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Regulation of B cell receptor signalling by Epstein–Barr virus nuclear antigens

The cancer-associated Epstein–Barr virus (EBV) latently infects and immortalises B lymphocytes. EBV latent membrane protein 2A and EBV-encoded microRNAs are known to manipulate B cell receptor signalling to control cell growth and survival and suppress lytic replication. Here, we show that the EBV t...

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Autores principales: Khasnis, Sarika, Veenstra, Hildegonda, McClellan, Michael J., Ojeniyi, Opeoluwa, Wood, C. David, West, Michelle J.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Portland Press Ltd. 2022
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9788576/
https://www.ncbi.nlm.nih.gov/pubmed/36383217
http://dx.doi.org/10.1042/BCJ20220417
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author Khasnis, Sarika
Veenstra, Hildegonda
McClellan, Michael J.
Ojeniyi, Opeoluwa
Wood, C. David
West, Michelle J.
author_facet Khasnis, Sarika
Veenstra, Hildegonda
McClellan, Michael J.
Ojeniyi, Opeoluwa
Wood, C. David
West, Michelle J.
author_sort Khasnis, Sarika
collection PubMed
description The cancer-associated Epstein–Barr virus (EBV) latently infects and immortalises B lymphocytes. EBV latent membrane protein 2A and EBV-encoded microRNAs are known to manipulate B cell receptor signalling to control cell growth and survival and suppress lytic replication. Here, we show that the EBV transcription factors EBNA2, 3A, 3B and 3C bind to genomic sites around multiple B cell receptor (BCR) pathway genes, regulate their expression and affect BCR signalling. EBNA2 regulates the majority of BCR pathway genes associated with binding sites, where EBNA3 proteins regulate only 42% of targets predicted by binding. Both EBNA2 and 3 proteins predominantly repress BCR pathway gene expression and target some common genes. EBNA2 and at least one EBNA3 protein repress the central BCR components CD79A and CD79B and the downstream genes BLNK, CD22, CD72, NFATC1, PIK3CG and RASGRP3. Studying repression of CD79B, we show that EBNA2 decreases transcription by disrupting binding of Early B cell Factor-1 to the CD79B promoter. Consistent with repression of BCR signalling, we demonstrate that EBNA2 and EBNA3 proteins suppress the basal or active BCR signalling that culminates in NFAT activation. Additionally, we show that EBNA2, EBNA3A and EBNA3C expression can result in reductions in the active serine 473 phosphorylated form of Akt in certain cell contexts, consistent with transcriptional repression of the PI3K-Akt BCR signalling arm. Overall, we identify EBNA2, EBNA3A and EBNA3C-mediated transcription control of BCR signalling as an additional strategy through which EBV may control the growth and survival of infected B cells and maintain viral latency.
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spelling pubmed-97885762023-01-06 Regulation of B cell receptor signalling by Epstein–Barr virus nuclear antigens Khasnis, Sarika Veenstra, Hildegonda McClellan, Michael J. Ojeniyi, Opeoluwa Wood, C. David West, Michelle J. Biochem J Gene Expression & Regulation The cancer-associated Epstein–Barr virus (EBV) latently infects and immortalises B lymphocytes. EBV latent membrane protein 2A and EBV-encoded microRNAs are known to manipulate B cell receptor signalling to control cell growth and survival and suppress lytic replication. Here, we show that the EBV transcription factors EBNA2, 3A, 3B and 3C bind to genomic sites around multiple B cell receptor (BCR) pathway genes, regulate their expression and affect BCR signalling. EBNA2 regulates the majority of BCR pathway genes associated with binding sites, where EBNA3 proteins regulate only 42% of targets predicted by binding. Both EBNA2 and 3 proteins predominantly repress BCR pathway gene expression and target some common genes. EBNA2 and at least one EBNA3 protein repress the central BCR components CD79A and CD79B and the downstream genes BLNK, CD22, CD72, NFATC1, PIK3CG and RASGRP3. Studying repression of CD79B, we show that EBNA2 decreases transcription by disrupting binding of Early B cell Factor-1 to the CD79B promoter. Consistent with repression of BCR signalling, we demonstrate that EBNA2 and EBNA3 proteins suppress the basal or active BCR signalling that culminates in NFAT activation. Additionally, we show that EBNA2, EBNA3A and EBNA3C expression can result in reductions in the active serine 473 phosphorylated form of Akt in certain cell contexts, consistent with transcriptional repression of the PI3K-Akt BCR signalling arm. Overall, we identify EBNA2, EBNA3A and EBNA3C-mediated transcription control of BCR signalling as an additional strategy through which EBV may control the growth and survival of infected B cells and maintain viral latency. Portland Press Ltd. 2022-12-07 /pmc/articles/PMC9788576/ /pubmed/36383217 http://dx.doi.org/10.1042/BCJ20220417 Text en © 2022 The Author(s) https://creativecommons.org/licenses/by/4.0/This is an open access article published by Portland Press Limited on behalf of the Biochemical Society and distributed under the Creative Commons Attribution License 4.0 (CC BY) (https://creativecommons.org/licenses/by/4.0/) . Open access for this article was enabled by the participation of University of Sussex in an all-inclusive Read & Publish agreement with Portland Press and the Biochemical Society under a transformative agreement with JISC.
spellingShingle Gene Expression & Regulation
Khasnis, Sarika
Veenstra, Hildegonda
McClellan, Michael J.
Ojeniyi, Opeoluwa
Wood, C. David
West, Michelle J.
Regulation of B cell receptor signalling by Epstein–Barr virus nuclear antigens
title Regulation of B cell receptor signalling by Epstein–Barr virus nuclear antigens
title_full Regulation of B cell receptor signalling by Epstein–Barr virus nuclear antigens
title_fullStr Regulation of B cell receptor signalling by Epstein–Barr virus nuclear antigens
title_full_unstemmed Regulation of B cell receptor signalling by Epstein–Barr virus nuclear antigens
title_short Regulation of B cell receptor signalling by Epstein–Barr virus nuclear antigens
title_sort regulation of b cell receptor signalling by epstein–barr virus nuclear antigens
topic Gene Expression & Regulation
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9788576/
https://www.ncbi.nlm.nih.gov/pubmed/36383217
http://dx.doi.org/10.1042/BCJ20220417
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