© 2017 The Author(s). Background: Red blood cells (RBCs) deform significantly and repeatedly when passing through narrow capillaries and delivering dioxygen throughout the body. Deformability of RBCs is a key characteristic, largely governed by the mechanical properties of the cell membrane. This study investigated RBC mechanical properties using atomic force microscopy (AFM) with the aim to develop a coarse-grained particle method model to study for the first time RBC indentation in both 2D and 3D. This new model has the potential to be applied to further investigate the local deformability of RBCs, with accurate control over adhesion, probe geometry and position of applied force. Results: The model considers the linear stretch capacity of...
Normal red blood cells (RBCs) are relatively simple in structure as they contain no major organelles...
Erythroid cells, specifically red blood cells (RBCs), are constantly exposed to highly reactive radi...
Thesis (Ph. D.)--Massachusetts Institute of Technology, Dept. of Electrical Engineering and Computer...
Background: Red blood cells (RBCs) deform significantly and repeatedly when passing through narrow c...
Abstract Background Red blood cells (RBCs) deform significantly and repeatedly when passing through ...
International audienceSickle cell disease (SCD) is the most frequent genetic disease in the West Ind...
Accurate modelling of red blood cells (RBCs) has greater potential over experiments, as it can be mo...
In recent decades, the biomechanical properties of human red blood cells (RBCs) have been greatly ex...
Interaction forces, deformation and nano-rheology of individual red blood cells in physiologically r...
Human red blood cells (RBCs) need to deform in order to pass through capillaries in human vasculatur...
Human red blood cells (RBCs) need to deform in order to pass through capillaries in human vasculatur...
Red blood cells (RBCs) are characterized by a remarkable elasticity, which allows them to undergo ve...
Author manuscript; available in PMC 2012 March 1.We investigate the biophysical characteristics of h...
Human red blood cells (RBCs) need to deform in order to pass through capillaries in human vasculatur...
© 2019 Geekiyanage et al. This is an open access article distributed under the terms of the Creative...
Normal red blood cells (RBCs) are relatively simple in structure as they contain no major organelles...
Erythroid cells, specifically red blood cells (RBCs), are constantly exposed to highly reactive radi...
Thesis (Ph. D.)--Massachusetts Institute of Technology, Dept. of Electrical Engineering and Computer...
Background: Red blood cells (RBCs) deform significantly and repeatedly when passing through narrow c...
Abstract Background Red blood cells (RBCs) deform significantly and repeatedly when passing through ...
International audienceSickle cell disease (SCD) is the most frequent genetic disease in the West Ind...
Accurate modelling of red blood cells (RBCs) has greater potential over experiments, as it can be mo...
In recent decades, the biomechanical properties of human red blood cells (RBCs) have been greatly ex...
Interaction forces, deformation and nano-rheology of individual red blood cells in physiologically r...
Human red blood cells (RBCs) need to deform in order to pass through capillaries in human vasculatur...
Human red blood cells (RBCs) need to deform in order to pass through capillaries in human vasculatur...
Red blood cells (RBCs) are characterized by a remarkable elasticity, which allows them to undergo ve...
Author manuscript; available in PMC 2012 March 1.We investigate the biophysical characteristics of h...
Human red blood cells (RBCs) need to deform in order to pass through capillaries in human vasculatur...
© 2019 Geekiyanage et al. This is an open access article distributed under the terms of the Creative...
Normal red blood cells (RBCs) are relatively simple in structure as they contain no major organelles...
Erythroid cells, specifically red blood cells (RBCs), are constantly exposed to highly reactive radi...
Thesis (Ph. D.)--Massachusetts Institute of Technology, Dept. of Electrical Engineering and Computer...