Supported Membranes Meet Flat Fluidics: Monitoring Dynamic Cell Adhesion on Pump-Free Microfluidics Chips Functionalized with Supported Membranes Displaying Mannose Domains
In this paper we demonstrate the combination of supported membranes and so-called flat microfluidics, which enables one to manipulate liquids on flat chip surfaces via “inverse piezoelectric effect”. Here, an alternating external electric field applied to the inter-digital transducers excites a surf...
Main Authors: | , , , , , |
---|---|
Format: | Article |
Language: | English |
Published: |
MDPI AG
2013-02-01
|
Series: | Materials |
Subjects: | |
Online Access: | http://www.mdpi.com/1996-1944/6/2/669 |
id |
doaj-fa5c629d7e884b468279cfb9d705c5b8 |
---|---|
record_format |
Article |
spelling |
doaj-fa5c629d7e884b468279cfb9d705c5b82020-11-25T00:47:51ZengMDPI AGMaterials1996-19442013-02-016266968110.3390/ma6020669Supported Membranes Meet Flat Fluidics: Monitoring Dynamic Cell Adhesion on Pump-Free Microfluidics Chips Functionalized with Supported Membranes Displaying Mannose DomainsMotomu TanakaAchim WixforthZeno GuttenbergJochen OelkeThomas KaindlAndreea PascIn this paper we demonstrate the combination of supported membranes and so-called flat microfluidics, which enables one to manipulate liquids on flat chip surfaces via “inverse piezoelectric effect”. Here, an alternating external electric field applied to the inter-digital transducers excites a surface acoustic wave on a piezoelectric substrate. Employing lithographic patterning of self-assembled monolayers of alkoxysilanes, we successfully confine a free-standing, hemi-cylindrical channel with the volume of merely 7 µL . The experimentally determined maximum flow velocity scales linearly with the acoustic power, suggesting that our current setup can drive liquids at the speed of up to 7 cm/s (corresponding to a shear rate of 280 s−1) without applying high pressures using a fluidic pump. After the establishment of the functionalization of fluidic chip surfaces with supported membranes, we deposited asymmetric supported membranes displaying well-defined mannose domains and monitored the dynamic adhesion of E. Coli HB101 expressing mannose-binding receptors. Despite of the further technical optimization required for the quantitative analysis, the obtained results demonstrate that the combination of supported membranes and flat fluidics opens a large potential to investigate dynamic adhesion of cells on biofunctional membrane surfaces with the minimum amount of samples, without any fluidic pump.http://www.mdpi.com/1996-1944/6/2/669supported membranesurface acoustic waveflatfluidicscell adhesion |
collection |
DOAJ |
language |
English |
format |
Article |
sources |
DOAJ |
author |
Motomu Tanaka Achim Wixforth Zeno Guttenberg Jochen Oelke Thomas Kaindl Andreea Pasc |
spellingShingle |
Motomu Tanaka Achim Wixforth Zeno Guttenberg Jochen Oelke Thomas Kaindl Andreea Pasc Supported Membranes Meet Flat Fluidics: Monitoring Dynamic Cell Adhesion on Pump-Free Microfluidics Chips Functionalized with Supported Membranes Displaying Mannose Domains Materials supported membrane surface acoustic wave flatfluidics cell adhesion |
author_facet |
Motomu Tanaka Achim Wixforth Zeno Guttenberg Jochen Oelke Thomas Kaindl Andreea Pasc |
author_sort |
Motomu Tanaka |
title |
Supported Membranes Meet Flat Fluidics: Monitoring Dynamic Cell Adhesion on Pump-Free Microfluidics Chips Functionalized with Supported Membranes Displaying Mannose Domains |
title_short |
Supported Membranes Meet Flat Fluidics: Monitoring Dynamic Cell Adhesion on Pump-Free Microfluidics Chips Functionalized with Supported Membranes Displaying Mannose Domains |
title_full |
Supported Membranes Meet Flat Fluidics: Monitoring Dynamic Cell Adhesion on Pump-Free Microfluidics Chips Functionalized with Supported Membranes Displaying Mannose Domains |
title_fullStr |
Supported Membranes Meet Flat Fluidics: Monitoring Dynamic Cell Adhesion on Pump-Free Microfluidics Chips Functionalized with Supported Membranes Displaying Mannose Domains |
title_full_unstemmed |
Supported Membranes Meet Flat Fluidics: Monitoring Dynamic Cell Adhesion on Pump-Free Microfluidics Chips Functionalized with Supported Membranes Displaying Mannose Domains |
title_sort |
supported membranes meet flat fluidics: monitoring dynamic cell adhesion on pump-free microfluidics chips functionalized with supported membranes displaying mannose domains |
publisher |
MDPI AG |
series |
Materials |
issn |
1996-1944 |
publishDate |
2013-02-01 |
description |
In this paper we demonstrate the combination of supported membranes and so-called flat microfluidics, which enables one to manipulate liquids on flat chip surfaces via “inverse piezoelectric effect”. Here, an alternating external electric field applied to the inter-digital transducers excites a surface acoustic wave on a piezoelectric substrate. Employing lithographic patterning of self-assembled monolayers of alkoxysilanes, we successfully confine a free-standing, hemi-cylindrical channel with the volume of merely 7 µL . The experimentally determined maximum flow velocity scales linearly with the acoustic power, suggesting that our current setup can drive liquids at the speed of up to 7 cm/s (corresponding to a shear rate of 280 s−1) without applying high pressures using a fluidic pump. After the establishment of the functionalization of fluidic chip surfaces with supported membranes, we deposited asymmetric supported membranes displaying well-defined mannose domains and monitored the dynamic adhesion of E. Coli HB101 expressing mannose-binding receptors. Despite of the further technical optimization required for the quantitative analysis, the obtained results demonstrate that the combination of supported membranes and flat fluidics opens a large potential to investigate dynamic adhesion of cells on biofunctional membrane surfaces with the minimum amount of samples, without any fluidic pump. |
topic |
supported membrane surface acoustic wave flatfluidics cell adhesion |
url |
http://www.mdpi.com/1996-1944/6/2/669 |
work_keys_str_mv |
AT motomutanaka supportedmembranesmeetflatfluidicsmonitoringdynamiccelladhesiononpumpfreemicrofluidicschipsfunctionalizedwithsupportedmembranesdisplayingmannosedomains AT achimwixforth supportedmembranesmeetflatfluidicsmonitoringdynamiccelladhesiononpumpfreemicrofluidicschipsfunctionalizedwithsupportedmembranesdisplayingmannosedomains AT zenoguttenberg supportedmembranesmeetflatfluidicsmonitoringdynamiccelladhesiononpumpfreemicrofluidicschipsfunctionalizedwithsupportedmembranesdisplayingmannosedomains AT jochenoelke supportedmembranesmeetflatfluidicsmonitoringdynamiccelladhesiononpumpfreemicrofluidicschipsfunctionalizedwithsupportedmembranesdisplayingmannosedomains AT thomaskaindl supportedmembranesmeetflatfluidicsmonitoringdynamiccelladhesiononpumpfreemicrofluidicschipsfunctionalizedwithsupportedmembranesdisplayingmannosedomains AT andreeapasc supportedmembranesmeetflatfluidicsmonitoringdynamiccelladhesiononpumpfreemicrofluidicschipsfunctionalizedwithsupportedmembranesdisplayingmannosedomains |
_version_ |
1725258235031584768 |