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Early Assembly Step of a Retroviral Envelope Glycoprotein: Analysis Using a Dominant Negative Assay

As for most integral membrane proteins, the intracellular transport of retroviral envelope glycoproteins depends on proper folding and oligomeric assembly in the ER. In this study, we considered the hypothesis that a panel of 22 transport-defective mutants of the human T cell leukemia virus type 1 e...

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Autores principales: Rosenberg, Arielle R., Delamarre, Lélia, Pique, Claudine, Le Blanc, Isabelle, Griffith, Graziella, Dokhélar, Marie-Christine
Formato: Texto
Lenguaje:English
Publicado: The Rockefeller University Press 1999
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC2148214/
https://www.ncbi.nlm.nih.gov/pubmed/10189368
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author Rosenberg, Arielle R.
Delamarre, Lélia
Pique, Claudine
Le Blanc, Isabelle
Griffith, Graziella
Dokhélar, Marie-Christine
author_facet Rosenberg, Arielle R.
Delamarre, Lélia
Pique, Claudine
Le Blanc, Isabelle
Griffith, Graziella
Dokhélar, Marie-Christine
author_sort Rosenberg, Arielle R.
collection PubMed
description As for most integral membrane proteins, the intracellular transport of retroviral envelope glycoproteins depends on proper folding and oligomeric assembly in the ER. In this study, we considered the hypothesis that a panel of 22 transport-defective mutants of the human T cell leukemia virus type 1 envelope glycoprotein might be defective in ER assembly. Upon cell cotransfection with wild-type envelope, however, the vast majority of these transport-defective mutants (21 of 22) exerted a specific trans-dominant negative effect. This effect was due to random dimerization of the mutated and wild-type glycoproteins that prevented the intracellular transport of the latter. This unexpected result suggests that association of glycoprotein monomers precedes the completion of folding. The only mutation that impaired this early assembly was located at the NH(2) terminus of the protein. COOH-terminally truncated, soluble forms of the glycoprotein were also trans-dominant negative provided that their NH(2) terminus was intact. The leucine zipper-like domain, although involved in oligomerization of the envelope glycoproteins at the cell surface, did not contribute to their intracellular assembly. We propose that, at a step subsequent to translation, but preceding complete folding of the monomers, glycoproteins assemble via their NH(2)-terminal domains, which, in turn, permits their cooperative folding.
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spelling pubmed-21482142008-05-01 Early Assembly Step of a Retroviral Envelope Glycoprotein: Analysis Using a Dominant Negative Assay Rosenberg, Arielle R. Delamarre, Lélia Pique, Claudine Le Blanc, Isabelle Griffith, Graziella Dokhélar, Marie-Christine J Cell Biol Regular Articles As for most integral membrane proteins, the intracellular transport of retroviral envelope glycoproteins depends on proper folding and oligomeric assembly in the ER. In this study, we considered the hypothesis that a panel of 22 transport-defective mutants of the human T cell leukemia virus type 1 envelope glycoprotein might be defective in ER assembly. Upon cell cotransfection with wild-type envelope, however, the vast majority of these transport-defective mutants (21 of 22) exerted a specific trans-dominant negative effect. This effect was due to random dimerization of the mutated and wild-type glycoproteins that prevented the intracellular transport of the latter. This unexpected result suggests that association of glycoprotein monomers precedes the completion of folding. The only mutation that impaired this early assembly was located at the NH(2) terminus of the protein. COOH-terminally truncated, soluble forms of the glycoprotein were also trans-dominant negative provided that their NH(2) terminus was intact. The leucine zipper-like domain, although involved in oligomerization of the envelope glycoproteins at the cell surface, did not contribute to their intracellular assembly. We propose that, at a step subsequent to translation, but preceding complete folding of the monomers, glycoproteins assemble via their NH(2)-terminal domains, which, in turn, permits their cooperative folding. The Rockefeller University Press 1999-04-05 /pmc/articles/PMC2148214/ /pubmed/10189368 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 Regular Articles
Rosenberg, Arielle R.
Delamarre, Lélia
Pique, Claudine
Le Blanc, Isabelle
Griffith, Graziella
Dokhélar, Marie-Christine
Early Assembly Step of a Retroviral Envelope Glycoprotein: Analysis Using a Dominant Negative Assay
title Early Assembly Step of a Retroviral Envelope Glycoprotein: Analysis Using a Dominant Negative Assay
title_full Early Assembly Step of a Retroviral Envelope Glycoprotein: Analysis Using a Dominant Negative Assay
title_fullStr Early Assembly Step of a Retroviral Envelope Glycoprotein: Analysis Using a Dominant Negative Assay
title_full_unstemmed Early Assembly Step of a Retroviral Envelope Glycoprotein: Analysis Using a Dominant Negative Assay
title_short Early Assembly Step of a Retroviral Envelope Glycoprotein: Analysis Using a Dominant Negative Assay
title_sort early assembly step of a retroviral envelope glycoprotein: analysis using a dominant negative assay
topic Regular Articles
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC2148214/
https://www.ncbi.nlm.nih.gov/pubmed/10189368
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