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Ensemble and single-particle level fluorescent fine-tuning of carbon dots via positional changes of amines toward “supervised” oral microbiome sensing

SIGNIFICANCE: Carbon dots (CDs) have attracted a host of research interest in recent years mainly due to their unique photoluminescence (PL) properties that make them applicable in various biomedical areas, such as imaging and image-guided therapy. However, the real mechanism underneath the PL is a...

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Autores principales: Ostadhossein, Fatemeh, Moitra, Parikshit, Alafeef, Maha, Sar, Dinabandhu, D’Souza, Shannon, Benig, Lily F., Nelappana, Michael, Huang, Xuedong, Soares, Julio, Zhang, Kai, Pan, Dipanjan
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Society of Photo-Optical Instrumentation Engineers 2023
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10324603/
https://www.ncbi.nlm.nih.gov/pubmed/37427335
http://dx.doi.org/10.1117/1.JBO.28.8.082807
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author Ostadhossein, Fatemeh
Moitra, Parikshit
Alafeef, Maha
Sar, Dinabandhu
D’Souza, Shannon
Benig, Lily F.
Nelappana, Michael
Huang, Xuedong
Soares, Julio
Zhang, Kai
Pan, Dipanjan
author_facet Ostadhossein, Fatemeh
Moitra, Parikshit
Alafeef, Maha
Sar, Dinabandhu
D’Souza, Shannon
Benig, Lily F.
Nelappana, Michael
Huang, Xuedong
Soares, Julio
Zhang, Kai
Pan, Dipanjan
author_sort Ostadhossein, Fatemeh
collection PubMed
description SIGNIFICANCE: Carbon dots (CDs) have attracted a host of research interest in recent years mainly due to their unique photoluminescence (PL) properties that make them applicable in various biomedical areas, such as imaging and image-guided therapy. However, the real mechanism underneath the PL is a subject of wide controversy and can be investigated from various angles. AIM: Our work investigates the effect of the isomeric nitrogen position as the precursor in the synthesis of CDs by shedding light on their photophysical properties on the single particles and ensemble level. APPROACH: To this end, we adopted five isomers of diaminopyridine (DAP) and urea as the precursors and obtained CDs during a hydrothermal process. The various photophysical properties were further investigated in depth by mass spectroscopy. CD molecular frontier orbital analyses aided us in justifying the fluorescence emission profile on the bulk level as well as the charge transfer processes. As a result of the varying fluorescent responses, we indicate that these particles can be utilized for machine learning (ML)-driven sensitive detection of oral microbiota. The sensing results were further supported by density functional theoretical calculations and docking studies. RESULTS: The generating isomers have a significant effect on the overall photophysical properties at the bulk/ensembled level. On the single-particle level, although some of the photophysical properties such as average intensity remained the same, the overall differences in brightness, photo-blinking frequency, and bleaching time between the five samples were conceived. The various photophysical properties could be explained based on the different chromophores formed during the synthesis. Overall, an array of CDs was demonstrated herein to achieve [Formula: see text] separation efficacy in segregating a mixed oral microbiome culture in a rapid ([Formula: see text]), high-throughput manner with superior accuracy. CONCLUSIONS: We have indicated that the PL properties of CDs can be regulated by the precursors’ isomeric position of nitrogen. We emancipated this difference in a rapid method relying on ML algorithms to segregate the dental bacterial species as biosensors.
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spelling pubmed-103246032023-07-07 Ensemble and single-particle level fluorescent fine-tuning of carbon dots via positional changes of amines toward “supervised” oral microbiome sensing Ostadhossein, Fatemeh Moitra, Parikshit Alafeef, Maha Sar, Dinabandhu D’Souza, Shannon Benig, Lily F. Nelappana, Michael Huang, Xuedong Soares, Julio Zhang, Kai Pan, Dipanjan J Biomed Opt Special Section on Seeing Inside Tissue with Optical Molecular Probes SIGNIFICANCE: Carbon dots (CDs) have attracted a host of research interest in recent years mainly due to their unique photoluminescence (PL) properties that make them applicable in various biomedical areas, such as imaging and image-guided therapy. However, the real mechanism underneath the PL is a subject of wide controversy and can be investigated from various angles. AIM: Our work investigates the effect of the isomeric nitrogen position as the precursor in the synthesis of CDs by shedding light on their photophysical properties on the single particles and ensemble level. APPROACH: To this end, we adopted five isomers of diaminopyridine (DAP) and urea as the precursors and obtained CDs during a hydrothermal process. The various photophysical properties were further investigated in depth by mass spectroscopy. CD molecular frontier orbital analyses aided us in justifying the fluorescence emission profile on the bulk level as well as the charge transfer processes. As a result of the varying fluorescent responses, we indicate that these particles can be utilized for machine learning (ML)-driven sensitive detection of oral microbiota. The sensing results were further supported by density functional theoretical calculations and docking studies. RESULTS: The generating isomers have a significant effect on the overall photophysical properties at the bulk/ensembled level. On the single-particle level, although some of the photophysical properties such as average intensity remained the same, the overall differences in brightness, photo-blinking frequency, and bleaching time between the five samples were conceived. The various photophysical properties could be explained based on the different chromophores formed during the synthesis. Overall, an array of CDs was demonstrated herein to achieve [Formula: see text] separation efficacy in segregating a mixed oral microbiome culture in a rapid ([Formula: see text]), high-throughput manner with superior accuracy. CONCLUSIONS: We have indicated that the PL properties of CDs can be regulated by the precursors’ isomeric position of nitrogen. We emancipated this difference in a rapid method relying on ML algorithms to segregate the dental bacterial species as biosensors. Society of Photo-Optical Instrumentation Engineers 2023-07-06 2023-08 /pmc/articles/PMC10324603/ /pubmed/37427335 http://dx.doi.org/10.1117/1.JBO.28.8.082807 Text en © 2023 The Authors https://creativecommons.org/licenses/by/4.0/Published by SPIE under a Creative Commons Attribution 4.0 International License. Distribution or reproduction of this work in whole or in part requires full attribution of the original publication, including its DOI.
spellingShingle Special Section on Seeing Inside Tissue with Optical Molecular Probes
Ostadhossein, Fatemeh
Moitra, Parikshit
Alafeef, Maha
Sar, Dinabandhu
D’Souza, Shannon
Benig, Lily F.
Nelappana, Michael
Huang, Xuedong
Soares, Julio
Zhang, Kai
Pan, Dipanjan
Ensemble and single-particle level fluorescent fine-tuning of carbon dots via positional changes of amines toward “supervised” oral microbiome sensing
title Ensemble and single-particle level fluorescent fine-tuning of carbon dots via positional changes of amines toward “supervised” oral microbiome sensing
title_full Ensemble and single-particle level fluorescent fine-tuning of carbon dots via positional changes of amines toward “supervised” oral microbiome sensing
title_fullStr Ensemble and single-particle level fluorescent fine-tuning of carbon dots via positional changes of amines toward “supervised” oral microbiome sensing
title_full_unstemmed Ensemble and single-particle level fluorescent fine-tuning of carbon dots via positional changes of amines toward “supervised” oral microbiome sensing
title_short Ensemble and single-particle level fluorescent fine-tuning of carbon dots via positional changes of amines toward “supervised” oral microbiome sensing
title_sort ensemble and single-particle level fluorescent fine-tuning of carbon dots via positional changes of amines toward “supervised” oral microbiome sensing
topic Special Section on Seeing Inside Tissue with Optical Molecular Probes
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10324603/
https://www.ncbi.nlm.nih.gov/pubmed/37427335
http://dx.doi.org/10.1117/1.JBO.28.8.082807
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