De-scattering with Excitation Patterning enables rapid wide-field imaging through scattering media

Nonlinear optical microscopy has enabled in vivo deep tissue imaging on the millimeter scale. A key unmet challenge is its limited throughput especially compared to rapid wide-field modalities that are used ubiquitously in thin specimens. Wide-field imaging methods in tissue specimens have found suc...

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Main Authors: Zheng, Cheng, Park, Jong Kang, Yildirim, Murat, Boivin, Josiah R, Xue, Yi, Sur, Mriganka, So, Peter TC, Wadduwage, Dushan N
Other Authors: Massachusetts Institute of Technology. Department of Mechanical Engineering
Format: Article
Language:English
Published: American Association for the Advancement of Science (AAAS) 2021
Online Access:https://hdl.handle.net/1721.1/138331
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author Zheng, Cheng
Park, Jong Kang
Yildirim, Murat
Boivin, Josiah R
Xue, Yi
Sur, Mriganka
So, Peter TC
Wadduwage, Dushan N
author2 Massachusetts Institute of Technology. Department of Mechanical Engineering
author_facet Massachusetts Institute of Technology. Department of Mechanical Engineering
Zheng, Cheng
Park, Jong Kang
Yildirim, Murat
Boivin, Josiah R
Xue, Yi
Sur, Mriganka
So, Peter TC
Wadduwage, Dushan N
author_sort Zheng, Cheng
collection MIT
description Nonlinear optical microscopy has enabled in vivo deep tissue imaging on the millimeter scale. A key unmet challenge is its limited throughput especially compared to rapid wide-field modalities that are used ubiquitously in thin specimens. Wide-field imaging methods in tissue specimens have found successes in optically cleared tissues and at shallower depths, but the scattering of emission photons in thick turbid samples severely degrades image quality at the camera. To address this challenge, we introduce a novel technique called De-scattering with Excitation Patterning or "DEEP," which uses patterned nonlinear excitation followed by computational imaging-assisted wide-field detection. Multiphoton temporal focusing allows high-resolution excitation patterns to be projected deep inside specimen at multiple scattering lengths due to the use of long wavelength light. Computational reconstruction allows high-resolution structural features to be reconstructed from tens to hundreds of DEEP images instead of millions of point-scanning measurements.
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spelling mit-1721.1/1383312023-04-18T18:23:09Z De-scattering with Excitation Patterning enables rapid wide-field imaging through scattering media Zheng, Cheng Park, Jong Kang Yildirim, Murat Boivin, Josiah R Xue, Yi Sur, Mriganka So, Peter TC Wadduwage, Dushan N Massachusetts Institute of Technology. Department of Mechanical Engineering Massachusetts Institute of Technology. Laser Biomedical Research Center Massachusetts Institute of Technology. Department of Biological Engineering Picower Institute for Learning and Memory Nonlinear optical microscopy has enabled in vivo deep tissue imaging on the millimeter scale. A key unmet challenge is its limited throughput especially compared to rapid wide-field modalities that are used ubiquitously in thin specimens. Wide-field imaging methods in tissue specimens have found successes in optically cleared tissues and at shallower depths, but the scattering of emission photons in thick turbid samples severely degrades image quality at the camera. To address this challenge, we introduce a novel technique called De-scattering with Excitation Patterning or "DEEP," which uses patterned nonlinear excitation followed by computational imaging-assisted wide-field detection. Multiphoton temporal focusing allows high-resolution excitation patterns to be projected deep inside specimen at multiple scattering lengths due to the use of long wavelength light. Computational reconstruction allows high-resolution structural features to be reconstructed from tens to hundreds of DEEP images instead of millions of point-scanning measurements. 2021-12-06T17:58:08Z 2021-12-06T17:58:08Z 2021-07 2021-12-06T17:54:06Z Article http://purl.org/eprint/type/JournalArticle https://hdl.handle.net/1721.1/138331 Zheng, Cheng, Park, Jong Kang, Yildirim, Murat, Boivin, Josiah R, Xue, Yi et al. 2021. "De-scattering with Excitation Patterning enables rapid wide-field imaging through scattering media." Science Advances, 7 (28). en 10.1126/sciadv.aay5496 Science Advances Creative Commons Attribution NonCommercial License 4.0 https://creativecommons.org/licenses/by-nc/4.0/ application/pdf American Association for the Advancement of Science (AAAS) Science Advances
spellingShingle Zheng, Cheng
Park, Jong Kang
Yildirim, Murat
Boivin, Josiah R
Xue, Yi
Sur, Mriganka
So, Peter TC
Wadduwage, Dushan N
De-scattering with Excitation Patterning enables rapid wide-field imaging through scattering media
title De-scattering with Excitation Patterning enables rapid wide-field imaging through scattering media
title_full De-scattering with Excitation Patterning enables rapid wide-field imaging through scattering media
title_fullStr De-scattering with Excitation Patterning enables rapid wide-field imaging through scattering media
title_full_unstemmed De-scattering with Excitation Patterning enables rapid wide-field imaging through scattering media
title_short De-scattering with Excitation Patterning enables rapid wide-field imaging through scattering media
title_sort de scattering with excitation patterning enables rapid wide field imaging through scattering media
url https://hdl.handle.net/1721.1/138331
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