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Equilibrium physics breakdown reveals the active nature of red blood cell flickering
by
Audoly, B.
, Turlier, H.
, Auth, T.
, Fedosov, D. A.
, Gompper, G.
, Betz, T.
, Joanny, J.-F.
, Sykes, C.
, Gov, N. S.
in
119/118
/ 631/57
/ 639/301/923/1029
/ 639/766/530/2804
/ 639/766/747
/ Atomic
/ Breakdown
/ Classical and Continuum Physics
/ Complex Systems
/ Condensed Matter Physics
/ Engineering Sciences
/ Erythrocytes
/ Flicker
/ Fluctuation
/ Fluctuations
/ Fluid mechanics
/ Kinetics
/ Light microscopy
/ Mathematical analysis
/ Mathematical and Computational Physics
/ Mathematical models
/ Mathematical Physics
/ Mechanics
/ Membrane processes
/ Membranes
/ Microscopy
/ Molecular
/ Optical and Plasma Physics
/ Physics
/ Red blood cells
/ Solid mechanics
/ Structural mechanics
/ Theoretical
2016
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Equilibrium physics breakdown reveals the active nature of red blood cell flickering
by
Audoly, B.
, Turlier, H.
, Auth, T.
, Fedosov, D. A.
, Gompper, G.
, Betz, T.
, Joanny, J.-F.
, Sykes, C.
, Gov, N. S.
in
119/118
/ 631/57
/ 639/301/923/1029
/ 639/766/530/2804
/ 639/766/747
/ Atomic
/ Breakdown
/ Classical and Continuum Physics
/ Complex Systems
/ Condensed Matter Physics
/ Engineering Sciences
/ Erythrocytes
/ Flicker
/ Fluctuation
/ Fluctuations
/ Fluid mechanics
/ Kinetics
/ Light microscopy
/ Mathematical analysis
/ Mathematical and Computational Physics
/ Mathematical models
/ Mathematical Physics
/ Mechanics
/ Membrane processes
/ Membranes
/ Microscopy
/ Molecular
/ Optical and Plasma Physics
/ Physics
/ Red blood cells
/ Solid mechanics
/ Structural mechanics
/ Theoretical
2016
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Equilibrium physics breakdown reveals the active nature of red blood cell flickering
by
Audoly, B.
, Turlier, H.
, Auth, T.
, Fedosov, D. A.
, Gompper, G.
, Betz, T.
, Joanny, J.-F.
, Sykes, C.
, Gov, N. S.
in
119/118
/ 631/57
/ 639/301/923/1029
/ 639/766/530/2804
/ 639/766/747
/ Atomic
/ Breakdown
/ Classical and Continuum Physics
/ Complex Systems
/ Condensed Matter Physics
/ Engineering Sciences
/ Erythrocytes
/ Flicker
/ Fluctuation
/ Fluctuations
/ Fluid mechanics
/ Kinetics
/ Light microscopy
/ Mathematical analysis
/ Mathematical and Computational Physics
/ Mathematical models
/ Mathematical Physics
/ Mechanics
/ Membrane processes
/ Membranes
/ Microscopy
/ Molecular
/ Optical and Plasma Physics
/ Physics
/ Red blood cells
/ Solid mechanics
/ Structural mechanics
/ Theoretical
2016
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Equilibrium physics breakdown reveals the active nature of red blood cell flickering
Journal Article
Equilibrium physics breakdown reveals the active nature of red blood cell flickering
2016
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Overview
Red blood cells, or erythrocytes, are seen to flicker under optical microscopy, a phenomenon initially described as thermal fluctuations of the cell membrane. But recent studies have suggested the involvement of non-equilibrium processes, without definitively ruling out equilibrium interpretations. Using active and passive microrheology to directly compare the membrane response and fluctuations on single erythrocytes, we report here a violation of the fluctuation–dissipation relation, which is a direct demonstration of the non-equilibrium nature of flickering. With an analytical model of the composite erythrocyte membrane and realistic stochastic simulations, we show that several molecular mechanisms may explain the active fluctuations, and we predict their kinetics. We demonstrate that tangential metabolic activity in the network formed by spectrin, a cytoskeletal protein, can generate curvature-mediated active membrane motions. We also show that other active membrane processes represented by direct normal force dipoles may explain the observed membrane activity. Our findings provide solid experimental and theoretical frameworks for future investigations of the origin and function of active motion in cells.
The membranes of red blood cells exhibit a flickering motion that has long been ascribed a thermal origin. Microrheology experiments provide direct evidence that flickering is an active process characterized by non-equilibrium dynamics.
Publisher
Nature Publishing Group UK,Nature Publishing Group,Nature Publishing Group [2005-....]
Subject
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