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A Platform To Enhance Quantitative Single Molecule Localization Microscopy

[Image: see text] Quantitative single molecule localization microscopy (qSMLM) is a powerful approach to study in situ protein organization. However, uncertainty regarding the photophysical properties of fluorescent reporters can bias the interpretation of detected localizations and subsequent quant...

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Autores principales: Golfetto, Ottavia, Wakefield, Devin L., Cacao, Eliedonna E., Avery, Kendra N., Kenyon, Victor, Jorand, Raphael, Tobin, Steven J., Biswas, Sunetra, Gutierrez, Jennifer, Clinton, Ronald, Ma, Yuelong, Horne, David A., Williams, John C., Jovanović-Talisman, Tijana
Formato: Online Artículo Texto
Lenguaje:English
Publicado: American Chemical Society 2018
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6187371/
https://www.ncbi.nlm.nih.gov/pubmed/30256630
http://dx.doi.org/10.1021/jacs.8b04939
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author Golfetto, Ottavia
Wakefield, Devin L.
Cacao, Eliedonna E.
Avery, Kendra N.
Kenyon, Victor
Jorand, Raphael
Tobin, Steven J.
Biswas, Sunetra
Gutierrez, Jennifer
Clinton, Ronald
Ma, Yuelong
Horne, David A.
Williams, John C.
Jovanović-Talisman, Tijana
author_facet Golfetto, Ottavia
Wakefield, Devin L.
Cacao, Eliedonna E.
Avery, Kendra N.
Kenyon, Victor
Jorand, Raphael
Tobin, Steven J.
Biswas, Sunetra
Gutierrez, Jennifer
Clinton, Ronald
Ma, Yuelong
Horne, David A.
Williams, John C.
Jovanović-Talisman, Tijana
author_sort Golfetto, Ottavia
collection PubMed
description [Image: see text] Quantitative single molecule localization microscopy (qSMLM) is a powerful approach to study in situ protein organization. However, uncertainty regarding the photophysical properties of fluorescent reporters can bias the interpretation of detected localizations and subsequent quantification. Furthermore, strategies to efficiently detect endogenous proteins are often constrained by label heterogeneity and reporter size. Here, a new surface assay for molecular isolation (SAMI) was developed for qSMLM and used to characterize photophysical properties of fluorescent proteins and dyes. SAMI-qSMLM afforded robust quantification. To efficiently detect endogenous proteins, we used fluorescent ligands that bind to a specific site on engineered antibody fragments. Both the density and nano-organization of membrane-bound epidermal growth factor receptors (EGFR, HER2, and HER3) were determined by a combination of SAMI, antibody engineering, and pair-correlation analysis. In breast cancer cell lines, we detected distinct differences in receptor density and nano-organization upon treatment with therapeutic agents. This new platform can improve molecular quantification and can be developed to study the local protein environment of intact cells.
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spelling pubmed-61873712018-10-17 A Platform To Enhance Quantitative Single Molecule Localization Microscopy Golfetto, Ottavia Wakefield, Devin L. Cacao, Eliedonna E. Avery, Kendra N. Kenyon, Victor Jorand, Raphael Tobin, Steven J. Biswas, Sunetra Gutierrez, Jennifer Clinton, Ronald Ma, Yuelong Horne, David A. Williams, John C. Jovanović-Talisman, Tijana J Am Chem Soc [Image: see text] Quantitative single molecule localization microscopy (qSMLM) is a powerful approach to study in situ protein organization. However, uncertainty regarding the photophysical properties of fluorescent reporters can bias the interpretation of detected localizations and subsequent quantification. Furthermore, strategies to efficiently detect endogenous proteins are often constrained by label heterogeneity and reporter size. Here, a new surface assay for molecular isolation (SAMI) was developed for qSMLM and used to characterize photophysical properties of fluorescent proteins and dyes. SAMI-qSMLM afforded robust quantification. To efficiently detect endogenous proteins, we used fluorescent ligands that bind to a specific site on engineered antibody fragments. Both the density and nano-organization of membrane-bound epidermal growth factor receptors (EGFR, HER2, and HER3) were determined by a combination of SAMI, antibody engineering, and pair-correlation analysis. In breast cancer cell lines, we detected distinct differences in receptor density and nano-organization upon treatment with therapeutic agents. This new platform can improve molecular quantification and can be developed to study the local protein environment of intact cells. American Chemical Society 2018-09-26 2018-10-10 /pmc/articles/PMC6187371/ /pubmed/30256630 http://dx.doi.org/10.1021/jacs.8b04939 Text en Copyright © 2018 American Chemical Society This is an open access article published under an ACS AuthorChoice License (http://pubs.acs.org/page/policy/authorchoice_termsofuse.html) , which permits copying and redistribution of the article or any adaptations for non-commercial purposes.
spellingShingle Golfetto, Ottavia
Wakefield, Devin L.
Cacao, Eliedonna E.
Avery, Kendra N.
Kenyon, Victor
Jorand, Raphael
Tobin, Steven J.
Biswas, Sunetra
Gutierrez, Jennifer
Clinton, Ronald
Ma, Yuelong
Horne, David A.
Williams, John C.
Jovanović-Talisman, Tijana
A Platform To Enhance Quantitative Single Molecule Localization Microscopy
title A Platform To Enhance Quantitative Single Molecule Localization Microscopy
title_full A Platform To Enhance Quantitative Single Molecule Localization Microscopy
title_fullStr A Platform To Enhance Quantitative Single Molecule Localization Microscopy
title_full_unstemmed A Platform To Enhance Quantitative Single Molecule Localization Microscopy
title_short A Platform To Enhance Quantitative Single Molecule Localization Microscopy
title_sort platform to enhance quantitative single molecule localization microscopy
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6187371/
https://www.ncbi.nlm.nih.gov/pubmed/30256630
http://dx.doi.org/10.1021/jacs.8b04939
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