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Adaptive optics microspectrometer for cross-correlation measurement of microfluidic flows

Mapping flows in vivo is essential for the investigation of cardiovascular pathologies in animal models. The limitation of optical-based methods, such as space-time cross correlation, is the scattering of light by the connective and fat components and the direct wave front distortion by large inhomo...

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Autores principales: Collini, Maddalena, Radaelli, Fabrizio, Sironi, Laura, Ceffa, Nicolo G., D’Alfonso, Laura, Bouzin, Margaux, Chirico, Giuseppe
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Society of Photo-Optical Instrumentation Engineers 2019
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6987636/
https://www.ncbi.nlm.nih.gov/pubmed/30816029
http://dx.doi.org/10.1117/1.JBO.24.2.025004
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author Collini, Maddalena
Radaelli, Fabrizio
Sironi, Laura
Ceffa, Nicolo G.
D’Alfonso, Laura
Bouzin, Margaux
Chirico, Giuseppe
author_facet Collini, Maddalena
Radaelli, Fabrizio
Sironi, Laura
Ceffa, Nicolo G.
D’Alfonso, Laura
Bouzin, Margaux
Chirico, Giuseppe
author_sort Collini, Maddalena
collection PubMed
description Mapping flows in vivo is essential for the investigation of cardiovascular pathologies in animal models. The limitation of optical-based methods, such as space-time cross correlation, is the scattering of light by the connective and fat components and the direct wave front distortion by large inhomogeneities in the tissue. Nonlinear excitation of the sample fluorescence helps us by reducing light scattering in excitation. However, there is still a limitation on the signal-background due to the wave front distortion. We develop a diffractive optical microscope based on a single spatial light modulator (SLM) with no movable parts. We combine the correction of wave front distortions to the cross-correlation analysis of the flow dynamics. We use the SLM to shine arbitrary patterns of spots on the sample, to correct their optical aberrations, to shift the aberration corrected spot array on the sample for the collection of fluorescence images, and to measure flow velocities from the cross-correlation functions computed between couples of spots. The setup and the algorithms are tested on various microfluidic devices. By applying the adaptive optics correction algorithm, it is possible to increase up to 5 times the signal-to-background ratio and to reduce approximately of the same ratio the uncertainty of the flow speed measurement. By working on grids of spots, we can correct different aberrations in different portions of the field of view, a feature that allows for anisoplanatic aberrations correction. Finally, being more efficient in the excitation, we increase the accuracy of the speed measurement by employing a larger number of spots in the grid despite the fact that the two-photon excitation efficiency scales as the fourth power of this number: we achieve a twofold decrease of the uncertainty and a threefold increase of the accuracy in the evaluation of the flow speed.
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spelling pubmed-69876362020-02-03 Adaptive optics microspectrometer for cross-correlation measurement of microfluidic flows Collini, Maddalena Radaelli, Fabrizio Sironi, Laura Ceffa, Nicolo G. D’Alfonso, Laura Bouzin, Margaux Chirico, Giuseppe J Biomed Opt General Mapping flows in vivo is essential for the investigation of cardiovascular pathologies in animal models. The limitation of optical-based methods, such as space-time cross correlation, is the scattering of light by the connective and fat components and the direct wave front distortion by large inhomogeneities in the tissue. Nonlinear excitation of the sample fluorescence helps us by reducing light scattering in excitation. However, there is still a limitation on the signal-background due to the wave front distortion. We develop a diffractive optical microscope based on a single spatial light modulator (SLM) with no movable parts. We combine the correction of wave front distortions to the cross-correlation analysis of the flow dynamics. We use the SLM to shine arbitrary patterns of spots on the sample, to correct their optical aberrations, to shift the aberration corrected spot array on the sample for the collection of fluorescence images, and to measure flow velocities from the cross-correlation functions computed between couples of spots. The setup and the algorithms are tested on various microfluidic devices. By applying the adaptive optics correction algorithm, it is possible to increase up to 5 times the signal-to-background ratio and to reduce approximately of the same ratio the uncertainty of the flow speed measurement. By working on grids of spots, we can correct different aberrations in different portions of the field of view, a feature that allows for anisoplanatic aberrations correction. Finally, being more efficient in the excitation, we increase the accuracy of the speed measurement by employing a larger number of spots in the grid despite the fact that the two-photon excitation efficiency scales as the fourth power of this number: we achieve a twofold decrease of the uncertainty and a threefold increase of the accuracy in the evaluation of the flow speed. Society of Photo-Optical Instrumentation Engineers 2019-02-27 2019-02 /pmc/articles/PMC6987636/ /pubmed/30816029 http://dx.doi.org/10.1117/1.JBO.24.2.025004 Text en © The Authors. Published by SPIE under a Creative Commons Attribution 4.0 Unported License. Distribution or reproduction of this work in whole or in part requires full attribution of the original publication, including its DOI.
spellingShingle General
Collini, Maddalena
Radaelli, Fabrizio
Sironi, Laura
Ceffa, Nicolo G.
D’Alfonso, Laura
Bouzin, Margaux
Chirico, Giuseppe
Adaptive optics microspectrometer for cross-correlation measurement of microfluidic flows
title Adaptive optics microspectrometer for cross-correlation measurement of microfluidic flows
title_full Adaptive optics microspectrometer for cross-correlation measurement of microfluidic flows
title_fullStr Adaptive optics microspectrometer for cross-correlation measurement of microfluidic flows
title_full_unstemmed Adaptive optics microspectrometer for cross-correlation measurement of microfluidic flows
title_short Adaptive optics microspectrometer for cross-correlation measurement of microfluidic flows
title_sort adaptive optics microspectrometer for cross-correlation measurement of microfluidic flows
topic General
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6987636/
https://www.ncbi.nlm.nih.gov/pubmed/30816029
http://dx.doi.org/10.1117/1.JBO.24.2.025004
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