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Stoichiometry and intracellular fate of TRIM-containing TCR complexes

BACKGROUND: Studying the stoichiometry and intracellular trafficking of the T cell antigen receptor (TCR) is pivotal in understanding its mechanisms of activation. The αβTCR includes the antigen-binding TCRαβ heterodimer as well as the signal transducing CD3εγ, CD3εδ and ζ(2 )subunits. Although the...

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Autores principales: Swamy, Mahima, Siegers, Gabrielle M, Fiala, Gina J, Molnar, Eszter, Dopfer, Elaine P, Fisch, Paul, Schraven, Burkhart, Schamel, Wolfgang WA
Formato: Texto
Lenguaje:English
Publicado: BioMed Central 2010
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC2848047/
https://www.ncbi.nlm.nih.gov/pubmed/20298603
http://dx.doi.org/10.1186/1478-811X-8-5
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author Swamy, Mahima
Siegers, Gabrielle M
Fiala, Gina J
Molnar, Eszter
Dopfer, Elaine P
Fisch, Paul
Schraven, Burkhart
Schamel, Wolfgang WA
author_facet Swamy, Mahima
Siegers, Gabrielle M
Fiala, Gina J
Molnar, Eszter
Dopfer, Elaine P
Fisch, Paul
Schraven, Burkhart
Schamel, Wolfgang WA
author_sort Swamy, Mahima
collection PubMed
description BACKGROUND: Studying the stoichiometry and intracellular trafficking of the T cell antigen receptor (TCR) is pivotal in understanding its mechanisms of activation. The αβTCR includes the antigen-binding TCRαβ heterodimer as well as the signal transducing CD3εγ, CD3εδ and ζ(2 )subunits. Although the TCR-interacting molecule (TRIM) is also part of the αβTCR complex, it has not been included in most reports so far. RESULTS: We used the native antibody-based mobility shift (NAMOS) assay in a first dimension (1D) blue native (BN)-PAGE and a 2D BN-/BN-PAGE to demonstrate that the stoichiometry of the digitonin-solublized TRIM-containing αβTCR is TCRαβCD3ε(2)γδζ(2)TRIM(2). Smaller αβTCR complexes possess a TCRαβ CD3ε(2)γδζ(2 )stoichiometry. Complexes of these sizes were detected in T cell lines as well as in primary human and mouse T cells. Stimulating the αβTCR with anti-CD3 antibodies, we demonstrate by confocal laser scanning microscopy that CD3ε colocalizes with ζ and both are degraded upon prolonged stimulation, possibly within the lysosomal compartment. In contrast, a substantial fraction of TRIM does not colocalize with ζ. Furthermore, TRIM neither moves to lysosomes nor is degraded. Immunoprecipitation studies and BN-PAGE indicate that TRIM also associates with the γδTCR. CONCLUSIONS: Small αβTCR complexes have a TCRαβ CD3ε(2)γδζ(2 )stoichiometry; whereas those associated with one TRIM dimer are TCRαβ CD3ε(2)γδζ(2)TRIM(2). TRIM is differentially processed compared to CD3 and ζ subunits after T cell activation and is not degraded. The γδTCR also associates with TRIM.
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spelling pubmed-28480472010-04-01 Stoichiometry and intracellular fate of TRIM-containing TCR complexes Swamy, Mahima Siegers, Gabrielle M Fiala, Gina J Molnar, Eszter Dopfer, Elaine P Fisch, Paul Schraven, Burkhart Schamel, Wolfgang WA Cell Commun Signal Research BACKGROUND: Studying the stoichiometry and intracellular trafficking of the T cell antigen receptor (TCR) is pivotal in understanding its mechanisms of activation. The αβTCR includes the antigen-binding TCRαβ heterodimer as well as the signal transducing CD3εγ, CD3εδ and ζ(2 )subunits. Although the TCR-interacting molecule (TRIM) is also part of the αβTCR complex, it has not been included in most reports so far. RESULTS: We used the native antibody-based mobility shift (NAMOS) assay in a first dimension (1D) blue native (BN)-PAGE and a 2D BN-/BN-PAGE to demonstrate that the stoichiometry of the digitonin-solublized TRIM-containing αβTCR is TCRαβCD3ε(2)γδζ(2)TRIM(2). Smaller αβTCR complexes possess a TCRαβ CD3ε(2)γδζ(2 )stoichiometry. Complexes of these sizes were detected in T cell lines as well as in primary human and mouse T cells. Stimulating the αβTCR with anti-CD3 antibodies, we demonstrate by confocal laser scanning microscopy that CD3ε colocalizes with ζ and both are degraded upon prolonged stimulation, possibly within the lysosomal compartment. In contrast, a substantial fraction of TRIM does not colocalize with ζ. Furthermore, TRIM neither moves to lysosomes nor is degraded. Immunoprecipitation studies and BN-PAGE indicate that TRIM also associates with the γδTCR. CONCLUSIONS: Small αβTCR complexes have a TCRαβ CD3ε(2)γδζ(2 )stoichiometry; whereas those associated with one TRIM dimer are TCRαβ CD3ε(2)γδζ(2)TRIM(2). TRIM is differentially processed compared to CD3 and ζ subunits after T cell activation and is not degraded. The γδTCR also associates with TRIM. BioMed Central 2010-03-18 /pmc/articles/PMC2848047/ /pubmed/20298603 http://dx.doi.org/10.1186/1478-811X-8-5 Text en Copyright ©2010 Swamy et al; licensee BioMed Central Ltd. http://creativecommons.org/licenses/by/2.0 This is an Open Access article distributed under the terms of the Creative Commons Attribution License (http://creativecommons.org/licenses/by/2.0), which permits unrestricted use, distribution, and reproduction in any medium, provided the original work is properly cited.
spellingShingle Research
Swamy, Mahima
Siegers, Gabrielle M
Fiala, Gina J
Molnar, Eszter
Dopfer, Elaine P
Fisch, Paul
Schraven, Burkhart
Schamel, Wolfgang WA
Stoichiometry and intracellular fate of TRIM-containing TCR complexes
title Stoichiometry and intracellular fate of TRIM-containing TCR complexes
title_full Stoichiometry and intracellular fate of TRIM-containing TCR complexes
title_fullStr Stoichiometry and intracellular fate of TRIM-containing TCR complexes
title_full_unstemmed Stoichiometry and intracellular fate of TRIM-containing TCR complexes
title_short Stoichiometry and intracellular fate of TRIM-containing TCR complexes
title_sort stoichiometry and intracellular fate of trim-containing tcr complexes
topic Research
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC2848047/
https://www.ncbi.nlm.nih.gov/pubmed/20298603
http://dx.doi.org/10.1186/1478-811X-8-5
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