Cargando…

Dependence of cancer cell adhesion kinetics on integrin ligand surface density measured by a high-throughput label-free resonant waveguide grating biosensor

A novel high-throughput label-free resonant waveguide grating (RWG) imager biosensor, the Epic® BenchTop (BT), was utilized to determine the dependence of cell spreading kinetics on the average surface density (v(RGD)) of integrin ligand RGD-motifs. v(RGD) was tuned over four orders of magnitude by...

Descripción completa

Detalles Bibliográficos
Autores principales: Orgovan, Norbert, Peter, Beatrix, Bősze, Szilvia, Ramsden, Jeremy J., Szabó, Bálint, Horvath, Robert
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Nature Publishing Group 2014
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3916899/
https://www.ncbi.nlm.nih.gov/pubmed/24503534
http://dx.doi.org/10.1038/srep04034
_version_ 1782302780462989312
author Orgovan, Norbert
Peter, Beatrix
Bősze, Szilvia
Ramsden, Jeremy J.
Szabó, Bálint
Horvath, Robert
author_facet Orgovan, Norbert
Peter, Beatrix
Bősze, Szilvia
Ramsden, Jeremy J.
Szabó, Bálint
Horvath, Robert
author_sort Orgovan, Norbert
collection PubMed
description A novel high-throughput label-free resonant waveguide grating (RWG) imager biosensor, the Epic® BenchTop (BT), was utilized to determine the dependence of cell spreading kinetics on the average surface density (v(RGD)) of integrin ligand RGD-motifs. v(RGD) was tuned over four orders of magnitude by co-adsorbing the biologically inactive PLL-g-PEG and the RGD-functionalized PLL-g-PEG-RGD synthetic copolymers from their mixed solutions onto the sensor surface. Using highly adherent human cervical tumor (HeLa) cells as a model system, cell adhesion kinetic data of unprecedented quality were obtained. Spreading kinetics were fitted with the logistic equation to obtain the spreading rate constant (r) and the maximum biosensor response (Δλ(max)), which is assumed to be directly proportional to the maximum spread contact area (A(max)). r was found to be independent of the surface density of integrin ligands. In contrast, Δλ(max) increased with increasing RGD surface density until saturation at high densities. Interpreting the latter behavior with a simple kinetic mass action model, a 2D dissociation constant of 1753 ± 243 μm(−2) (corresponding to a 3D dissociation constant of ~30 μM) was obtained for the binding between RGD-specific integrins embedded in the cell membrane and PLL-g-PEG-RGD. All of these results were obtained completely noninvasively without using any labels.
format Online
Article
Text
id pubmed-3916899
institution National Center for Biotechnology Information
language English
publishDate 2014
publisher Nature Publishing Group
record_format MEDLINE/PubMed
spelling pubmed-39168992014-02-07 Dependence of cancer cell adhesion kinetics on integrin ligand surface density measured by a high-throughput label-free resonant waveguide grating biosensor Orgovan, Norbert Peter, Beatrix Bősze, Szilvia Ramsden, Jeremy J. Szabó, Bálint Horvath, Robert Sci Rep Article A novel high-throughput label-free resonant waveguide grating (RWG) imager biosensor, the Epic® BenchTop (BT), was utilized to determine the dependence of cell spreading kinetics on the average surface density (v(RGD)) of integrin ligand RGD-motifs. v(RGD) was tuned over four orders of magnitude by co-adsorbing the biologically inactive PLL-g-PEG and the RGD-functionalized PLL-g-PEG-RGD synthetic copolymers from their mixed solutions onto the sensor surface. Using highly adherent human cervical tumor (HeLa) cells as a model system, cell adhesion kinetic data of unprecedented quality were obtained. Spreading kinetics were fitted with the logistic equation to obtain the spreading rate constant (r) and the maximum biosensor response (Δλ(max)), which is assumed to be directly proportional to the maximum spread contact area (A(max)). r was found to be independent of the surface density of integrin ligands. In contrast, Δλ(max) increased with increasing RGD surface density until saturation at high densities. Interpreting the latter behavior with a simple kinetic mass action model, a 2D dissociation constant of 1753 ± 243 μm(−2) (corresponding to a 3D dissociation constant of ~30 μM) was obtained for the binding between RGD-specific integrins embedded in the cell membrane and PLL-g-PEG-RGD. All of these results were obtained completely noninvasively without using any labels. Nature Publishing Group 2014-02-07 /pmc/articles/PMC3916899/ /pubmed/24503534 http://dx.doi.org/10.1038/srep04034 Text en Copyright © 2014, Macmillan Publishers Limited. All rights reserved http://creativecommons.org/licenses/by-nc-nd/3.0/ This work is licensed under a Creative Commons Attribution-NonCommercial-NoDerivs 3.0 Unported License. To view a copy of this license, visit http://creativecommons.org/licenses/by-nc-nd/3.0/
spellingShingle Article
Orgovan, Norbert
Peter, Beatrix
Bősze, Szilvia
Ramsden, Jeremy J.
Szabó, Bálint
Horvath, Robert
Dependence of cancer cell adhesion kinetics on integrin ligand surface density measured by a high-throughput label-free resonant waveguide grating biosensor
title Dependence of cancer cell adhesion kinetics on integrin ligand surface density measured by a high-throughput label-free resonant waveguide grating biosensor
title_full Dependence of cancer cell adhesion kinetics on integrin ligand surface density measured by a high-throughput label-free resonant waveguide grating biosensor
title_fullStr Dependence of cancer cell adhesion kinetics on integrin ligand surface density measured by a high-throughput label-free resonant waveguide grating biosensor
title_full_unstemmed Dependence of cancer cell adhesion kinetics on integrin ligand surface density measured by a high-throughput label-free resonant waveguide grating biosensor
title_short Dependence of cancer cell adhesion kinetics on integrin ligand surface density measured by a high-throughput label-free resonant waveguide grating biosensor
title_sort dependence of cancer cell adhesion kinetics on integrin ligand surface density measured by a high-throughput label-free resonant waveguide grating biosensor
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3916899/
https://www.ncbi.nlm.nih.gov/pubmed/24503534
http://dx.doi.org/10.1038/srep04034
work_keys_str_mv AT orgovannorbert dependenceofcancercelladhesionkineticsonintegrinligandsurfacedensitymeasuredbyahighthroughputlabelfreeresonantwaveguidegratingbiosensor
AT peterbeatrix dependenceofcancercelladhesionkineticsonintegrinligandsurfacedensitymeasuredbyahighthroughputlabelfreeresonantwaveguidegratingbiosensor
AT boszeszilvia dependenceofcancercelladhesionkineticsonintegrinligandsurfacedensitymeasuredbyahighthroughputlabelfreeresonantwaveguidegratingbiosensor
AT ramsdenjeremyj dependenceofcancercelladhesionkineticsonintegrinligandsurfacedensitymeasuredbyahighthroughputlabelfreeresonantwaveguidegratingbiosensor
AT szabobalint dependenceofcancercelladhesionkineticsonintegrinligandsurfacedensitymeasuredbyahighthroughputlabelfreeresonantwaveguidegratingbiosensor
AT horvathrobert dependenceofcancercelladhesionkineticsonintegrinligandsurfacedensitymeasuredbyahighthroughputlabelfreeresonantwaveguidegratingbiosensor