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A low-cost, label-free microfluidic scanning flow cytometer for high-accuracy quantification of size and refractive index of particles

Flow cytometers and fluorescence activated cells sorters (FCM/FACS) represent the gold standard for high-throughput single-cell analysis, but their usefulness for label-free applications is limited by the unreliability of forward and side scatter measurements. Scanning flow cytometers represent an a...

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Autores principales: Reale, Riccardo, Peruzzi, Giovanna, Ghoreishi, Maryamsadat, Stabile, Helena, Ruocco, Giancarlo, Leonetti, Marco
Formato: Online Artículo Texto
Lenguaje:English
Publicado: The Royal Society of Chemistry 2023
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10091359/
https://www.ncbi.nlm.nih.gov/pubmed/36897350
http://dx.doi.org/10.1039/d2lc01179d
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author Reale, Riccardo
Peruzzi, Giovanna
Ghoreishi, Maryamsadat
Stabile, Helena
Ruocco, Giancarlo
Leonetti, Marco
author_facet Reale, Riccardo
Peruzzi, Giovanna
Ghoreishi, Maryamsadat
Stabile, Helena
Ruocco, Giancarlo
Leonetti, Marco
author_sort Reale, Riccardo
collection PubMed
description Flow cytometers and fluorescence activated cells sorters (FCM/FACS) represent the gold standard for high-throughput single-cell analysis, but their usefulness for label-free applications is limited by the unreliability of forward and side scatter measurements. Scanning flow cytometers represent an appealing alternative, as they exploit measurements of the angle-resolved scattered light to provide accurate and quantitative estimates of cellular properties, but the requirements of current setups are unsuitable for integration with other lab-on-chip technologies or for point-of-care applications. Here we present the first microfluidic scanning flow cytometer (μSFC), able to achieve accurate angle-resolved scattering measurements within a standard polydimethylsiloxane microfluidic chip. The system exploits a low cost linearly variable optical density (OD) filter to reduce the dynamic range of the signal and to increase its signal-to-noise ratio. We present a performance comparison between the μSFC and commercial machines for the label free characterization of polymeric beads with different diameters and refractive indices. In contrast to FCM and FACS, the μSFC yields size estimates linearly correlated with nominal particle sizes (R(2) = 0.99) and quantitative estimates of particle refractive indices. The feasibility of using the μSFC for the characterization of biological samples is demonstrated by analyzing a population of monocytes identified based on the morphology of a peripheral blood mononuclear cells sample, which yields values in agreement with the literature. The proposed μSFC combines low setup requirements with high performance, and has great potential for integration within other lab-on-chip systems for multi-parametric cell analysis and for next-generation point-of-care diagnostic applications.
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spelling pubmed-100913592023-04-13 A low-cost, label-free microfluidic scanning flow cytometer for high-accuracy quantification of size and refractive index of particles Reale, Riccardo Peruzzi, Giovanna Ghoreishi, Maryamsadat Stabile, Helena Ruocco, Giancarlo Leonetti, Marco Lab Chip Chemistry Flow cytometers and fluorescence activated cells sorters (FCM/FACS) represent the gold standard for high-throughput single-cell analysis, but their usefulness for label-free applications is limited by the unreliability of forward and side scatter measurements. Scanning flow cytometers represent an appealing alternative, as they exploit measurements of the angle-resolved scattered light to provide accurate and quantitative estimates of cellular properties, but the requirements of current setups are unsuitable for integration with other lab-on-chip technologies or for point-of-care applications. Here we present the first microfluidic scanning flow cytometer (μSFC), able to achieve accurate angle-resolved scattering measurements within a standard polydimethylsiloxane microfluidic chip. The system exploits a low cost linearly variable optical density (OD) filter to reduce the dynamic range of the signal and to increase its signal-to-noise ratio. We present a performance comparison between the μSFC and commercial machines for the label free characterization of polymeric beads with different diameters and refractive indices. In contrast to FCM and FACS, the μSFC yields size estimates linearly correlated with nominal particle sizes (R(2) = 0.99) and quantitative estimates of particle refractive indices. The feasibility of using the μSFC for the characterization of biological samples is demonstrated by analyzing a population of monocytes identified based on the morphology of a peripheral blood mononuclear cells sample, which yields values in agreement with the literature. The proposed μSFC combines low setup requirements with high performance, and has great potential for integration within other lab-on-chip systems for multi-parametric cell analysis and for next-generation point-of-care diagnostic applications. The Royal Society of Chemistry 2023-03-10 /pmc/articles/PMC10091359/ /pubmed/36897350 http://dx.doi.org/10.1039/d2lc01179d Text en This journal is © The Royal Society of Chemistry https://creativecommons.org/licenses/by-nc/3.0/
spellingShingle Chemistry
Reale, Riccardo
Peruzzi, Giovanna
Ghoreishi, Maryamsadat
Stabile, Helena
Ruocco, Giancarlo
Leonetti, Marco
A low-cost, label-free microfluidic scanning flow cytometer for high-accuracy quantification of size and refractive index of particles
title A low-cost, label-free microfluidic scanning flow cytometer for high-accuracy quantification of size and refractive index of particles
title_full A low-cost, label-free microfluidic scanning flow cytometer for high-accuracy quantification of size and refractive index of particles
title_fullStr A low-cost, label-free microfluidic scanning flow cytometer for high-accuracy quantification of size and refractive index of particles
title_full_unstemmed A low-cost, label-free microfluidic scanning flow cytometer for high-accuracy quantification of size and refractive index of particles
title_short A low-cost, label-free microfluidic scanning flow cytometer for high-accuracy quantification of size and refractive index of particles
title_sort low-cost, label-free microfluidic scanning flow cytometer for high-accuracy quantification of size and refractive index of particles
topic Chemistry
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10091359/
https://www.ncbi.nlm.nih.gov/pubmed/36897350
http://dx.doi.org/10.1039/d2lc01179d
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