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4D Super-Resolution Microscopy with Conventional Fluorophores and Single Wavelength Excitation in Optically Thick Cells and Tissues

BACKGROUND: Optical super-resolution imaging of fluorescently stained biological samples is rapidly becoming an important tool to investigate protein distribution at the molecular scale. It is therefore important to develop practical super-resolution methods that allow capturing the full three-dimen...

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Autores principales: Baddeley, David, Crossman, David, Rossberger, Sabrina, Cheyne, Juliette E., Montgomery, Johanna M., Jayasinghe, Isuru D., Cremer, Christoph, Cannell, Mark B., Soeller, Christian
Formato: Texto
Lenguaje:English
Publicado: Public Library of Science 2011
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3105105/
https://www.ncbi.nlm.nih.gov/pubmed/21655189
http://dx.doi.org/10.1371/journal.pone.0020645
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author Baddeley, David
Crossman, David
Rossberger, Sabrina
Cheyne, Juliette E.
Montgomery, Johanna M.
Jayasinghe, Isuru D.
Cremer, Christoph
Cannell, Mark B.
Soeller, Christian
author_facet Baddeley, David
Crossman, David
Rossberger, Sabrina
Cheyne, Juliette E.
Montgomery, Johanna M.
Jayasinghe, Isuru D.
Cremer, Christoph
Cannell, Mark B.
Soeller, Christian
author_sort Baddeley, David
collection PubMed
description BACKGROUND: Optical super-resolution imaging of fluorescently stained biological samples is rapidly becoming an important tool to investigate protein distribution at the molecular scale. It is therefore important to develop practical super-resolution methods that allow capturing the full three-dimensional nature of biological systems and also can visualize multiple protein species in the same sample. METHODOLOGY/PRINCIPAL FINDINGS: We show that the use of a combination of conventional near-infrared dyes, such as Alexa 647, Alexa 680 and Alexa 750, all excited with a 671 nm diode laser, enables 3D multi-colour super-resolution imaging of complex biological samples. Optically thick samples, including human tissue sections, cardiac rat myocytes and densely grown neuronal cultures were imaged with lateral resolutions of ∼15 nm (std. dev.) while reducing marker cross-talk to <1%. Using astigmatism an axial resolution of ∼65 nm (std. dev.) was routinely achieved. The number of marker species that can be distinguished depends on the mean photon number of single molecule events. With the typical photon yields from Alexa 680 of ∼2000 up to 5 markers may in principle be resolved with <2% crosstalk. CONCLUSIONS/SIGNIFICANCE: Our approach is based entirely on the use of conventional, commercially available markers and requires only a single laser. It provides a very straightforward way to investigate biological samples at the nanometre scale and should help establish practical 4D super-resolution microscopy as a routine research tool in many laboratories.
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spelling pubmed-31051052011-06-08 4D Super-Resolution Microscopy with Conventional Fluorophores and Single Wavelength Excitation in Optically Thick Cells and Tissues Baddeley, David Crossman, David Rossberger, Sabrina Cheyne, Juliette E. Montgomery, Johanna M. Jayasinghe, Isuru D. Cremer, Christoph Cannell, Mark B. Soeller, Christian PLoS One Research Article BACKGROUND: Optical super-resolution imaging of fluorescently stained biological samples is rapidly becoming an important tool to investigate protein distribution at the molecular scale. It is therefore important to develop practical super-resolution methods that allow capturing the full three-dimensional nature of biological systems and also can visualize multiple protein species in the same sample. METHODOLOGY/PRINCIPAL FINDINGS: We show that the use of a combination of conventional near-infrared dyes, such as Alexa 647, Alexa 680 and Alexa 750, all excited with a 671 nm diode laser, enables 3D multi-colour super-resolution imaging of complex biological samples. Optically thick samples, including human tissue sections, cardiac rat myocytes and densely grown neuronal cultures were imaged with lateral resolutions of ∼15 nm (std. dev.) while reducing marker cross-talk to <1%. Using astigmatism an axial resolution of ∼65 nm (std. dev.) was routinely achieved. The number of marker species that can be distinguished depends on the mean photon number of single molecule events. With the typical photon yields from Alexa 680 of ∼2000 up to 5 markers may in principle be resolved with <2% crosstalk. CONCLUSIONS/SIGNIFICANCE: Our approach is based entirely on the use of conventional, commercially available markers and requires only a single laser. It provides a very straightforward way to investigate biological samples at the nanometre scale and should help establish practical 4D super-resolution microscopy as a routine research tool in many laboratories. Public Library of Science 2011-05-31 /pmc/articles/PMC3105105/ /pubmed/21655189 http://dx.doi.org/10.1371/journal.pone.0020645 Text en Baddeley et al. http://creativecommons.org/licenses/by/4.0/ This is an open-access article distributed under the terms of the Creative Commons Attribution License, which permits unrestricted use, distribution, and reproduction in any medium, provided the original author and source are properly credited.
spellingShingle Research Article
Baddeley, David
Crossman, David
Rossberger, Sabrina
Cheyne, Juliette E.
Montgomery, Johanna M.
Jayasinghe, Isuru D.
Cremer, Christoph
Cannell, Mark B.
Soeller, Christian
4D Super-Resolution Microscopy with Conventional Fluorophores and Single Wavelength Excitation in Optically Thick Cells and Tissues
title 4D Super-Resolution Microscopy with Conventional Fluorophores and Single Wavelength Excitation in Optically Thick Cells and Tissues
title_full 4D Super-Resolution Microscopy with Conventional Fluorophores and Single Wavelength Excitation in Optically Thick Cells and Tissues
title_fullStr 4D Super-Resolution Microscopy with Conventional Fluorophores and Single Wavelength Excitation in Optically Thick Cells and Tissues
title_full_unstemmed 4D Super-Resolution Microscopy with Conventional Fluorophores and Single Wavelength Excitation in Optically Thick Cells and Tissues
title_short 4D Super-Resolution Microscopy with Conventional Fluorophores and Single Wavelength Excitation in Optically Thick Cells and Tissues
title_sort 4d super-resolution microscopy with conventional fluorophores and single wavelength excitation in optically thick cells and tissues
topic Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3105105/
https://www.ncbi.nlm.nih.gov/pubmed/21655189
http://dx.doi.org/10.1371/journal.pone.0020645
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