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...

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Main Authors: Motomu Tanaka, Achim Wixforth, Zeno Guttenberg, Jochen Oelke, Thomas Kaindl, Andreea Pasc
Format: Article
Language:English
Published: MDPI AG 2013-02-01
Series:Materials
Subjects:
Online Access:http://www.mdpi.com/1996-1944/6/2/669
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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
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