We present a novel concept for the controlled trapping and releasing of beads and cells in a PDMS microfluidic channel without obstacles present around the particle or in the channel. The trapping principle relies on a two-level microfluidic configuration: a top main PDMS channel interconnected to a buried glass microchannel using round vias. As the fluidic resistances rule the way the liquid flows inside the channels, particles located in the streamlines passing inside the buried level are immobilized by the round via with a smaller diameter, leaving the object motionless in the upper PDMS channel. The particle is maintained by the difference of pressure established across its interface and acts as an infinite fluidic resistance, virtually...
Typical microfluidic systems take advantage of multiple storage reservoirs, pumps and valves for the...
Trapping and manipulation of microparticles using optical tweezers is usually performed within a sam...
Schmitz J, Stute B, Täuber S, Kohlheyer D, von Lieres E, Grünberger A. Reliable cell retention of ma...
This paper introduces a simple method for trapping and releasing single particles, such as microbead...
Microfluidic technology has been applied widely for separating and trapping various type of cells. T...
To perform specific analysis for the single cell, individual cells have to be captured and separated...
Copyright © 2014 B. Deng et al. This is an open access article distributed under the Creative Common...
Microfluidic cell-based arraying technology is widely used in the field of single-cell analysis. How...
International audienceWith the aim to parallelize and monitor biological or biochemical phenomena, t...
A highly requirement of analyzing a biological sample at a so-called single cell level has encourage...
Microfluidic channels are powerful means of control of minute volumes such as droplets. These drople...
In this paper, a microfluidic device capable of trapping a single cell in a high throughput manner a...
There are only a few examples in which beads are employed for heterogeneous assays on microfluidic d...
Abstract: We have been investigating a microfluidics platform for highspeed, low-cost sequencing of ...
The isolation of single biological cells and their further cultivation in dedicated arrayed chambers...
Typical microfluidic systems take advantage of multiple storage reservoirs, pumps and valves for the...
Trapping and manipulation of microparticles using optical tweezers is usually performed within a sam...
Schmitz J, Stute B, Täuber S, Kohlheyer D, von Lieres E, Grünberger A. Reliable cell retention of ma...
This paper introduces a simple method for trapping and releasing single particles, such as microbead...
Microfluidic technology has been applied widely for separating and trapping various type of cells. T...
To perform specific analysis for the single cell, individual cells have to be captured and separated...
Copyright © 2014 B. Deng et al. This is an open access article distributed under the Creative Common...
Microfluidic cell-based arraying technology is widely used in the field of single-cell analysis. How...
International audienceWith the aim to parallelize and monitor biological or biochemical phenomena, t...
A highly requirement of analyzing a biological sample at a so-called single cell level has encourage...
Microfluidic channels are powerful means of control of minute volumes such as droplets. These drople...
In this paper, a microfluidic device capable of trapping a single cell in a high throughput manner a...
There are only a few examples in which beads are employed for heterogeneous assays on microfluidic d...
Abstract: We have been investigating a microfluidics platform for highspeed, low-cost sequencing of ...
The isolation of single biological cells and their further cultivation in dedicated arrayed chambers...
Typical microfluidic systems take advantage of multiple storage reservoirs, pumps and valves for the...
Trapping and manipulation of microparticles using optical tweezers is usually performed within a sam...
Schmitz J, Stute B, Täuber S, Kohlheyer D, von Lieres E, Grünberger A. Reliable cell retention of ma...