AbstractDielectrophoretic force microscopy (DEPFM) and spectroscopy have been performed on individual intact surface-immobilized mammalian red blood cells. Dielectrophoretic force spectra were obtained in situ in ∼125ms and could be acquired over a region comparable in dimension to the effective diameter of a scanning probe microscopy tip. Good agreement was observed between the measured dielectrophoretic spectra and predictions using a single-shell cell model. In addition to allowing for highly localized dielectric characterization, DEPFM provided a simple means for noncontact imaging of mammalian blood cells under aqueous conditions. These studies demonstrate the feasibility of using DEPFM to monitor localized changes in membrane capacita...
The work was carried out according to the state task of the Omsk Scientific Center SB RAS (project r...
Dielectrophoresis (DEP), the induced motion of cells in a non-uniform electric field, has increasing...
Abstract Dielectrophoresis (DEP) has become a promising technique to separate and identify cells and...
AbstractDielectrophoretic force microscopy (DEPFM) and spectroscopy have been performed on individua...
The membranes of cells have been examined in solution with nanoscale resolution using dielectrophore...
A novel scanning probe microscopy technique has allowed dielectrophoretic force imaging with nanosca...
Dielectrophoresis (DEP) is a term which describes the motion of polarisable particles induced by a ...
Usually dielectrophoretic and electrorotation measurements are carried out at low ionic strength to ...
Dielectrophoresis (DEP) is a label-free technique for the characterization and manipulation of biolo...
Abstract We have formulated the dielectrophoretic force exerted on micro/nanoparticles upon the appl...
The dielectrophoretic force experienced by a range of cell types has been examined with the aim of ...
Characterization of cellular dielectrophoretic (DEP) behaviors, when cells are exposed to an alterna...
Most of the microscopy-based, quantitative assays rely on fluorescent dyes. In this study, we invest...
The detection of circulating tumor cells (CTCs) in blood is crucial to assess metastatic progression...
Mapping the dielectric properties of cells with nanoscale spatial resolution can be an important too...
The work was carried out according to the state task of the Omsk Scientific Center SB RAS (project r...
Dielectrophoresis (DEP), the induced motion of cells in a non-uniform electric field, has increasing...
Abstract Dielectrophoresis (DEP) has become a promising technique to separate and identify cells and...
AbstractDielectrophoretic force microscopy (DEPFM) and spectroscopy have been performed on individua...
The membranes of cells have been examined in solution with nanoscale resolution using dielectrophore...
A novel scanning probe microscopy technique has allowed dielectrophoretic force imaging with nanosca...
Dielectrophoresis (DEP) is a term which describes the motion of polarisable particles induced by a ...
Usually dielectrophoretic and electrorotation measurements are carried out at low ionic strength to ...
Dielectrophoresis (DEP) is a label-free technique for the characterization and manipulation of biolo...
Abstract We have formulated the dielectrophoretic force exerted on micro/nanoparticles upon the appl...
The dielectrophoretic force experienced by a range of cell types has been examined with the aim of ...
Characterization of cellular dielectrophoretic (DEP) behaviors, when cells are exposed to an alterna...
Most of the microscopy-based, quantitative assays rely on fluorescent dyes. In this study, we invest...
The detection of circulating tumor cells (CTCs) in blood is crucial to assess metastatic progression...
Mapping the dielectric properties of cells with nanoscale spatial resolution can be an important too...
The work was carried out according to the state task of the Omsk Scientific Center SB RAS (project r...
Dielectrophoresis (DEP), the induced motion of cells in a non-uniform electric field, has increasing...
Abstract Dielectrophoresis (DEP) has become a promising technique to separate and identify cells and...