Archived content. See more recent content: Application notes & reviews
This page is dedicated to frequently asked questions about the Perfusion Pack.
In addition to providing fast medium switches, the Perfusion Pack guarantees a stable pulse-less flow. Compared to peristaltic or syringe pump, this solution offers more accurate flow control. For experiment involving cells, pulse-less flow decreases cellular stress compared to peristaltic or syringe pump.
Moreover, for measurement methods such as surface plasmon resonance, flow rate oscillations can have a detrimental effects on your signal. Syringe or peristaltic pumps can thus not be adapted for precise measurements.
The main issue of syringe or peristaltic pumps is the presence of oscillation at low flow rates, caused by mechanical parts of the pumps. At flow rate levels typically used by biologists, these oscillations can have a detrimental effet on cells and on the experiment’s results. The Perfusion Pack is thus perfectly suited to replace your old peristaltic or syringe pump !
Perfusion chambers or microfluidic chips can fit any type of inverted microscopes. You can thus perform real time imaging, such as time lapse microscopy, SPR microscopy or TIR microscopy, while running your experiment. Moreover, with the Perfusion Pack, you are able to perform medium change, or drug perfusion, without removing your perfusion chamber or microfluidic chip from your microscope. The Perfusion Pack allows you to easily achieve long-term studies on cells.
Any close perfusion chamber with liquid inlet and outlet can be used with the Perfusion Pack. Several types of perfusion chambers are commercially available.
A wide range of microfluidic chips are commercially available, such as cell culture microfluidic chips. If you want to create custom microfluidic chips to match the needs of your experiment, check our SoftLithoBox solution.
Growing bacteria can be trickier than adherent mammalian cells. Some bacteria have to be immobilized at the bottom glass slide of the perfusion chamber. This can be done using poly-L-lysine coating or a thin film of Agar. Some researchers use a permeable dialysis membrane to cover the bacteria layer and avoid flushing the bacteria.
Air bubbles can be a real issue for experiments with perfusion chambers or microfluidic chips. In our application note, we suggest to add another reservoir filled with a liquid such as SDS (which acts as a soft surfactant) to help get rid of the air bubbles. By injecting this liquid with a high flow rate before beginning your experiment, you will make sure to avoid any trouble during the experiment. Moreover, once the air bubbles are removed, you won’t risk adding new ones inside your perfusion chamber or microfluidic chip since medium switches can be performed without unplugging any tube!
Microfluidics is currently a growing and promising field in biology. Microfluidic provides a high degree of control on cell culture conditions. Due to the micrometer scale dimensions of the chips, the volumes of reagents can be measured in nanoliter or femtoliters, and the doses delivered to the cells can be measured much more precisely than with conventional tools, such as pipettes.
The number and density of cells involved in the experiment can also be precisely controlled, allowing to monitor them with a high spatial resolution. Microfluidics is furthermore particularly valuable in single cell analysis.
Microfluidics also allows automation of cell culture, which is a great time saver, but also gives a better reproducibility for all cell-based experiments. You can then cultivate cells for several weeks without manual interventions, under precise, reproducible conditions.
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For more information about microfluidics and cell biology, check our review !
Every type of cells (mammalian, yeast or bacteria cells) can be grown in a microfluidic chip, providing that you use a dedicated chip. Non adherent and adherent cells can be cultivated in a microfluidic chip. With the addition of matrices such as collagen, three dimensional cell culture is also possible. This feature is particularly interesting for tissue engineering experiments.
One of the most interesting aspect of microfluidic cell culture is the possibility to realize high throughput assays. By using a microfluidic chip with multiple chambers, you can obtain a high parallelization of experiments. For exemple, you can design toxicity tests with several different drugs and biomarkers being multiplexed to create multiple exposure conditions.
(photo: Fluidigm)
The Elveflow Smart Interface software can be used in parallel with every other software you are used to for your experiments. If you need special features, such as synchronizing with other softwares, don’t hesitate to contact our team of scientists! Our software also includes a developer kit, with Matlab, Python and C librairies.
For more technical or pricing information:
contact@elveflow.com or phone: +33(0).184.163.807
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