Optimization Synthesis and Biosensing Performance of an Acrylate-Based Hydrogel as an Optical Waveguiding Sensing Film

The metal-clad leaky waveguide (MCLW) is an optical biosensor consisting of a metal layer and a low index waveguide layer on a glass substrate. This label-free sensor measures refractive index (RI) changes within the waveguide layer. This work shows the development and optimization of acrylate based...

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Published in:Analytical Chemistry
Main Author: 2-s2.0-85097643912
Format: Article
Language:English
Published: American Chemical Society 2020
Online Access:https://www.scopus.com/inward/record.uri?eid=2-s2.0-85097643912&doi=10.1021%2facs.analchem.0c00586&partnerID=40&md5=fd211b4f0fcce60dbd5e80807a08b318
id Makhsin S.R.; Goddard N.J.; Gupta R.; Gardner P.; Scully P.J.
spelling Makhsin S.R.; Goddard N.J.; Gupta R.; Gardner P.; Scully P.J.
2-s2.0-85097643912
Optimization Synthesis and Biosensing Performance of an Acrylate-Based Hydrogel as an Optical Waveguiding Sensing Film
2020
Analytical Chemistry
92
22
10.1021/acs.analchem.0c00586
https://www.scopus.com/inward/record.uri?eid=2-s2.0-85097643912&doi=10.1021%2facs.analchem.0c00586&partnerID=40&md5=fd211b4f0fcce60dbd5e80807a08b318
The metal-clad leaky waveguide (MCLW) is an optical biosensor consisting of a metal layer and a low index waveguide layer on a glass substrate. This label-free sensor measures refractive index (RI) changes within the waveguide layer. This work shows the development and optimization of acrylate based-hydrogel as the waveguide layer formed from PEG diacrylate (PEGDA, Mn700), PEG methyl ether acrylate (PEGMEA, Mn480), and acrylate-PEG2000-NHS fabricated on a substrate coated with 9.5 nm of titanium. The acrylate-based hydrogel is a synthetic polymer, so properties such as optical transparency, porosity, and hydrogel functionalization by a well-controlled reactive group can be tailored for immobilization of the bioreceptor within the hydrogel matrix. The waveguide sensor demonstrated an equal response to solutions of identical RI containing small (glycerol) and large (bovine serum albumin; BSA) analyte molecules, indicating that the hydrogel waveguide film is highly porous to both sizes of molecule, thus potentially allowing penetration of a range of analytes within the porous matrix. The final optimized MCLW chip was formed from a total hydrogel concentration of 40% v/v of PEGMEA-PEGDA (Mn700), functionalized with 2.5% v/v of acrylate-PEG2000-NHS. The sensor generated a single-moded waveguide signal with a RI sensitivity of 128.61 ± 0.15° RIU-1and limit of detection obtained at 2.2 × 10-6RIU with excellent signal-to-noise ratio for the glycerol detection. The sensor demonstrated RI detection by monitoring changes in the out-coupled angle resulting from successful binding of d-biotin to streptavidin immobilized on functionalized acrylate hydrogel, generating a binding signal of (12.379 ± 0.452) × 10-3°. © 2020 American Chemical Society. All rights reserved.
American Chemical Society
32700
English
Article

author 2-s2.0-85097643912
spellingShingle 2-s2.0-85097643912
Optimization Synthesis and Biosensing Performance of an Acrylate-Based Hydrogel as an Optical Waveguiding Sensing Film
author_facet 2-s2.0-85097643912
author_sort 2-s2.0-85097643912
title Optimization Synthesis and Biosensing Performance of an Acrylate-Based Hydrogel as an Optical Waveguiding Sensing Film
title_short Optimization Synthesis and Biosensing Performance of an Acrylate-Based Hydrogel as an Optical Waveguiding Sensing Film
title_full Optimization Synthesis and Biosensing Performance of an Acrylate-Based Hydrogel as an Optical Waveguiding Sensing Film
title_fullStr Optimization Synthesis and Biosensing Performance of an Acrylate-Based Hydrogel as an Optical Waveguiding Sensing Film
title_full_unstemmed Optimization Synthesis and Biosensing Performance of an Acrylate-Based Hydrogel as an Optical Waveguiding Sensing Film
title_sort Optimization Synthesis and Biosensing Performance of an Acrylate-Based Hydrogel as an Optical Waveguiding Sensing Film
publishDate 2020
container_title Analytical Chemistry
container_volume 92
container_issue 22
doi_str_mv 10.1021/acs.analchem.0c00586
url https://www.scopus.com/inward/record.uri?eid=2-s2.0-85097643912&doi=10.1021%2facs.analchem.0c00586&partnerID=40&md5=fd211b4f0fcce60dbd5e80807a08b318
description The metal-clad leaky waveguide (MCLW) is an optical biosensor consisting of a metal layer and a low index waveguide layer on a glass substrate. This label-free sensor measures refractive index (RI) changes within the waveguide layer. This work shows the development and optimization of acrylate based-hydrogel as the waveguide layer formed from PEG diacrylate (PEGDA, Mn700), PEG methyl ether acrylate (PEGMEA, Mn480), and acrylate-PEG2000-NHS fabricated on a substrate coated with 9.5 nm of titanium. The acrylate-based hydrogel is a synthetic polymer, so properties such as optical transparency, porosity, and hydrogel functionalization by a well-controlled reactive group can be tailored for immobilization of the bioreceptor within the hydrogel matrix. The waveguide sensor demonstrated an equal response to solutions of identical RI containing small (glycerol) and large (bovine serum albumin; BSA) analyte molecules, indicating that the hydrogel waveguide film is highly porous to both sizes of molecule, thus potentially allowing penetration of a range of analytes within the porous matrix. The final optimized MCLW chip was formed from a total hydrogel concentration of 40% v/v of PEGMEA-PEGDA (Mn700), functionalized with 2.5% v/v of acrylate-PEG2000-NHS. The sensor generated a single-moded waveguide signal with a RI sensitivity of 128.61 ± 0.15° RIU-1and limit of detection obtained at 2.2 × 10-6RIU with excellent signal-to-noise ratio for the glycerol detection. The sensor demonstrated RI detection by monitoring changes in the out-coupled angle resulting from successful binding of d-biotin to streptavidin immobilized on functionalized acrylate hydrogel, generating a binding signal of (12.379 ± 0.452) × 10-3°. © 2020 American Chemical Society. All rights reserved.
publisher American Chemical Society
issn 32700
language English
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