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From Dynamic Live Cell Imaging to 3D Ultrastructure: Novel Integrated Methods for High Pressure Freezing and Correlative Light-Electron Microscopy

BACKGROUND: In cell biology, the study of proteins and organelles requires the combination of different imaging approaches, from live recordings with light microscopy (LM) to electron microscopy (EM). METHODOLOGY: To correlate dynamic events in adherent cells with both ultrastructural and 3D informa...

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Detalles Bibliográficos
Autores principales: Spiegelhalter, Coralie, Tosch, Valérie, Hentsch, Didier, Koch, Marc, Kessler, Pascal, Schwab, Yannick, Laporte, Jocelyn
Formato: Texto
Lenguaje:English
Publicado: Public Library of Science 2010
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC2815783/
https://www.ncbi.nlm.nih.gov/pubmed/20140253
http://dx.doi.org/10.1371/journal.pone.0009014
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author Spiegelhalter, Coralie
Tosch, Valérie
Hentsch, Didier
Koch, Marc
Kessler, Pascal
Schwab, Yannick
Laporte, Jocelyn
author_facet Spiegelhalter, Coralie
Tosch, Valérie
Hentsch, Didier
Koch, Marc
Kessler, Pascal
Schwab, Yannick
Laporte, Jocelyn
author_sort Spiegelhalter, Coralie
collection PubMed
description BACKGROUND: In cell biology, the study of proteins and organelles requires the combination of different imaging approaches, from live recordings with light microscopy (LM) to electron microscopy (EM). METHODOLOGY: To correlate dynamic events in adherent cells with both ultrastructural and 3D information, we developed a method for cultured cells that combines confocal time-lapse images of GFP-tagged proteins with electron microscopy. With laser micro-patterned culture substrate, we created coordinates that were conserved at every step of the sample preparation and visualization processes. Specifically designed for cryo-fixation, this method allowed a fast freezing of dynamic events within seconds and their ultrastructural characterization. We provide examples of the dynamic oligomerization of GFP-tagged myotubularin (MTM1) phosphoinositides phosphatase induced by osmotic stress, and of the ultrastructure of membrane tubules dependent on amphiphysin 2 (BIN1) expression. CONCLUSION: Accessible and versatile, we show that this approach is efficient to routinely correlate functional and dynamic LM with high resolution morphology by EM, with immuno-EM labeling, with 3D reconstruction using serial immuno-EM or tomography, and with scanning-EM.
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spelling pubmed-28157832010-02-07 From Dynamic Live Cell Imaging to 3D Ultrastructure: Novel Integrated Methods for High Pressure Freezing and Correlative Light-Electron Microscopy Spiegelhalter, Coralie Tosch, Valérie Hentsch, Didier Koch, Marc Kessler, Pascal Schwab, Yannick Laporte, Jocelyn PLoS One Research Article BACKGROUND: In cell biology, the study of proteins and organelles requires the combination of different imaging approaches, from live recordings with light microscopy (LM) to electron microscopy (EM). METHODOLOGY: To correlate dynamic events in adherent cells with both ultrastructural and 3D information, we developed a method for cultured cells that combines confocal time-lapse images of GFP-tagged proteins with electron microscopy. With laser micro-patterned culture substrate, we created coordinates that were conserved at every step of the sample preparation and visualization processes. Specifically designed for cryo-fixation, this method allowed a fast freezing of dynamic events within seconds and their ultrastructural characterization. We provide examples of the dynamic oligomerization of GFP-tagged myotubularin (MTM1) phosphoinositides phosphatase induced by osmotic stress, and of the ultrastructure of membrane tubules dependent on amphiphysin 2 (BIN1) expression. CONCLUSION: Accessible and versatile, we show that this approach is efficient to routinely correlate functional and dynamic LM with high resolution morphology by EM, with immuno-EM labeling, with 3D reconstruction using serial immuno-EM or tomography, and with scanning-EM. Public Library of Science 2010-02-03 /pmc/articles/PMC2815783/ /pubmed/20140253 http://dx.doi.org/10.1371/journal.pone.0009014 Text en Spiegelhalter 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
Spiegelhalter, Coralie
Tosch, Valérie
Hentsch, Didier
Koch, Marc
Kessler, Pascal
Schwab, Yannick
Laporte, Jocelyn
From Dynamic Live Cell Imaging to 3D Ultrastructure: Novel Integrated Methods for High Pressure Freezing and Correlative Light-Electron Microscopy
title From Dynamic Live Cell Imaging to 3D Ultrastructure: Novel Integrated Methods for High Pressure Freezing and Correlative Light-Electron Microscopy
title_full From Dynamic Live Cell Imaging to 3D Ultrastructure: Novel Integrated Methods for High Pressure Freezing and Correlative Light-Electron Microscopy
title_fullStr From Dynamic Live Cell Imaging to 3D Ultrastructure: Novel Integrated Methods for High Pressure Freezing and Correlative Light-Electron Microscopy
title_full_unstemmed From Dynamic Live Cell Imaging to 3D Ultrastructure: Novel Integrated Methods for High Pressure Freezing and Correlative Light-Electron Microscopy
title_short From Dynamic Live Cell Imaging to 3D Ultrastructure: Novel Integrated Methods for High Pressure Freezing and Correlative Light-Electron Microscopy
title_sort from dynamic live cell imaging to 3d ultrastructure: novel integrated methods for high pressure freezing and correlative light-electron microscopy
topic Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC2815783/
https://www.ncbi.nlm.nih.gov/pubmed/20140253
http://dx.doi.org/10.1371/journal.pone.0009014
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