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Novel bimodal TRBD1-TRBD2 rearrangements with dual or absent D-region contribute to TRB V-(D)-J combinatorial diversity

T-cell receptor (TR) diversity of the variable domains is generated by recombination of both the alpha (TRA) and beta (TRB) chains. The textbook process of TRB chain production starts with TRBD and TRBJ gene rearrangement, followed by the rearrangement of a TRBV gene to the partially rearranged D-J...

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Autores principales: Smirnova, Anastasia O., Miroshnichenkova, Anna M., Belyaeva, Laima D., Kelmanson, Ilya V., Lebedev, Yuri B., Mamedov, Ilgar Z., Chudakov, Dmitriy M., Komkov, Alexander Y.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Frontiers Media S.A. 2023
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10513440/
https://www.ncbi.nlm.nih.gov/pubmed/37744336
http://dx.doi.org/10.3389/fimmu.2023.1245175
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author Smirnova, Anastasia O.
Miroshnichenkova, Anna M.
Belyaeva, Laima D.
Kelmanson, Ilya V.
Lebedev, Yuri B.
Mamedov, Ilgar Z.
Chudakov, Dmitriy M.
Komkov, Alexander Y.
author_facet Smirnova, Anastasia O.
Miroshnichenkova, Anna M.
Belyaeva, Laima D.
Kelmanson, Ilya V.
Lebedev, Yuri B.
Mamedov, Ilgar Z.
Chudakov, Dmitriy M.
Komkov, Alexander Y.
author_sort Smirnova, Anastasia O.
collection PubMed
description T-cell receptor (TR) diversity of the variable domains is generated by recombination of both the alpha (TRA) and beta (TRB) chains. The textbook process of TRB chain production starts with TRBD and TRBJ gene rearrangement, followed by the rearrangement of a TRBV gene to the partially rearranged D-J gene. Unsuccessful V-D-J TRB rearrangements lead to apoptosis of the cell. Here, we performed deep sequencing of the poorly explored pool of partial TRBD1-TRBD2 rearrangements in T-cell genomic DNA. We reconstructed full repertoires of human partial TRBD1-TRBD2 rearrangements using novel sequencing and validated them by detecting V-D-J recombination-specific byproducts: excision circles containing the recombination signal (RS) joint 5’D2-RS – 3’D1-RS. Identified rearrangements were in compliance with the classical 12/23 rule, common for humans, rats, and mice and contained typical V-D-J recombination footprints. Interestingly, we detected a bimodal distribution of D-D junctions indicating two active recombination sites producing long and short D-D rearrangements. Long TRB D-D rearrangements with two D-regions are coding joints D1-D2 remaining classically on the chromosome. The short TRB D-D rearrangements with no D-region are signal joints, the coding joint D1-D2 being excised from the chromosome. They both contribute to the TRB V-(D)-J combinatorial diversity. Indeed, short D-D rearrangements may be followed by direct V-J2 recombination. Long D-D rearrangements may recombine further with J2 and V genes forming partial D1-D2-J2 and then complete V-D1-D2-J2 rearrangement. Productive TRB V-D1-D2-J2 chains are present and expressed in thousands of clones of human antigen-experienced memory T cells proving their capacity for antigen recognition and actual participation in the immune response.
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spelling pubmed-105134402023-09-22 Novel bimodal TRBD1-TRBD2 rearrangements with dual or absent D-region contribute to TRB V-(D)-J combinatorial diversity Smirnova, Anastasia O. Miroshnichenkova, Anna M. Belyaeva, Laima D. Kelmanson, Ilya V. Lebedev, Yuri B. Mamedov, Ilgar Z. Chudakov, Dmitriy M. Komkov, Alexander Y. Front Immunol Immunology T-cell receptor (TR) diversity of the variable domains is generated by recombination of both the alpha (TRA) and beta (TRB) chains. The textbook process of TRB chain production starts with TRBD and TRBJ gene rearrangement, followed by the rearrangement of a TRBV gene to the partially rearranged D-J gene. Unsuccessful V-D-J TRB rearrangements lead to apoptosis of the cell. Here, we performed deep sequencing of the poorly explored pool of partial TRBD1-TRBD2 rearrangements in T-cell genomic DNA. We reconstructed full repertoires of human partial TRBD1-TRBD2 rearrangements using novel sequencing and validated them by detecting V-D-J recombination-specific byproducts: excision circles containing the recombination signal (RS) joint 5’D2-RS – 3’D1-RS. Identified rearrangements were in compliance with the classical 12/23 rule, common for humans, rats, and mice and contained typical V-D-J recombination footprints. Interestingly, we detected a bimodal distribution of D-D junctions indicating two active recombination sites producing long and short D-D rearrangements. Long TRB D-D rearrangements with two D-regions are coding joints D1-D2 remaining classically on the chromosome. The short TRB D-D rearrangements with no D-region are signal joints, the coding joint D1-D2 being excised from the chromosome. They both contribute to the TRB V-(D)-J combinatorial diversity. Indeed, short D-D rearrangements may be followed by direct V-J2 recombination. Long D-D rearrangements may recombine further with J2 and V genes forming partial D1-D2-J2 and then complete V-D1-D2-J2 rearrangement. Productive TRB V-D1-D2-J2 chains are present and expressed in thousands of clones of human antigen-experienced memory T cells proving their capacity for antigen recognition and actual participation in the immune response. Frontiers Media S.A. 2023-09-07 /pmc/articles/PMC10513440/ /pubmed/37744336 http://dx.doi.org/10.3389/fimmu.2023.1245175 Text en Copyright © 2023 Smirnova, Miroshnichenkova, Belyaeva, Kelmanson, Lebedev, Mamedov, Chudakov and Komkov https://creativecommons.org/licenses/by/4.0/This is an open-access article distributed under the terms of the Creative Commons Attribution License (CC BY). The use, distribution or reproduction in other forums is permitted, provided the original author(s) and the copyright owner(s) are credited and that the original publication in this journal is cited, in accordance with accepted academic practice. No use, distribution or reproduction is permitted which does not comply with these terms.
spellingShingle Immunology
Smirnova, Anastasia O.
Miroshnichenkova, Anna M.
Belyaeva, Laima D.
Kelmanson, Ilya V.
Lebedev, Yuri B.
Mamedov, Ilgar Z.
Chudakov, Dmitriy M.
Komkov, Alexander Y.
Novel bimodal TRBD1-TRBD2 rearrangements with dual or absent D-region contribute to TRB V-(D)-J combinatorial diversity
title Novel bimodal TRBD1-TRBD2 rearrangements with dual or absent D-region contribute to TRB V-(D)-J combinatorial diversity
title_full Novel bimodal TRBD1-TRBD2 rearrangements with dual or absent D-region contribute to TRB V-(D)-J combinatorial diversity
title_fullStr Novel bimodal TRBD1-TRBD2 rearrangements with dual or absent D-region contribute to TRB V-(D)-J combinatorial diversity
title_full_unstemmed Novel bimodal TRBD1-TRBD2 rearrangements with dual or absent D-region contribute to TRB V-(D)-J combinatorial diversity
title_short Novel bimodal TRBD1-TRBD2 rearrangements with dual or absent D-region contribute to TRB V-(D)-J combinatorial diversity
title_sort novel bimodal trbd1-trbd2 rearrangements with dual or absent d-region contribute to trb v-(d)-j combinatorial diversity
topic Immunology
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10513440/
https://www.ncbi.nlm.nih.gov/pubmed/37744336
http://dx.doi.org/10.3389/fimmu.2023.1245175
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