A multi-layered polydimethylsiloxane microfluidic device with an integrated suspended membrane has been fabricated that allows dynamic and multi-axial mechanical deformation and simultaneous live-cell microscopy imaging. The transparent membrane’s strain field can be controlled independently along two orthogonal directions. Human foreskin fibroblasts were immobilized on the membrane’s surface and stretched along two orthogonal directions sequentially while performing live-cell imaging. Cyclic deformation of the cells induced a reversible reorientation perpendicular to the direction of the applied strain. Cells remained viable in the microdevice for several days. As opposed to existing microfluidic or macroscale stretching devices, this devi...
In this paper, we present a transparent mechanical stimulation device capable of uniaxial stimulatio...
An available novel system for studying the cellular mechanobiology applies an equiaxial strain field...
In this paper, we present a transparent mechanical stimulation device capable of uniaxial stimulatio...
Multi-array cell stretching platform for high magnification real-time imaging Aims: This paper repor...
In the recent decades, it has become widely known that the physiological changes in cells can be ind...
In the recent decades, it has become widely known that the physiological changes in cells can be ind...
Cells in the body experience various mechanical stimuli that are often essential to proper cell func...
Mechanical stress has been proven to be an important factor interfering with many biological functio...
We have developed an integrated strain array for cell culture enabling high-throughput mechano-trans...
The behavior of cells and tissues in vivo is determined by the integration of multiple biochemical a...
Cells in the human body are constantly subjected to mechanical forces. The field of Mechanobiology e...
In this paper, we present a transparent mechanical stimulation device capable of uniaxial stimulatio...
An available novel system for studying the cellular mechanobiology applies an equiaxial strain field...
An available novel system for studying the cellular mechanobiology applies an equiaxial strain field...
In this paper, we present a transparent mechanical stimulation device capable of uniaxial stimulatio...
In this paper, we present a transparent mechanical stimulation device capable of uniaxial stimulatio...
An available novel system for studying the cellular mechanobiology applies an equiaxial strain field...
In this paper, we present a transparent mechanical stimulation device capable of uniaxial stimulatio...
Multi-array cell stretching platform for high magnification real-time imaging Aims: This paper repor...
In the recent decades, it has become widely known that the physiological changes in cells can be ind...
In the recent decades, it has become widely known that the physiological changes in cells can be ind...
Cells in the body experience various mechanical stimuli that are often essential to proper cell func...
Mechanical stress has been proven to be an important factor interfering with many biological functio...
We have developed an integrated strain array for cell culture enabling high-throughput mechano-trans...
The behavior of cells and tissues in vivo is determined by the integration of multiple biochemical a...
Cells in the human body are constantly subjected to mechanical forces. The field of Mechanobiology e...
In this paper, we present a transparent mechanical stimulation device capable of uniaxial stimulatio...
An available novel system for studying the cellular mechanobiology applies an equiaxial strain field...
An available novel system for studying the cellular mechanobiology applies an equiaxial strain field...
In this paper, we present a transparent mechanical stimulation device capable of uniaxial stimulatio...
In this paper, we present a transparent mechanical stimulation device capable of uniaxial stimulatio...
An available novel system for studying the cellular mechanobiology applies an equiaxial strain field...
In this paper, we present a transparent mechanical stimulation device capable of uniaxial stimulatio...