Multiview deconvolution approximation multiphoton microscopy of tissues and zebrafish larvae

Abstract Imaging in three dimensions is necessary for thick tissues and small organisms. This is possible with tomographic optical microscopy techniques such as confocal, multiphoton and light sheet microscopy. All these techniques suffer from anisotropic resolution and limited penetration depth. In...

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Main Authors: Dimitrios Kapsokalyvas, Rodrigo Rosas, Rob W. A. Janssen, Jo M. Vanoevelen, Miranda Nabben, Martin Strauch, Dorit Merhof, Marc A. M. J. van Zandvoort
Format: Article
Language:English
Published: Nature Publishing Group 2021-05-01
Series:Scientific Reports
Online Access:https://doi.org/10.1038/s41598-021-89566-w
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spelling doaj-38577ad5a5eb4a9e84cbcd84b72703872021-05-16T11:24:08ZengNature Publishing GroupScientific Reports2045-23222021-05-0111111310.1038/s41598-021-89566-wMultiview deconvolution approximation multiphoton microscopy of tissues and zebrafish larvaeDimitrios Kapsokalyvas0Rodrigo Rosas1Rob W. A. Janssen2Jo M. Vanoevelen3Miranda Nabben4Martin Strauch5Dorit Merhof6Marc A. M. J. van Zandvoort7Department of Genetics and Cell Biology, Faculty of Health, Medicine and Life Sciences (FHML), Maastricht UniversityDepartment of Genetics and Cell Biology, Faculty of Health, Medicine and Life Sciences (FHML), Maastricht UniversityDepartment of Genetics and Cell Biology, Faculty of Health, Medicine and Life Sciences (FHML), Maastricht UniversityDepartment of Genetics and Cell Biology, Faculty of Health, Medicine and Life Sciences (FHML), Maastricht UniversityDepartment of Genetics and Cell Biology, Faculty of Health, Medicine and Life Sciences (FHML), Maastricht UniversityInstitute of Imaging and Computer Vision, RWTH Aachen UniversityInstitute of Imaging and Computer Vision, RWTH Aachen UniversityDepartment of Genetics and Cell Biology, Faculty of Health, Medicine and Life Sciences (FHML), Maastricht UniversityAbstract Imaging in three dimensions is necessary for thick tissues and small organisms. This is possible with tomographic optical microscopy techniques such as confocal, multiphoton and light sheet microscopy. All these techniques suffer from anisotropic resolution and limited penetration depth. In the past, Multiview microscopy—imaging the sample from different angles followed by 3D image reconstruction—was developed to address this issue for light sheet microscopy based on fluorescence signal. In this study we applied this methodology to accomplish Multiview imaging with multiphoton microscopy based on fluorescence and additionally second harmonic signal from myosin and collagen. It was shown that isotropic resolution was achieved, the entirety of the sample was visualized, and interference artifacts were suppressed allowing clear visualization of collagen fibrils and myofibrils. This method can be applied to any scanning microscopy technique without microscope modifications. It can be used for imaging tissue and whole mount small organisms such as heart tissue, and zebrafish larva in 3D, label-free or stained, with at least threefold axial resolution improvement which can be significant for the accurate quantification of small 3D structures.https://doi.org/10.1038/s41598-021-89566-w
collection DOAJ
language English
format Article
sources DOAJ
author Dimitrios Kapsokalyvas
Rodrigo Rosas
Rob W. A. Janssen
Jo M. Vanoevelen
Miranda Nabben
Martin Strauch
Dorit Merhof
Marc A. M. J. van Zandvoort
spellingShingle Dimitrios Kapsokalyvas
Rodrigo Rosas
Rob W. A. Janssen
Jo M. Vanoevelen
Miranda Nabben
Martin Strauch
Dorit Merhof
Marc A. M. J. van Zandvoort
Multiview deconvolution approximation multiphoton microscopy of tissues and zebrafish larvae
Scientific Reports
author_facet Dimitrios Kapsokalyvas
Rodrigo Rosas
Rob W. A. Janssen
Jo M. Vanoevelen
Miranda Nabben
Martin Strauch
Dorit Merhof
Marc A. M. J. van Zandvoort
author_sort Dimitrios Kapsokalyvas
title Multiview deconvolution approximation multiphoton microscopy of tissues and zebrafish larvae
title_short Multiview deconvolution approximation multiphoton microscopy of tissues and zebrafish larvae
title_full Multiview deconvolution approximation multiphoton microscopy of tissues and zebrafish larvae
title_fullStr Multiview deconvolution approximation multiphoton microscopy of tissues and zebrafish larvae
title_full_unstemmed Multiview deconvolution approximation multiphoton microscopy of tissues and zebrafish larvae
title_sort multiview deconvolution approximation multiphoton microscopy of tissues and zebrafish larvae
publisher Nature Publishing Group
series Scientific Reports
issn 2045-2322
publishDate 2021-05-01
description Abstract Imaging in three dimensions is necessary for thick tissues and small organisms. This is possible with tomographic optical microscopy techniques such as confocal, multiphoton and light sheet microscopy. All these techniques suffer from anisotropic resolution and limited penetration depth. In the past, Multiview microscopy—imaging the sample from different angles followed by 3D image reconstruction—was developed to address this issue for light sheet microscopy based on fluorescence signal. In this study we applied this methodology to accomplish Multiview imaging with multiphoton microscopy based on fluorescence and additionally second harmonic signal from myosin and collagen. It was shown that isotropic resolution was achieved, the entirety of the sample was visualized, and interference artifacts were suppressed allowing clear visualization of collagen fibrils and myofibrils. This method can be applied to any scanning microscopy technique without microscope modifications. It can be used for imaging tissue and whole mount small organisms such as heart tissue, and zebrafish larva in 3D, label-free or stained, with at least threefold axial resolution improvement which can be significant for the accurate quantification of small 3D structures.
url https://doi.org/10.1038/s41598-021-89566-w
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