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Removal of Non-Specifically Bound Proteins Using Rayleigh Waves Generated on ST-Quartz Substrates

Label-free biosensors are plagued by the issue of non-specific protein binding which negatively affects sensing parameters such as sensitivity, selectivity, and limit-of-detection. In the current work, we explore the possibility of using the Rayleigh waves in ST-Quartz devices to efficiently remove...

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Autores principales: Richardson, Mandek, Das, Pradipta K., Morrill, Samuel, Suthar, Kamlesh J., Sankaranarayanan, Subramanian K. R. S., Bhethanabotla, Venkat R.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2022
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9185388/
https://www.ncbi.nlm.nih.gov/pubmed/35684716
http://dx.doi.org/10.3390/s22114096
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author Richardson, Mandek
Das, Pradipta K.
Morrill, Samuel
Suthar, Kamlesh J.
Sankaranarayanan, Subramanian K. R. S.
Bhethanabotla, Venkat R.
author_facet Richardson, Mandek
Das, Pradipta K.
Morrill, Samuel
Suthar, Kamlesh J.
Sankaranarayanan, Subramanian K. R. S.
Bhethanabotla, Venkat R.
author_sort Richardson, Mandek
collection PubMed
description Label-free biosensors are plagued by the issue of non-specific protein binding which negatively affects sensing parameters such as sensitivity, selectivity, and limit-of-detection. In the current work, we explore the possibility of using the Rayleigh waves in ST-Quartz devices to efficiently remove non-specifically bound proteins via acoustic streaming. A coupled-field finite element (FE) fluid structure interaction (FSI) model of a surface acoustic wave (SAW) device based on ST-Quartz substrate in contact with a liquid loading was first used to predict trends in forces related to SAW-induced acoustic streaming. Based on model predictions, it is found that the computed SAW body force is sufficient to overcome adhesive forces between particles and a surface while lift and drag forces prevent reattachment for a range of SAW frequencies. We further performed experiments to validate the model predictions and observe that the excitation of Rayleigh SAWs removed non-specifically bound (NSB) antigens and antibodies from sensing and non-sensing regions, while rinsing and blocking agents were ineffective. An amplified RF signal applied to the device input disrupted the specific interactions between antigens and their capture antibody as well. ST-quartz allows propagation of Rayleigh and leaky SH-SAW waves in orthogonal directions. Thus, the results reported here could allow integration of three important biosensor functions on a single chip, i.e., removal of non-specific binding, mixing, and sensing in the liquid phase.
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spelling pubmed-91853882022-06-11 Removal of Non-Specifically Bound Proteins Using Rayleigh Waves Generated on ST-Quartz Substrates Richardson, Mandek Das, Pradipta K. Morrill, Samuel Suthar, Kamlesh J. Sankaranarayanan, Subramanian K. R. S. Bhethanabotla, Venkat R. Sensors (Basel) Article Label-free biosensors are plagued by the issue of non-specific protein binding which negatively affects sensing parameters such as sensitivity, selectivity, and limit-of-detection. In the current work, we explore the possibility of using the Rayleigh waves in ST-Quartz devices to efficiently remove non-specifically bound proteins via acoustic streaming. A coupled-field finite element (FE) fluid structure interaction (FSI) model of a surface acoustic wave (SAW) device based on ST-Quartz substrate in contact with a liquid loading was first used to predict trends in forces related to SAW-induced acoustic streaming. Based on model predictions, it is found that the computed SAW body force is sufficient to overcome adhesive forces between particles and a surface while lift and drag forces prevent reattachment for a range of SAW frequencies. We further performed experiments to validate the model predictions and observe that the excitation of Rayleigh SAWs removed non-specifically bound (NSB) antigens and antibodies from sensing and non-sensing regions, while rinsing and blocking agents were ineffective. An amplified RF signal applied to the device input disrupted the specific interactions between antigens and their capture antibody as well. ST-quartz allows propagation of Rayleigh and leaky SH-SAW waves in orthogonal directions. Thus, the results reported here could allow integration of three important biosensor functions on a single chip, i.e., removal of non-specific binding, mixing, and sensing in the liquid phase. MDPI 2022-05-28 /pmc/articles/PMC9185388/ /pubmed/35684716 http://dx.doi.org/10.3390/s22114096 Text en © 2022 by the authors. https://creativecommons.org/licenses/by/4.0/Licensee MDPI, Basel, Switzerland. This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution (CC BY) license (https://creativecommons.org/licenses/by/4.0/).
spellingShingle Article
Richardson, Mandek
Das, Pradipta K.
Morrill, Samuel
Suthar, Kamlesh J.
Sankaranarayanan, Subramanian K. R. S.
Bhethanabotla, Venkat R.
Removal of Non-Specifically Bound Proteins Using Rayleigh Waves Generated on ST-Quartz Substrates
title Removal of Non-Specifically Bound Proteins Using Rayleigh Waves Generated on ST-Quartz Substrates
title_full Removal of Non-Specifically Bound Proteins Using Rayleigh Waves Generated on ST-Quartz Substrates
title_fullStr Removal of Non-Specifically Bound Proteins Using Rayleigh Waves Generated on ST-Quartz Substrates
title_full_unstemmed Removal of Non-Specifically Bound Proteins Using Rayleigh Waves Generated on ST-Quartz Substrates
title_short Removal of Non-Specifically Bound Proteins Using Rayleigh Waves Generated on ST-Quartz Substrates
title_sort removal of non-specifically bound proteins using rayleigh waves generated on st-quartz substrates
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9185388/
https://www.ncbi.nlm.nih.gov/pubmed/35684716
http://dx.doi.org/10.3390/s22114096
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