microfluidic ChipShop
Cross-Flow Membrane Chip - Large membrane interaction area Fluidic 846Delivery and duties paid, now live for the UK — local shopping experience, no surprise fees!
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Support by a team of engineers & PhDs
Support by a team of engineers & PhDs
Support by a team of engineers & PhDs
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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The open chip is designed to allow direct access to membrane areas and provide a permanent entry port for liquid supply, storage and exchange. It features 4 independent membranes. In combination with microfluidic ChipShop’s matching Interaction Tanks like Fluidic 234 and 235 for liquid supply and storage this chip allows for a wide variety of filtering and assay tasks. Interaction tank Fluidic 235 is equipped with a cap that includes Mini Luer fluidic interfaces to be easily connected to pumps for permanent operation.
This Organ-on-a-Chip with a cross-flow membrane allows you to reliably mimic physiological conditions in vitro and study tissue organization, cell-cell interactions, barrier penetration, and physiological responses in a more in vivo-like environment.
Two different and independent culture chambers are available on the same chip. This allows you to perform two experiments in parallel or in series (body-on-a-chip).
The two chambers are designed to develop models of physiological barriers and to ensure an in vivo-like environment under static or dynamic flow conditions. Each chamber indeed has multiple flow inlets and outlets for the perfusion of culture media and testing solutions in both the apical and basolateral compartments.
The chip comes with three options of PET membranes having different pore sizes. Choose between a 0.4 µm, 3µm or an 8 µm porous membrane.
| Cross-flow porous membrane | Upper/Apical compartment | Bottom/Basolateral compartment |
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The upper and the lower compartments are separated by the porous membrane, and they can be perfused with different culture media. A tissue interface can be created to mimic alveolar, stomach, intestine, kidney, liver, brain-blood, skin functions, etc. Tissues inside the chip can be easily observed by microscopy.
Cell culture is just one potential application area of this versatile chip. The design indeed allows other different experiments such as small molecule transfer measurements, on-chip dialysis, and many more.
Maurer M. et al., A three-dimensional immunocompetent intestine-on-chip model as in vitro platform for functional and microbial interaction studies, Biomaterials 2019 (Download)
3D microphysiological model of the human intestine.
In this work, the model displays the physiological immune tolerance of the intestinal lumen to microbial-associated molecular patterns and can, therefore, be colonized with living microorganisms. The authors demonstrate that microbial interactions can be efficiently investigated using this chip creating a more physiological and immunocompetent microenvironment.
Raasch M. et al., Microfluidically supported biochip design for culture of endothelial cell layers with improved perfusion conditions, Biofabrication 2015, 7: 015013 (Download)
The authors investigated cell viability, expression of endothelial markers, and cell adhesion molecules of ECs dynamically cultured under low and high shear stress. This chip allows an effective supply with nutrition medium, discharge of catabolic cell metabolites, and defined application of shear stress to ECs under laminar flow conditions.
They show that ECs cultured in the chip form a tight EC monolayer with increased cellular density and enhanced cell layer thickness compared to static and two-dimensionally perfused cell culture conditions. Endothelial layers in the chip express higher amounts of EC marker proteins von-Willebrand-factor and PECAM-1.
Rennert K. et al., A microfluidically perfused three dimensional human liver model, Biomaterials 2015, 119-131 (Download)
The microfluidically perfused chip enables sufficient nutrition supply and resembles morphological aspects of the human liver sinusoid. It utilizes a suspended membrane as a cell substrate mimicking the space of Disse and the perfusion enhances the formation of hepatocyte microvilli. The authors stated that the perfused liver chip shares relevant morphological and functional characteristics with the human liver and represents a new in vitro research tool to study human hepatocellular physiology at the cellular level under conditions close to the physiological situation.
During culture in the biochip HepaRG cells consistently differentiate into cells exhibiting a hepatocyte phenotype and into cells with biliary epithelial cell phenotype that self-organize into a hepatocyte layer with functional bile ducts.
1x Open Membrane Chip - Direct access to membrane areas Fluidic 219
| SKU | CS-10001070 | CS-10001071 | CS-10001072 | CS-10001069 |
|---|---|---|---|---|
| Design element | Membrane | Membrane | Membrane | Membrane |
| Material | PS | Topas | PS | Topas |
| Material chip body | mcs-PS 17 | Mcs-COC 13 | mcs-PS 17 | Mcs-COC 13 |
| Material chip lid | mcs-foil 075 (PS; 125 µm) | mcs-foil 011 (Topas; 140 µm; Tg 78°C) | mcs-foil 075 (PS; 125 µm) | mcs-foil 011 (Topas; 140 µm; Tg 78°C) |
| Color | Transparent | Transparent | Transparent | Transparent |
| Interface type | Mini Luer interface | Mini Luer interface | Mini Luer interface | Mini Luer interface |
| Surface treatment | Not treated | Hydrophilized | Hydrophilized | Not treated |
| Membrane | mcs-membrane-115 (8 µm pore size; PET) | mcs-membrane 075 (8 µm pore size) | mcs-membrane-115 (8 µm pore size; PET) | mcs-membrane 075 (8 µm pore size) |
Click to read more information about ChipShop chips material properties.
? General handling guide for cross-flow membrane chips (available soon)
? Cross-flow membrane chip with multiple ports Fluidic 653 datasheet
Maurer, M., Gresnigt, M. S., Last, A., Wollny, T., Berlinghof, F., Pospich, R., ... & Mosig, A. S. (2019). A three-dimensional immunocompetent intestine-on-chip model as in vitro platform for functional and microbial interaction studies. Biomaterials,220, 119396. https://doi.org/10.1016/j.biomaterials.2019.119396
Raasch, M., Rennert, K., Jahn, T., Peters, S., Henkel, T., Huber, O., ... & Mosig, A. (2015). Microfluidically supported biochip design for culture of endothelial cell layers with improved perfusion conditions. Biofabrication, 7(1), 015013. doi:10.1088/1758-5090/7/1/015013
Rennert, K., Steinborn, S., Gröger, M., Ungerböck, B., Jank, A. M., Ehgartner, J., Nietzsche, S., Dinger, J., Kiehntopf, M., Funke, H., Peters, F. T., Lupp, A., Gärtner, C., Mayr, T., Bauer, M., Huber, O., & Mosig, A. S. (2015). A microfluidically perfused three dimensional human liver model. Biomaterials, 71, 119–131. https://doi.org/10.1016/j.biomaterials.2015.08.043
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Click to read more information about ChipShop chips material properties.
? Open membrane chip Fluidic 219 datasheet
Maurer, M., Gresnigt, M. S., Last, A., Wollny, T., Berlinghof, F., Pospich, R., ... & Mosig, A. S. (2019). A three-dimensional immunocompetent intestine-on-chip model as in vitro platform for functional and microbial interaction studies. Biomaterials,220, 119396. https://doi.org/10.1016/j.biomaterials.2019.119396
Raasch, M., Rennert, K., Jahn, T., Peters, S., Henkel, T., Huber, O., ... & Mosig, A. (2015). Microfluidically supported biochip design for culture of endothelial cell layers with improved perfusion conditions. Biofabrication, 7(1), 015013. doi:10.1088/1758-5090/7/1/015013
Rennert, K., Steinborn, S., Gröger, M., Ungerböck, B., Jank, A. M., Ehgartner, J., Nietzsche, S., Dinger, J., Kiehntopf, M., Funke, H., Peters, F. T., Lupp, A., Gärtner, C., Mayr, T., Bauer, M., Huber, O., & Mosig, A. S. (2015). A microfluidically perfused three dimensional human liver model. Biomaterials, 71, 119–131. https://doi.org/10.1016/j.biomaterials.2015.08.043
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