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Biomimetic Bacterial Identification Platform Based on Thermal Wave Transport Analysis (TWTA) through Surface-Imprinted Polymers

[Image: see text] This paper introduces a novel bacterial identification assay based on thermal wave analysis through surface-imprinted polymers (SIPs). Aluminum chips are coated with SIPs, serving as synthetic cell receptors that have been combined previously with the heat-transfer method (HTM) for...

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Autores principales: Steen Redeker, Erik, Eersels, Kasper, Akkermans, Onno, Royakkers, Jeroen, Dyson, Simba, Nurekeyeva, Kunya, Ferrando, Beniamino, Cornelis, Peter, Peeters, Marloes, Wagner, Patrick, Diliën, Hanne, van Grinsven, Bart, Cleij, Thomas Jan
Formato: Online Artículo Texto
Lenguaje:English
Publicado: American Chemical Society 2017
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5432958/
https://www.ncbi.nlm.nih.gov/pubmed/28388095
http://dx.doi.org/10.1021/acsinfecdis.7b00037
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author Steen Redeker, Erik
Eersels, Kasper
Akkermans, Onno
Royakkers, Jeroen
Dyson, Simba
Nurekeyeva, Kunya
Ferrando, Beniamino
Cornelis, Peter
Peeters, Marloes
Wagner, Patrick
Diliën, Hanne
van Grinsven, Bart
Cleij, Thomas Jan
author_facet Steen Redeker, Erik
Eersels, Kasper
Akkermans, Onno
Royakkers, Jeroen
Dyson, Simba
Nurekeyeva, Kunya
Ferrando, Beniamino
Cornelis, Peter
Peeters, Marloes
Wagner, Patrick
Diliën, Hanne
van Grinsven, Bart
Cleij, Thomas Jan
author_sort Steen Redeker, Erik
collection PubMed
description [Image: see text] This paper introduces a novel bacterial identification assay based on thermal wave analysis through surface-imprinted polymers (SIPs). Aluminum chips are coated with SIPs, serving as synthetic cell receptors that have been combined previously with the heat-transfer method (HTM) for the selective detection of bacteria. In this work, the concept of bacterial identification is extended toward the detection of nine different bacterial species. In addition, a novel sensing approach, thermal wave transport analysis (TWTA), is introduced, which analyzes the propagation of a thermal wave through a functional interface. The results presented here demonstrate that bacterial rebinding to the SIP layer resulted in a measurable phase shift in the propagated wave, which is most pronounced at a frequency of 0.03 Hz. In this way, the sensor is able to selectively distinguish between the different bacterial species used in this study. Furthermore, a dose–response curve was constructed to determine a limit of detection of 1 × 10(4) CFU mL(–1), indicating that TWTA is advantageous over HTM in terms of sensitivity and response time. Additionally, the limit of selectivity of the sensor was tested in a mixed bacterial solution, containing the target species in the presence of a 99-fold excess of competitor species. Finally, a first application for the sensor in terms of infection diagnosis is presented, revealing that the platform is able to detect bacteria in clinically relevant concentrations as low as 3 × 10(4) CFU mL(–1) in spiked urine samples.
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spelling pubmed-54329582017-05-17 Biomimetic Bacterial Identification Platform Based on Thermal Wave Transport Analysis (TWTA) through Surface-Imprinted Polymers Steen Redeker, Erik Eersels, Kasper Akkermans, Onno Royakkers, Jeroen Dyson, Simba Nurekeyeva, Kunya Ferrando, Beniamino Cornelis, Peter Peeters, Marloes Wagner, Patrick Diliën, Hanne van Grinsven, Bart Cleij, Thomas Jan ACS Infect Dis [Image: see text] This paper introduces a novel bacterial identification assay based on thermal wave analysis through surface-imprinted polymers (SIPs). Aluminum chips are coated with SIPs, serving as synthetic cell receptors that have been combined previously with the heat-transfer method (HTM) for the selective detection of bacteria. In this work, the concept of bacterial identification is extended toward the detection of nine different bacterial species. In addition, a novel sensing approach, thermal wave transport analysis (TWTA), is introduced, which analyzes the propagation of a thermal wave through a functional interface. The results presented here demonstrate that bacterial rebinding to the SIP layer resulted in a measurable phase shift in the propagated wave, which is most pronounced at a frequency of 0.03 Hz. In this way, the sensor is able to selectively distinguish between the different bacterial species used in this study. Furthermore, a dose–response curve was constructed to determine a limit of detection of 1 × 10(4) CFU mL(–1), indicating that TWTA is advantageous over HTM in terms of sensitivity and response time. Additionally, the limit of selectivity of the sensor was tested in a mixed bacterial solution, containing the target species in the presence of a 99-fold excess of competitor species. Finally, a first application for the sensor in terms of infection diagnosis is presented, revealing that the platform is able to detect bacteria in clinically relevant concentrations as low as 3 × 10(4) CFU mL(–1) in spiked urine samples. American Chemical Society 2017-04-07 2017-05-12 /pmc/articles/PMC5432958/ /pubmed/28388095 http://dx.doi.org/10.1021/acsinfecdis.7b00037 Text en Copyright © 2017 American Chemical Society This is an open access article published under a Creative Commons Non-Commercial No Derivative Works (CC-BY-NC-ND) Attribution License (http://pubs.acs.org/page/policy/authorchoice_ccbyncnd_termsofuse.html) , which permits copying and redistribution of the article, and creation of adaptations, all for non-commercial purposes.
spellingShingle Steen Redeker, Erik
Eersels, Kasper
Akkermans, Onno
Royakkers, Jeroen
Dyson, Simba
Nurekeyeva, Kunya
Ferrando, Beniamino
Cornelis, Peter
Peeters, Marloes
Wagner, Patrick
Diliën, Hanne
van Grinsven, Bart
Cleij, Thomas Jan
Biomimetic Bacterial Identification Platform Based on Thermal Wave Transport Analysis (TWTA) through Surface-Imprinted Polymers
title Biomimetic Bacterial Identification Platform Based on Thermal Wave Transport Analysis (TWTA) through Surface-Imprinted Polymers
title_full Biomimetic Bacterial Identification Platform Based on Thermal Wave Transport Analysis (TWTA) through Surface-Imprinted Polymers
title_fullStr Biomimetic Bacterial Identification Platform Based on Thermal Wave Transport Analysis (TWTA) through Surface-Imprinted Polymers
title_full_unstemmed Biomimetic Bacterial Identification Platform Based on Thermal Wave Transport Analysis (TWTA) through Surface-Imprinted Polymers
title_short Biomimetic Bacterial Identification Platform Based on Thermal Wave Transport Analysis (TWTA) through Surface-Imprinted Polymers
title_sort biomimetic bacterial identification platform based on thermal wave transport analysis (twta) through surface-imprinted polymers
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5432958/
https://www.ncbi.nlm.nih.gov/pubmed/28388095
http://dx.doi.org/10.1021/acsinfecdis.7b00037
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