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Measuring Molecular Diffusion in Dynamic Subcellular Nanostructures by Fast Raster Image Correlation Spectroscopy and 3D Orbital Tracking

Here we provide demonstration that fast fluorescence fluctuation spectroscopy is a fast and robust approach to extract information on the dynamics of molecules enclosed within subcellular nanostructures (e.g., organelles or vesicles) which are also moving in the complex cellular environment. In more...

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Autores principales: Begarani, Filippo, D’Autilia, Francesca, Ferri, Gianmarco, Pesce, Luca, Azzarello, Fabio, De Lorenzi, Valentina, Durso, William, Del Grosso, Ambra, Cecchini, Marco, Cardarelli, Francesco
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2022
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9323805/
https://www.ncbi.nlm.nih.gov/pubmed/35886970
http://dx.doi.org/10.3390/ijms23147623
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author Begarani, Filippo
D’Autilia, Francesca
Ferri, Gianmarco
Pesce, Luca
Azzarello, Fabio
De Lorenzi, Valentina
Durso, William
Del Grosso, Ambra
Cecchini, Marco
Cardarelli, Francesco
author_facet Begarani, Filippo
D’Autilia, Francesca
Ferri, Gianmarco
Pesce, Luca
Azzarello, Fabio
De Lorenzi, Valentina
Durso, William
Del Grosso, Ambra
Cecchini, Marco
Cardarelli, Francesco
author_sort Begarani, Filippo
collection PubMed
description Here we provide demonstration that fast fluorescence fluctuation spectroscopy is a fast and robust approach to extract information on the dynamics of molecules enclosed within subcellular nanostructures (e.g., organelles or vesicles) which are also moving in the complex cellular environment. In more detail, Raster Image Correlation Spectroscopy (RICS) performed at fast timescales (i.e., microseconds) reveals the fast motion of fluorescently labeled molecules within two exemplary dynamic subcellular nanostructures of biomedical interest, the lysosome and the insulin secretory granule (ISG). The measurement of molecular diffusion is then used to extract information on the average properties of subcellular nanostructures, such as macromolecular crowding or molecular aggregation. Concerning the lysosome, fast RICS on a fluorescent tracer allowed us to quantitatively assess the increase in organelle viscosity in the pathological condition of Krabbe disease. In the case of ISGs, fast RICS on two ISG-specific secreting peptides unveiled their differential aggregation propensity depending on intragranular concentration. Finally, a combination of fast RICS and feedback-based 3D orbital tracking was used to subtract the slow movement of subcellular nanostructures from the fast diffusion of molecules contained within them and independently validate the results. Results presented here not only demonstrate the acquired ability to address the dynamic behavior of molecules in moving, nanoscopic reference systems, but prove the relevance of this approach to advance our knowledge on cell function at the subcellular scale.
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spelling pubmed-93238052022-07-27 Measuring Molecular Diffusion in Dynamic Subcellular Nanostructures by Fast Raster Image Correlation Spectroscopy and 3D Orbital Tracking Begarani, Filippo D’Autilia, Francesca Ferri, Gianmarco Pesce, Luca Azzarello, Fabio De Lorenzi, Valentina Durso, William Del Grosso, Ambra Cecchini, Marco Cardarelli, Francesco Int J Mol Sci Article Here we provide demonstration that fast fluorescence fluctuation spectroscopy is a fast and robust approach to extract information on the dynamics of molecules enclosed within subcellular nanostructures (e.g., organelles or vesicles) which are also moving in the complex cellular environment. In more detail, Raster Image Correlation Spectroscopy (RICS) performed at fast timescales (i.e., microseconds) reveals the fast motion of fluorescently labeled molecules within two exemplary dynamic subcellular nanostructures of biomedical interest, the lysosome and the insulin secretory granule (ISG). The measurement of molecular diffusion is then used to extract information on the average properties of subcellular nanostructures, such as macromolecular crowding or molecular aggregation. Concerning the lysosome, fast RICS on a fluorescent tracer allowed us to quantitatively assess the increase in organelle viscosity in the pathological condition of Krabbe disease. In the case of ISGs, fast RICS on two ISG-specific secreting peptides unveiled their differential aggregation propensity depending on intragranular concentration. Finally, a combination of fast RICS and feedback-based 3D orbital tracking was used to subtract the slow movement of subcellular nanostructures from the fast diffusion of molecules contained within them and independently validate the results. Results presented here not only demonstrate the acquired ability to address the dynamic behavior of molecules in moving, nanoscopic reference systems, but prove the relevance of this approach to advance our knowledge on cell function at the subcellular scale. MDPI 2022-07-10 /pmc/articles/PMC9323805/ /pubmed/35886970 http://dx.doi.org/10.3390/ijms23147623 Text en © 2022 by the authors. https://creativecommons.org/licenses/by/4.0/Licensee MDPI, Basel, Switzerland. This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution (CC BY) license (https://creativecommons.org/licenses/by/4.0/).
spellingShingle Article
Begarani, Filippo
D’Autilia, Francesca
Ferri, Gianmarco
Pesce, Luca
Azzarello, Fabio
De Lorenzi, Valentina
Durso, William
Del Grosso, Ambra
Cecchini, Marco
Cardarelli, Francesco
Measuring Molecular Diffusion in Dynamic Subcellular Nanostructures by Fast Raster Image Correlation Spectroscopy and 3D Orbital Tracking
title Measuring Molecular Diffusion in Dynamic Subcellular Nanostructures by Fast Raster Image Correlation Spectroscopy and 3D Orbital Tracking
title_full Measuring Molecular Diffusion in Dynamic Subcellular Nanostructures by Fast Raster Image Correlation Spectroscopy and 3D Orbital Tracking
title_fullStr Measuring Molecular Diffusion in Dynamic Subcellular Nanostructures by Fast Raster Image Correlation Spectroscopy and 3D Orbital Tracking
title_full_unstemmed Measuring Molecular Diffusion in Dynamic Subcellular Nanostructures by Fast Raster Image Correlation Spectroscopy and 3D Orbital Tracking
title_short Measuring Molecular Diffusion in Dynamic Subcellular Nanostructures by Fast Raster Image Correlation Spectroscopy and 3D Orbital Tracking
title_sort measuring molecular diffusion in dynamic subcellular nanostructures by fast raster image correlation spectroscopy and 3d orbital tracking
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9323805/
https://www.ncbi.nlm.nih.gov/pubmed/35886970
http://dx.doi.org/10.3390/ijms23147623
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