayesian method to extract the diffusivity of biomolecules evolvi...
International audienceMapping of the forces on biomolecules in cell membranes has spurred the develo...
AbstractDynamic single-molecule force spectroscopy is often used to distort bonds. The resulting res...
Diffusing membrane constituents are constantly exposed to a variety of forces that influence their s...
AbstractA large number (tens of thousands) of single molecular trajectories on a cell membrane can n...
International audienceTracking single molecules in living cells provides invaluable information on t...
AbstractThe diffusion of receptors within the two-dimensional environment of the plasma membrane is ...
International audienceWe present a Bayesian framework for inferring spatio-temporal maps of diffusiv...
AbstractProtein mobility is conventionally analyzed in terms of an effective diffusion. Yet, this de...
Membrane proteins move in heterogeneous environments with spatially (sometimes temporally) varying f...
doi:10.1063/1.2166379In general, the direct application of the Jarzynski equality (JE) to reconstruc...
AbstractQuantitative tracking of particle motion using live-cell imaging is a powerful approach to u...