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50nm-Scale Localization of Single Unmodified, Isotopically Enriched, Proteins in Cells

Imaging single proteins within cells is challenging if the possibility of artefacts due to tagging or to recognition by antibodies is to be avoided. It is generally believed that the biological properties of proteins remain unaltered when (14)N isotopes are replaced with (15)N. (15)N-enriched protei...

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Autores principales: Delaune, Anthony, Cabin-Flaman, Armelle, Legent, Guillaume, Gibouin, David, Smet-Nocca, Caroline, Lefebvre, Fabrice, Benecke, Arndt, Vasse, Marc, Ripoll, Camille
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Public Library of Science 2013
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3576336/
https://www.ncbi.nlm.nih.gov/pubmed/23431383
http://dx.doi.org/10.1371/journal.pone.0056559
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author Delaune, Anthony
Cabin-Flaman, Armelle
Legent, Guillaume
Gibouin, David
Smet-Nocca, Caroline
Lefebvre, Fabrice
Benecke, Arndt
Vasse, Marc
Ripoll, Camille
author_facet Delaune, Anthony
Cabin-Flaman, Armelle
Legent, Guillaume
Gibouin, David
Smet-Nocca, Caroline
Lefebvre, Fabrice
Benecke, Arndt
Vasse, Marc
Ripoll, Camille
author_sort Delaune, Anthony
collection PubMed
description Imaging single proteins within cells is challenging if the possibility of artefacts due to tagging or to recognition by antibodies is to be avoided. It is generally believed that the biological properties of proteins remain unaltered when (14)N isotopes are replaced with (15)N. (15)N-enriched proteins can be localised by dynamic Secondary Ion Mass Spectrometry (D-SIMS). We describe here a novel imaging analysis algorithm to detect a few (15)N-enriched proteins - and even a single protein - within a cell using D-SIMS. The algorithm distinguishes statistically between a low local increase in (15)N isotopic fraction due to an enriched protein and a stochastic increase due to the background. To determine the number of enriched proteins responsible for the increase in the isotopic fraction, we use sequential D-SIMS images in which we compare the measured isotopic fractions to those expected if 1, 2 or more enriched proteins are present. The number of enriched proteins is the one that gives the best fit between the measured and the expected values. We used our method to localise (15)N-enriched thymine DNA glycosylase (TDG) and retinoid X receptor α (RXRα) proteins delivered to COS-7 cells. We show that both a single TDG and a single RXRα can be detected. After 4 h incubation, both proteins were found mainly in the nucleus; RXRα as a monomer or dimer and TDG only as a monomer. After 7 h, RXRα was found in the nucleus as a monomer, dimer or tetramer, whilst TDG was no longer in the nucleus and instead formed clusters in the cytoplasm. After 24 h, RXRα formed clusters in the cytoplasm, and TDG was no longer detectable. In conclusion, single unmodified proteins in cells can be counted and localised with 50 nm resolution by combining D-SIMS with our method of analysis.
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spelling pubmed-35763362013-02-21 50nm-Scale Localization of Single Unmodified, Isotopically Enriched, Proteins in Cells Delaune, Anthony Cabin-Flaman, Armelle Legent, Guillaume Gibouin, David Smet-Nocca, Caroline Lefebvre, Fabrice Benecke, Arndt Vasse, Marc Ripoll, Camille PLoS One Research Article Imaging single proteins within cells is challenging if the possibility of artefacts due to tagging or to recognition by antibodies is to be avoided. It is generally believed that the biological properties of proteins remain unaltered when (14)N isotopes are replaced with (15)N. (15)N-enriched proteins can be localised by dynamic Secondary Ion Mass Spectrometry (D-SIMS). We describe here a novel imaging analysis algorithm to detect a few (15)N-enriched proteins - and even a single protein - within a cell using D-SIMS. The algorithm distinguishes statistically between a low local increase in (15)N isotopic fraction due to an enriched protein and a stochastic increase due to the background. To determine the number of enriched proteins responsible for the increase in the isotopic fraction, we use sequential D-SIMS images in which we compare the measured isotopic fractions to those expected if 1, 2 or more enriched proteins are present. The number of enriched proteins is the one that gives the best fit between the measured and the expected values. We used our method to localise (15)N-enriched thymine DNA glycosylase (TDG) and retinoid X receptor α (RXRα) proteins delivered to COS-7 cells. We show that both a single TDG and a single RXRα can be detected. After 4 h incubation, both proteins were found mainly in the nucleus; RXRα as a monomer or dimer and TDG only as a monomer. After 7 h, RXRα was found in the nucleus as a monomer, dimer or tetramer, whilst TDG was no longer in the nucleus and instead formed clusters in the cytoplasm. After 24 h, RXRα formed clusters in the cytoplasm, and TDG was no longer detectable. In conclusion, single unmodified proteins in cells can be counted and localised with 50 nm resolution by combining D-SIMS with our method of analysis. Public Library of Science 2013-02-19 /pmc/articles/PMC3576336/ /pubmed/23431383 http://dx.doi.org/10.1371/journal.pone.0056559 Text en © 2013 Delaune 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
Delaune, Anthony
Cabin-Flaman, Armelle
Legent, Guillaume
Gibouin, David
Smet-Nocca, Caroline
Lefebvre, Fabrice
Benecke, Arndt
Vasse, Marc
Ripoll, Camille
50nm-Scale Localization of Single Unmodified, Isotopically Enriched, Proteins in Cells
title 50nm-Scale Localization of Single Unmodified, Isotopically Enriched, Proteins in Cells
title_full 50nm-Scale Localization of Single Unmodified, Isotopically Enriched, Proteins in Cells
title_fullStr 50nm-Scale Localization of Single Unmodified, Isotopically Enriched, Proteins in Cells
title_full_unstemmed 50nm-Scale Localization of Single Unmodified, Isotopically Enriched, Proteins in Cells
title_short 50nm-Scale Localization of Single Unmodified, Isotopically Enriched, Proteins in Cells
title_sort 50nm-scale localization of single unmodified, isotopically enriched, proteins in cells
topic Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3576336/
https://www.ncbi.nlm.nih.gov/pubmed/23431383
http://dx.doi.org/10.1371/journal.pone.0056559
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