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Multifaceted mirror array illuminator for fluorescence excitation-scanning spectral imaging microscopy

SIGNIFICANCE: Hyperspectral imaging (HSI) technologies offer great potential in fluorescence microscopy for multiplexed imaging, autofluorescence removal, and analysis of autofluorescent molecules. However, there are also associated trade-offs when implementing HSI in fluorescence microscopy systems...

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Autores principales: Parker, Marina, Mayes, Samuel A., Browning, Craig M., Deal, Joshua, Gunn-Mayes, Samantha, Annamdevula, Naga S., Rich, Thomas C., Leavesley, Silas J.
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/PMC9907356/
https://www.ncbi.nlm.nih.gov/pubmed/36761255
http://dx.doi.org/10.1117/1.JBO.28.2.026502
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author Parker, Marina
Mayes, Samuel A.
Browning, Craig M.
Deal, Joshua
Gunn-Mayes, Samantha
Annamdevula, Naga S.
Rich, Thomas C.
Leavesley, Silas J.
author_facet Parker, Marina
Mayes, Samuel A.
Browning, Craig M.
Deal, Joshua
Gunn-Mayes, Samantha
Annamdevula, Naga S.
Rich, Thomas C.
Leavesley, Silas J.
author_sort Parker, Marina
collection PubMed
description SIGNIFICANCE: Hyperspectral imaging (HSI) technologies offer great potential in fluorescence microscopy for multiplexed imaging, autofluorescence removal, and analysis of autofluorescent molecules. However, there are also associated trade-offs when implementing HSI in fluorescence microscopy systems, such as decreased acquisition speed, resolution, or field-of-view due to the need to acquire spectral information in addition to spatial information. The vast majority of HSI fluorescence microscopy systems provide spectral discrimination by filtering or dispersing the fluorescence emission, which may result in loss of emitted fluorescence signal due to optical filters, dispersive optics, or supporting optics, such as slits and collimators. Technologies that scan the fluorescence excitation spectrum may offer an approach to mitigate some of these trade-offs by decreasing the complexity of the emission light path. AIM: We describe the development of an optical technique for hyperspectral imaging fluorescence excitation-scanning (HIFEX) on a microscope system. APPROACH: The approach is based on the design of an array of wavelength-dependent light emitting diodes (LEDs) and a unique beam combining system that uses a multifurcated mirror. The system was modeled and optimized using optical ray trace simulations, and a prototype was built and coupled to an inverted microscope platform. The prototype system was calibrated, and initial feasibility testing was performed by imaging multilabel slide preparations. RESULTS: We present results from optical ray trace simulations, prototyping, calibration, and feasibility testing of the system. Results indicate that the system can discriminate between at least six fluorescent labels and autofluorescence and that the approach can provide decreased wavelength switching times, in comparison with mechanically tuned filters. CONCLUSIONS: We anticipate that LED-based HIFEX microscopy may provide improved performance for time-dependent and photosensitive assays.
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spelling pubmed-99073562023-02-08 Multifaceted mirror array illuminator for fluorescence excitation-scanning spectral imaging microscopy Parker, Marina Mayes, Samuel A. Browning, Craig M. Deal, Joshua Gunn-Mayes, Samantha Annamdevula, Naga S. Rich, Thomas C. Leavesley, Silas J. J Biomed Opt Microscopy SIGNIFICANCE: Hyperspectral imaging (HSI) technologies offer great potential in fluorescence microscopy for multiplexed imaging, autofluorescence removal, and analysis of autofluorescent molecules. However, there are also associated trade-offs when implementing HSI in fluorescence microscopy systems, such as decreased acquisition speed, resolution, or field-of-view due to the need to acquire spectral information in addition to spatial information. The vast majority of HSI fluorescence microscopy systems provide spectral discrimination by filtering or dispersing the fluorescence emission, which may result in loss of emitted fluorescence signal due to optical filters, dispersive optics, or supporting optics, such as slits and collimators. Technologies that scan the fluorescence excitation spectrum may offer an approach to mitigate some of these trade-offs by decreasing the complexity of the emission light path. AIM: We describe the development of an optical technique for hyperspectral imaging fluorescence excitation-scanning (HIFEX) on a microscope system. APPROACH: The approach is based on the design of an array of wavelength-dependent light emitting diodes (LEDs) and a unique beam combining system that uses a multifurcated mirror. The system was modeled and optimized using optical ray trace simulations, and a prototype was built and coupled to an inverted microscope platform. The prototype system was calibrated, and initial feasibility testing was performed by imaging multilabel slide preparations. RESULTS: We present results from optical ray trace simulations, prototyping, calibration, and feasibility testing of the system. Results indicate that the system can discriminate between at least six fluorescent labels and autofluorescence and that the approach can provide decreased wavelength switching times, in comparison with mechanically tuned filters. CONCLUSIONS: We anticipate that LED-based HIFEX microscopy may provide improved performance for time-dependent and photosensitive assays. Society of Photo-Optical Instrumentation Engineers 2023-02-07 2023-02 /pmc/articles/PMC9907356/ /pubmed/36761255 http://dx.doi.org/10.1117/1.JBO.28.2.026502 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 Microscopy
Parker, Marina
Mayes, Samuel A.
Browning, Craig M.
Deal, Joshua
Gunn-Mayes, Samantha
Annamdevula, Naga S.
Rich, Thomas C.
Leavesley, Silas J.
Multifaceted mirror array illuminator for fluorescence excitation-scanning spectral imaging microscopy
title Multifaceted mirror array illuminator for fluorescence excitation-scanning spectral imaging microscopy
title_full Multifaceted mirror array illuminator for fluorescence excitation-scanning spectral imaging microscopy
title_fullStr Multifaceted mirror array illuminator for fluorescence excitation-scanning spectral imaging microscopy
title_full_unstemmed Multifaceted mirror array illuminator for fluorescence excitation-scanning spectral imaging microscopy
title_short Multifaceted mirror array illuminator for fluorescence excitation-scanning spectral imaging microscopy
title_sort multifaceted mirror array illuminator for fluorescence excitation-scanning spectral imaging microscopy
topic Microscopy
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9907356/
https://www.ncbi.nlm.nih.gov/pubmed/36761255
http://dx.doi.org/10.1117/1.JBO.28.2.026502
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