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Cell membrane array fabrication and assay technology

BACKGROUND: Microarray technology has been used extensively over the past 10 years for assessing gene expression, and has facilitated precise genetic profiling of everything from tumors to small molecule drugs. By contrast, arraying cell membranes in a manner which preserves their ability to mediate...

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Autores principales: Yamazaki, Victoria, Sirenko, Oksana, Schafer, Robert J, Nguyen, Luat, Gutsmann, Thomas, Brade, Lore, Groves, Jay T
Formato: Texto
Lenguaje:English
Publicado: BioMed Central 2005
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC1177928/
https://www.ncbi.nlm.nih.gov/pubmed/15960850
http://dx.doi.org/10.1186/1472-6750-5-18
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author Yamazaki, Victoria
Sirenko, Oksana
Schafer, Robert J
Nguyen, Luat
Gutsmann, Thomas
Brade, Lore
Groves, Jay T
author_facet Yamazaki, Victoria
Sirenko, Oksana
Schafer, Robert J
Nguyen, Luat
Gutsmann, Thomas
Brade, Lore
Groves, Jay T
author_sort Yamazaki, Victoria
collection PubMed
description BACKGROUND: Microarray technology has been used extensively over the past 10 years for assessing gene expression, and has facilitated precise genetic profiling of everything from tumors to small molecule drugs. By contrast, arraying cell membranes in a manner which preserves their ability to mediate biochemical processes has been considerably more difficult. RESULTS: In this article, we describe a novel technology for generating cell membrane microarrays for performing high throughput biology. Our robotically-arrayed supported membranes are physiologically fluid, a critical property which differentiates this technology from other previous membrane systems and makes it useful for studying cellular processes on an industrialized scale. Membrane array elements consist of a solid substrate, above which resides a fluid supported lipid bilayer containing biologically-active molecules of interest. Incorporation of transmembrane proteins into the arrayed membranes enables the study of ligand/receptor binding, as well as interactions with live intact cells. The fluidity of these molecules in the planar lipid bilayer facilitates dimerization and other higher order interactions necessary for biological signaling events. In order to demonstrate the utility of our fluid membrane array technology to ligand/receptor studies, we investigated the multivalent binding of the cholera toxin B-subunit (CTB) to the membrane ganglioside GM(1). We have also displayed a number of bona fide drug targets, including bacterial endotoxin (also referred to as lipopolysaccharide (LPS)) and membrane proteins important in T cell activation. CONCLUSION: We have demonstrated the applicability of our fluid cell membrane array technology to both academic research applications and industrial drug discovery. Our technology facilitates the study of ligand/receptor interactions and cell-cell signaling, providing rich qualitative and quantitative information.
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spelling pubmed-11779282005-07-21 Cell membrane array fabrication and assay technology Yamazaki, Victoria Sirenko, Oksana Schafer, Robert J Nguyen, Luat Gutsmann, Thomas Brade, Lore Groves, Jay T BMC Biotechnol Methodology Article BACKGROUND: Microarray technology has been used extensively over the past 10 years for assessing gene expression, and has facilitated precise genetic profiling of everything from tumors to small molecule drugs. By contrast, arraying cell membranes in a manner which preserves their ability to mediate biochemical processes has been considerably more difficult. RESULTS: In this article, we describe a novel technology for generating cell membrane microarrays for performing high throughput biology. Our robotically-arrayed supported membranes are physiologically fluid, a critical property which differentiates this technology from other previous membrane systems and makes it useful for studying cellular processes on an industrialized scale. Membrane array elements consist of a solid substrate, above which resides a fluid supported lipid bilayer containing biologically-active molecules of interest. Incorporation of transmembrane proteins into the arrayed membranes enables the study of ligand/receptor binding, as well as interactions with live intact cells. The fluidity of these molecules in the planar lipid bilayer facilitates dimerization and other higher order interactions necessary for biological signaling events. In order to demonstrate the utility of our fluid membrane array technology to ligand/receptor studies, we investigated the multivalent binding of the cholera toxin B-subunit (CTB) to the membrane ganglioside GM(1). We have also displayed a number of bona fide drug targets, including bacterial endotoxin (also referred to as lipopolysaccharide (LPS)) and membrane proteins important in T cell activation. CONCLUSION: We have demonstrated the applicability of our fluid cell membrane array technology to both academic research applications and industrial drug discovery. Our technology facilitates the study of ligand/receptor interactions and cell-cell signaling, providing rich qualitative and quantitative information. BioMed Central 2005-06-16 /pmc/articles/PMC1177928/ /pubmed/15960850 http://dx.doi.org/10.1186/1472-6750-5-18 Text en Copyright © 2005 Yamazaki et al; licensee BioMed Central Ltd.
spellingShingle Methodology Article
Yamazaki, Victoria
Sirenko, Oksana
Schafer, Robert J
Nguyen, Luat
Gutsmann, Thomas
Brade, Lore
Groves, Jay T
Cell membrane array fabrication and assay technology
title Cell membrane array fabrication and assay technology
title_full Cell membrane array fabrication and assay technology
title_fullStr Cell membrane array fabrication and assay technology
title_full_unstemmed Cell membrane array fabrication and assay technology
title_short Cell membrane array fabrication and assay technology
title_sort cell membrane array fabrication and assay technology
topic Methodology Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC1177928/
https://www.ncbi.nlm.nih.gov/pubmed/15960850
http://dx.doi.org/10.1186/1472-6750-5-18
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