The generation of physiologically relevant in-vitro models of biological barriers can play a key role in understanding human diseases and in the development of more predictive methods for assessing toxicity and drug or nutrient absorption. Here, we present an advanced cell culture system able to mimic the dynamic environment of biological barriers while monitoring cell behaviour through real-time impedance measurements and imaging. It consists of a fluidic device with an apical and a basal flow compartment separated by a semi-permeable membrane. The main features of the device are the integration of sensing through transepithelial electrical impedance (TEEI) measurements and transparent windows for optical monitoring within a dual flow syst...
A bio-impedance chip has been developed for real-time monitoring of the kinetics of epithelial cell ...
AbstractThis research presents a study of cell-based Electric Cell-substrate Impedance Sensing (ECIS...
We have developed a bilayer microfluidic system with integrated transepithelial electrical resistanc...
The generation of physiologically relevant in-vitro models of biological barriers can play a key rol...
In multicellular organisms epithelial and endothelial cells form selective permeable interfaces betw...
Physiological barriers are located at the interface between the organism and the outside world or li...
Electrochemical impedance spectroscopy (EIS) is a noninvasive, reliable, and efficient method to ana...
The aim of this work of thesis was to contribute to the engineering of physiologically relevant in-v...
We have developed a bilayer microfluidic system with integrated transepithelial electrical resistanc...
Physiological barrier have a fundamental role in human homeostasis, as they are the main gate for th...
Here, we describe methods for combining impedance spectroscopy measurements with electrical simulati...
The goal of this study was to determine whether the Tethapod system, which was designed to determine...
The transepithelial or -endothelial electrical resistance (TEER) is a very common and routinely reco...
A microfluidic Organ-on-Chip has been developed for monitoring the epithelial cells monolayer. Equi...
Transepithelial/transendothelial electrical resistance (TEER) measurements can be applied in organ-o...
A bio-impedance chip has been developed for real-time monitoring of the kinetics of epithelial cell ...
AbstractThis research presents a study of cell-based Electric Cell-substrate Impedance Sensing (ECIS...
We have developed a bilayer microfluidic system with integrated transepithelial electrical resistanc...
The generation of physiologically relevant in-vitro models of biological barriers can play a key rol...
In multicellular organisms epithelial and endothelial cells form selective permeable interfaces betw...
Physiological barriers are located at the interface between the organism and the outside world or li...
Electrochemical impedance spectroscopy (EIS) is a noninvasive, reliable, and efficient method to ana...
The aim of this work of thesis was to contribute to the engineering of physiologically relevant in-v...
We have developed a bilayer microfluidic system with integrated transepithelial electrical resistanc...
Physiological barrier have a fundamental role in human homeostasis, as they are the main gate for th...
Here, we describe methods for combining impedance spectroscopy measurements with electrical simulati...
The goal of this study was to determine whether the Tethapod system, which was designed to determine...
The transepithelial or -endothelial electrical resistance (TEER) is a very common and routinely reco...
A microfluidic Organ-on-Chip has been developed for monitoring the epithelial cells monolayer. Equi...
Transepithelial/transendothelial electrical resistance (TEER) measurements can be applied in organ-o...
A bio-impedance chip has been developed for real-time monitoring of the kinetics of epithelial cell ...
AbstractThis research presents a study of cell-based Electric Cell-substrate Impedance Sensing (ECIS...
We have developed a bilayer microfluidic system with integrated transepithelial electrical resistanc...