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Comparing confocal and two-photon Ca(2+) imaging of thin low-scattering preparations

Ca(2+) imaging provides insight into biological processes ranging from subcellular dynamics to neural network activity. Two-photon microscopy has assumed a dominant role in Ca(2+) imaging. The longer wavelength infra-red illumination undergoes less scattering, and absorption is confined to the focal...

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Detalles Bibliográficos
Autores principales: Cheng, Jinbo, McMahon, Shane M., Piston, David W., Jackson, Meyer B.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Elsevier 2023
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10192416/
https://www.ncbi.nlm.nih.gov/pubmed/37213258
http://dx.doi.org/10.1016/j.bpr.2023.100109
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author Cheng, Jinbo
McMahon, Shane M.
Piston, David W.
Jackson, Meyer B.
author_facet Cheng, Jinbo
McMahon, Shane M.
Piston, David W.
Jackson, Meyer B.
author_sort Cheng, Jinbo
collection PubMed
description Ca(2+) imaging provides insight into biological processes ranging from subcellular dynamics to neural network activity. Two-photon microscopy has assumed a dominant role in Ca(2+) imaging. The longer wavelength infra-red illumination undergoes less scattering, and absorption is confined to the focal plane. Two-photon imaging can thus penetrate thick tissue ∼10-fold more deeply than single-photon visible imaging to make two-photon microscopy an exceptionally powerful method for probing function in intact brain. However, two-photon excitation produces photobleaching and photodamage that increase very steeply with light intensity, limiting how strongly one can illuminate. In thin samples, illumination intensity can assume a dominant role in determining signal quality, raising the possibility that single-photon microscopy may be preferable. We therefore tested laser scanning single-photon and two-photon microscopy side by side with Ca(2+) imaging in neuronal compartments at the surface of a brain slice. We optimized illumination intensity for each light source to obtain the brightest signal without photobleaching. Intracellular Ca(2+) rises elicited by one action potential had twice the signal/noise ratio with confocal as with two-photon imaging in axons, were 31% higher in dendrites, and about the same in cell bodies. The superior performance of confocal imaging in finer neuronal processes likely reflects the dominance of shot noise when fluorescence is dim. Thus, when out-of-focus absorption and scattering are not issues, single-photon confocal imaging can yield better quality signals than two-photon microscopy.
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spelling pubmed-101924162023-05-19 Comparing confocal and two-photon Ca(2+) imaging of thin low-scattering preparations Cheng, Jinbo McMahon, Shane M. Piston, David W. Jackson, Meyer B. Biophys Rep (N Y) Letter Ca(2+) imaging provides insight into biological processes ranging from subcellular dynamics to neural network activity. Two-photon microscopy has assumed a dominant role in Ca(2+) imaging. The longer wavelength infra-red illumination undergoes less scattering, and absorption is confined to the focal plane. Two-photon imaging can thus penetrate thick tissue ∼10-fold more deeply than single-photon visible imaging to make two-photon microscopy an exceptionally powerful method for probing function in intact brain. However, two-photon excitation produces photobleaching and photodamage that increase very steeply with light intensity, limiting how strongly one can illuminate. In thin samples, illumination intensity can assume a dominant role in determining signal quality, raising the possibility that single-photon microscopy may be preferable. We therefore tested laser scanning single-photon and two-photon microscopy side by side with Ca(2+) imaging in neuronal compartments at the surface of a brain slice. We optimized illumination intensity for each light source to obtain the brightest signal without photobleaching. Intracellular Ca(2+) rises elicited by one action potential had twice the signal/noise ratio with confocal as with two-photon imaging in axons, were 31% higher in dendrites, and about the same in cell bodies. The superior performance of confocal imaging in finer neuronal processes likely reflects the dominance of shot noise when fluorescence is dim. Thus, when out-of-focus absorption and scattering are not issues, single-photon confocal imaging can yield better quality signals than two-photon microscopy. Elsevier 2023-04-20 /pmc/articles/PMC10192416/ /pubmed/37213258 http://dx.doi.org/10.1016/j.bpr.2023.100109 Text en © 2023 The Author(s) https://creativecommons.org/licenses/by-nc-nd/4.0/This is an open access article under the CC BY-NC-ND license (http://creativecommons.org/licenses/by-nc-nd/4.0/).
spellingShingle Letter
Cheng, Jinbo
McMahon, Shane M.
Piston, David W.
Jackson, Meyer B.
Comparing confocal and two-photon Ca(2+) imaging of thin low-scattering preparations
title Comparing confocal and two-photon Ca(2+) imaging of thin low-scattering preparations
title_full Comparing confocal and two-photon Ca(2+) imaging of thin low-scattering preparations
title_fullStr Comparing confocal and two-photon Ca(2+) imaging of thin low-scattering preparations
title_full_unstemmed Comparing confocal and two-photon Ca(2+) imaging of thin low-scattering preparations
title_short Comparing confocal and two-photon Ca(2+) imaging of thin low-scattering preparations
title_sort comparing confocal and two-photon ca(2+) imaging of thin low-scattering preparations
topic Letter
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10192416/
https://www.ncbi.nlm.nih.gov/pubmed/37213258
http://dx.doi.org/10.1016/j.bpr.2023.100109
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