Inside Therapeutics
TAMARA Nanoparticle Synthesis SystemProduct Results will show here!
Support by a team of engineers & PhDs
Support by a team of engineers & PhDs
Support by a team of engineers & PhDs
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Whereas standard ChipShop connectors only accept soft-walled tubing, this set of connectors allows connecting any 1/16" OD rigid tubing to a ChipShop chip.
Suitable for rigid tubing (PTFE, PEEK, etc.) with an OD of 1/16" (1.6 mm). Manufactured in blue TPE, max. pressure of 3.2 bar with a 1/16" OD PEEK tubing.
Plugs to block unused ports are also available in our shop.
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Nanoparticles are a revolutionizing way of delivering drugs and genetic material directly to the cells thanks to their unique combination of high encapsulation efficiency, high biocompatibility, and precise targeting.
This novel technology was brought to the spotlight with the SARS-CoV-2 vaccines, where lipid nanoparticles (LNPs) were used for the intracellular delivery of mRNA, triggering an immune response from the host immune system. Outside vaccines, nanoparticles have shown immense potential in various other applications such as gene therapies (siRNA-LNP), drug delivery, or diagnostics (PLGA & liposomes).
These nanocarriers are mainly synthesized by solvent-antisolvent nanoprecipitation, caused by the rapid mixing of two phases. To encapsulate the right amount of material, minimize toxicity, and precisely target one type of cell, nanoparticle size has to be as accurate and homogeneous as possible. To ensure this, microfluidics appears as the best-suited solution as it allows for the highest level of control of the mixing conditions, leading to the optimal control of the nanoparticle critical parameters.
The microfluidic-based lipid nanoparticle synthesis pack has been assembled to allow the fine-tuning of the most important synthesis parameters of any lipidic or polymeric nanoparticle such as LNPs, liposomes, or PLGA:
The TFR (Total Flow Rate) is the parameter that has the most significant impact on the final size of nanoparticles, see below. It is defined as the sum of the flow rates of the aqueous phase and the organic phase. Meanwhile, the FRR (Flow Rate Ratio) is also an important parameter to adjust when using a herringbone microfluidic mixer, as it affects both the size and encapsulation efficiency of the particles. FRR is defined as the ratio between the flow rate of the aqueous phase and the flow rate of the organic phase.


This pack was created for all, from the microfluidics beginner to the nanoparticle expert. Thanks to its versatility, use one single reliable platform and adapt it to your requirements from screening to scale-up: automate the system to speed up your nanoparticle synthesis, or easily switch from low (<1 mL) to very large volume (>5L).

The lipid nanoparticle synthesis pack includes the best components on the market to efficiently and easily produce any nanoparticle. The elements that compose this comprehensive bundle were all tested and selected by InsideTx team of experts in microfluidics and nanoparticle synthesis for easy assembly and best results.
Based on pressure-driven flow control - the most advanced flow control solutions for microfluidics - this pack offers the highest level of control of your nanoparticle synthesis conditions.
Combined with 2 flow rate sensors, it provides:
Two versions of the pack are available:
Feel free to contact us to discuss your choice of system!
This herringbone mixer chip was specially designed to synthesize nanoparticles. Both inlets lead to a mixing channel that induces chaotic flows to increase the surface of contact between the aqueous and the organic phases. This chip features multiple designs and is reusable several times if properly cleaned.
All necessary accessories to synthesize nanoparticles are included in this pack: reservoirs, tubings, fittings, air filter, and tubing cutter. See more details in the Content tab.
This LNP Synthesis Pack user guide includes all the information to understand nanoparticles and apprehend their synthesis. When starting from the ground up, it provides all protocols and tips to finely tune your particles, as well as a step-by-step installation manual. Remember that you have access to a team of experts in microfluidics and nanoparticle synthesis. Do not hesitate to contact us if you have any questions!


Schematics of the Regular (left) and the Advanced (right) lipid nanoparticle synthesis packs
| Regular pack | Advanced pack |
|
1x MFS4 flow sensor (ethanol calibration) 1x MFS5 flow sensor (water calibration) |
2x BFS2 flow sensors or 2x BFS3 flow sensors |
| 1x OB1 Mk4 2 channels (0-8 bar) | |
|
2x Reservoirs 1.5 mL Eppendorf 2x Reservoirs 15 mL Falcon 2x Reservoirs 50 mL Falcon |
|
|
2x ChipShop Fluidic 1460 |
|
|
1x Tubing 1/16" OD 1/32” ID (30 m) 1x Tubing 1/32" OD 300 µm ID (20 m) 1x Pneumatic tubing 1x Tubing cutter |
|
|
1x Accessories kit to connect all the components with the tubing 1x Air filter to protect the pressure controller |
|
A pressure source is required to use the OB1 pressure controller (not included in the Lipid Nanoparticle Synthesis Pack).
|
Regular pack |
Advanced pack |
|
|
Achievable size |
50 - 400 nm |
|
|
Homogeneity |
Very high (<0.2) |
|
|
Encapsulation Efficiency1 |
>90% |
|
|
Repeatability |
Good |
Excellent |
|
Flow rate (max TFR) |
8 mL/min |
60 mL/min |
|
Solvent used |
Ethanol |
Any solvent compatible with Zeonor |
|
Automation |
Yes |
|
|
Compatible chip |
Herringbone (Any) |
|
|
Internal volume |
~100μL |
~500μL |
|
Dead volume |
~20μL |
|
|
Achievable volumes |
500 μL to L |
1 mL to L |
1 Value provided for RNA encapsulation into LNP - can change with other compounds.
OB1 Mk4 flow controller - 2 channels 0-8 bar: See full specifications here
MFS flow sensors: See full specifications here
BFS flow sensors: See full specifications here
ChipShop herringbone mixer chip Fluidic 1460: See full specifications here
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