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Protein Diffusion in Mammalian Cell Cytoplasm

We introduce a new method for mesoscopic modeling of protein diffusion in an entire cell. This method is based on the construction of a three-dimensional digital model cell from confocal microscopy data. The model cell is segmented into the cytoplasm, nucleus, plasma membrane, and nuclear envelope,...

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Autores principales: Kühn, Thomas, Ihalainen, Teemu O., Hyväluoma, Jari, Dross, Nicolas, Willman, Sami F., Langowski, Jörg, Vihinen-Ranta, Maija, Timonen, Jussi
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Public Library of Science 2011
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3158749/
https://www.ncbi.nlm.nih.gov/pubmed/21886771
http://dx.doi.org/10.1371/journal.pone.0022962
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author Kühn, Thomas
Ihalainen, Teemu O.
Hyväluoma, Jari
Dross, Nicolas
Willman, Sami F.
Langowski, Jörg
Vihinen-Ranta, Maija
Timonen, Jussi
author_facet Kühn, Thomas
Ihalainen, Teemu O.
Hyväluoma, Jari
Dross, Nicolas
Willman, Sami F.
Langowski, Jörg
Vihinen-Ranta, Maija
Timonen, Jussi
author_sort Kühn, Thomas
collection PubMed
description We introduce a new method for mesoscopic modeling of protein diffusion in an entire cell. This method is based on the construction of a three-dimensional digital model cell from confocal microscopy data. The model cell is segmented into the cytoplasm, nucleus, plasma membrane, and nuclear envelope, in which environment protein motion is modeled by fully numerical mesoscopic methods. Finer cellular structures that cannot be resolved with the imaging technique, which significantly affect protein motion, are accounted for in this method by assigning an effective, position-dependent porosity to the cell. This porosity can also be determined by confocal microscopy using the equilibrium distribution of a non-binding fluorescent protein. Distinction can now be made within this method between diffusion in the liquid phase of the cell (cytosol/nucleosol) and the cytoplasm/nucleoplasm. Here we applied the method to analyze fluorescence recovery after photobleach (FRAP) experiments in which the diffusion coefficient of a freely-diffusing model protein was determined for two different cell lines, and to explain the clear difference typically observed between conventional FRAP results and those of fluorescence correlation spectroscopy (FCS). A large difference was found in the FRAP experiments between diffusion in the cytoplasm/nucleoplasm and in the cytosol/nucleosol, for all of which the diffusion coefficients were determined. The cytosol results were found to be in very good agreement with those by FCS.
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spelling pubmed-31587492011-08-30 Protein Diffusion in Mammalian Cell Cytoplasm Kühn, Thomas Ihalainen, Teemu O. Hyväluoma, Jari Dross, Nicolas Willman, Sami F. Langowski, Jörg Vihinen-Ranta, Maija Timonen, Jussi PLoS One Research Article We introduce a new method for mesoscopic modeling of protein diffusion in an entire cell. This method is based on the construction of a three-dimensional digital model cell from confocal microscopy data. The model cell is segmented into the cytoplasm, nucleus, plasma membrane, and nuclear envelope, in which environment protein motion is modeled by fully numerical mesoscopic methods. Finer cellular structures that cannot be resolved with the imaging technique, which significantly affect protein motion, are accounted for in this method by assigning an effective, position-dependent porosity to the cell. This porosity can also be determined by confocal microscopy using the equilibrium distribution of a non-binding fluorescent protein. Distinction can now be made within this method between diffusion in the liquid phase of the cell (cytosol/nucleosol) and the cytoplasm/nucleoplasm. Here we applied the method to analyze fluorescence recovery after photobleach (FRAP) experiments in which the diffusion coefficient of a freely-diffusing model protein was determined for two different cell lines, and to explain the clear difference typically observed between conventional FRAP results and those of fluorescence correlation spectroscopy (FCS). A large difference was found in the FRAP experiments between diffusion in the cytoplasm/nucleoplasm and in the cytosol/nucleosol, for all of which the diffusion coefficients were determined. The cytosol results were found to be in very good agreement with those by FCS. Public Library of Science 2011-08-19 /pmc/articles/PMC3158749/ /pubmed/21886771 http://dx.doi.org/10.1371/journal.pone.0022962 Text en Kühn 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
Kühn, Thomas
Ihalainen, Teemu O.
Hyväluoma, Jari
Dross, Nicolas
Willman, Sami F.
Langowski, Jörg
Vihinen-Ranta, Maija
Timonen, Jussi
Protein Diffusion in Mammalian Cell Cytoplasm
title Protein Diffusion in Mammalian Cell Cytoplasm
title_full Protein Diffusion in Mammalian Cell Cytoplasm
title_fullStr Protein Diffusion in Mammalian Cell Cytoplasm
title_full_unstemmed Protein Diffusion in Mammalian Cell Cytoplasm
title_short Protein Diffusion in Mammalian Cell Cytoplasm
title_sort protein diffusion in mammalian cell cytoplasm
topic Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3158749/
https://www.ncbi.nlm.nih.gov/pubmed/21886771
http://dx.doi.org/10.1371/journal.pone.0022962
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