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Functional Specialization of Stable and Dynamic Microtubules in Protein Traffic in WIF-B Cells

We found that the magnesium salt of ilimaquinone, named 201-F, specifically disassembled dynamically unstable microtubules in fibroblasts and various epithelial cell lines. Unlike classical tubulin- interacting drugs such as nocodazole or colchicine which affect all classes of microtubules, 201-F di...

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Detalles Bibliográficos
Autores principales: Poüs, C., Chabin, K., Drechou, A., Barbot, L., Phung-Koskas, T., Settegrana, C., Bourguet-Kondracki, M.L., Maurice, M., Cassio, D., Guyot, M., Durand, G.
Formato: Texto
Lenguaje:English
Publicado: The Rockefeller University Press 1998
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC2133029/
https://www.ncbi.nlm.nih.gov/pubmed/9660870
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author Poüs, C.
Chabin, K.
Drechou, A.
Barbot, L.
Phung-Koskas, T.
Settegrana, C.
Bourguet-Kondracki, M.L.
Maurice, M.
Cassio, D.
Guyot, M.
Durand, G.
author_facet Poüs, C.
Chabin, K.
Drechou, A.
Barbot, L.
Phung-Koskas, T.
Settegrana, C.
Bourguet-Kondracki, M.L.
Maurice, M.
Cassio, D.
Guyot, M.
Durand, G.
author_sort Poüs, C.
collection PubMed
description We found that the magnesium salt of ilimaquinone, named 201-F, specifically disassembled dynamically unstable microtubules in fibroblasts and various epithelial cell lines. Unlike classical tubulin- interacting drugs such as nocodazole or colchicine which affect all classes of microtubules, 201-F did not depolymerize stable microtubules. In WIF-B–polarized hepatic cells, 201-F disrupted the Golgi complex and inhibited albumin and alpha1-antitrypsin secretion to the same extent as nocodazole. By contrast, 201-F did not impair the transport of membrane proteins to the basolateral surface, which was only affected by the total disassembly of cellular microtubules. Transcytosis of two apical membrane proteins—the alkaline phosphodiesterase B10 and dipeptidyl peptidase IV—was affected to the same extent by 201-F and nocodazole. Taken together, these results indicate that only dynamically unstable microtubules are involved in the transport of secretory proteins to the plasma membrane, and in the transcytosis of membrane proteins to the apical surface. By contrast, stable microtubules, which are not functionally affected by 201-F treatment, are involved in the transport of membrane proteins to the basolateral surface. By specifically disassembling highly dynamic microtubules, 201-F is an invaluable tool with which to study the functional specialization of stable and dynamic microtubules in living cells.
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spelling pubmed-21330292008-05-01 Functional Specialization of Stable and Dynamic Microtubules in Protein Traffic in WIF-B Cells Poüs, C. Chabin, K. Drechou, A. Barbot, L. Phung-Koskas, T. Settegrana, C. Bourguet-Kondracki, M.L. Maurice, M. Cassio, D. Guyot, M. Durand, G. J Cell Biol Articles We found that the magnesium salt of ilimaquinone, named 201-F, specifically disassembled dynamically unstable microtubules in fibroblasts and various epithelial cell lines. Unlike classical tubulin- interacting drugs such as nocodazole or colchicine which affect all classes of microtubules, 201-F did not depolymerize stable microtubules. In WIF-B–polarized hepatic cells, 201-F disrupted the Golgi complex and inhibited albumin and alpha1-antitrypsin secretion to the same extent as nocodazole. By contrast, 201-F did not impair the transport of membrane proteins to the basolateral surface, which was only affected by the total disassembly of cellular microtubules. Transcytosis of two apical membrane proteins—the alkaline phosphodiesterase B10 and dipeptidyl peptidase IV—was affected to the same extent by 201-F and nocodazole. Taken together, these results indicate that only dynamically unstable microtubules are involved in the transport of secretory proteins to the plasma membrane, and in the transcytosis of membrane proteins to the apical surface. By contrast, stable microtubules, which are not functionally affected by 201-F treatment, are involved in the transport of membrane proteins to the basolateral surface. By specifically disassembling highly dynamic microtubules, 201-F is an invaluable tool with which to study the functional specialization of stable and dynamic microtubules in living cells. The Rockefeller University Press 1998-07-13 /pmc/articles/PMC2133029/ /pubmed/9660870 Text en This article is distributed under the terms of an Attribution–Noncommercial–Share Alike–No Mirror Sites license for the first six months after the publication date (see http://www.rupress.org/terms). After six months it is available under a Creative Commons License (Attribution–Noncommercial–Share Alike 4.0 Unported license, as described at http://creativecommons.org/licenses/by-nc-sa/4.0/).
spellingShingle Articles
Poüs, C.
Chabin, K.
Drechou, A.
Barbot, L.
Phung-Koskas, T.
Settegrana, C.
Bourguet-Kondracki, M.L.
Maurice, M.
Cassio, D.
Guyot, M.
Durand, G.
Functional Specialization of Stable and Dynamic Microtubules in Protein Traffic in WIF-B Cells
title Functional Specialization of Stable and Dynamic Microtubules in Protein Traffic in WIF-B Cells
title_full Functional Specialization of Stable and Dynamic Microtubules in Protein Traffic in WIF-B Cells
title_fullStr Functional Specialization of Stable and Dynamic Microtubules in Protein Traffic in WIF-B Cells
title_full_unstemmed Functional Specialization of Stable and Dynamic Microtubules in Protein Traffic in WIF-B Cells
title_short Functional Specialization of Stable and Dynamic Microtubules in Protein Traffic in WIF-B Cells
title_sort functional specialization of stable and dynamic microtubules in protein traffic in wif-b cells
topic Articles
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC2133029/
https://www.ncbi.nlm.nih.gov/pubmed/9660870
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