Forces applied by cells to substrates can be measured using soft substrates with embedded displacement markers. Traction forces are retrieved from microscopic images by determining the displacements of these markers and fitting the generating forces. Here we show that using elastic films of 5-10-microm thickness one can improve the spatial resolution of the technique. To this end we derived explicit equations for the mechanical response of an elastic layer of finite thickness to point forces. Moreover, these equations allow highly accurate force measurements on eukaryotic cells on films where finite thickness effects are relevant (below approximately 60 microm)
<div><p>We introduce a novel three-dimensional (3D) traction force microscopy (TFM) method motivated...
Quantitative measurements of cell-generated forces have heretofore required that cells be cultured o...
We introduce a novel three-dimensional (3D) traction force microscopy (TFM) method motivated by the ...
AbstractForces applied by cells to substrates can be measured using soft substrates with embedded di...
AbstractThe measurement of cellular traction forces on soft elastic substrates has become a standard...
Animal cells use traction forces to sense the mechanics and geometry of their environment. Measuring...
Animal cells continuously sense and respond to mechanical force. Quantifying these forces remains a ...
Animal cells continuously sense and respond to mechanical force. Quantifying these forces remains a ...
Methods summarized by the term Traction Force Microscopy are widely used to quantify cellular forces...
Epithelial cell layers on soft elastic substrates or pillar arrays are commonly used as model system...
While performing several functions, adherent cells deform their surrounding substrate via stable adh...
Epithelial cell layers on soft elastic substrates or pillar arrays are commonly used as model system...
While performing several functions, adherent cells deform their surrounding substrate via stable adh...
We introduce a novel three-dimensional (3D) traction force microscopy (TFM) method motivated by the ...
Cellular traction force microscopy (TFM) requires knowledge of the mechanical properties of the subs...
<div><p>We introduce a novel three-dimensional (3D) traction force microscopy (TFM) method motivated...
Quantitative measurements of cell-generated forces have heretofore required that cells be cultured o...
We introduce a novel three-dimensional (3D) traction force microscopy (TFM) method motivated by the ...
AbstractForces applied by cells to substrates can be measured using soft substrates with embedded di...
AbstractThe measurement of cellular traction forces on soft elastic substrates has become a standard...
Animal cells use traction forces to sense the mechanics and geometry of their environment. Measuring...
Animal cells continuously sense and respond to mechanical force. Quantifying these forces remains a ...
Animal cells continuously sense and respond to mechanical force. Quantifying these forces remains a ...
Methods summarized by the term Traction Force Microscopy are widely used to quantify cellular forces...
Epithelial cell layers on soft elastic substrates or pillar arrays are commonly used as model system...
While performing several functions, adherent cells deform their surrounding substrate via stable adh...
Epithelial cell layers on soft elastic substrates or pillar arrays are commonly used as model system...
While performing several functions, adherent cells deform their surrounding substrate via stable adh...
We introduce a novel three-dimensional (3D) traction force microscopy (TFM) method motivated by the ...
Cellular traction force microscopy (TFM) requires knowledge of the mechanical properties of the subs...
<div><p>We introduce a novel three-dimensional (3D) traction force microscopy (TFM) method motivated...
Quantitative measurements of cell-generated forces have heretofore required that cells be cultured o...
We introduce a novel three-dimensional (3D) traction force microscopy (TFM) method motivated by the ...