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The Ig heavy chain protein but not its message controls early B cell development.

Muhammad Assad Aslam ,
Mir Farshid Alemdehy ,
Bingtao Hao ,
Peter H L Krijger ,
Colin E J Pritchard ,
Iris de Rink ,
Fitriari Izzatunnisa Muhaimin ,
Ika Nurzijah ,
Martijn van Baalen ,
Ron M Kerkhoven ,
Paul C M van den Berk ,
Jane A Skok ,
Heinz Jacobs

Abstract

Development of progenitor B cells (ProB cells) into precursor B cells (PreB cells) is dictated by immunoglobulin heavy chain checkpoint (IgHCC), where the IgHC encoded by a productively rearranged Igh allele assembles into a PreB cell receptor complex (PreBCR) to generate signals to initiate this transition and suppressing antigen receptor gene recombination, ensuring that only one productive Igh allele is expressed, a phenomenon known as Igh allelic exclusion. In contrast to a productively rearranged Igh allele, the Igh messenger RNA (mRNA) (IgHR) from a nonproductively rearranged Igh allele is degraded by nonsense-mediated decay (NMD). This fact prohibited firm conclusions regarding the contribution of stable IgHR to the molecular and developmental changes associated with the IgHCC. This point was addressed by generating the IghTer5H∆TM mouse model from IghTer5H mice having a premature termination codon at position +5 in leader exon of IghTer5H allele. This prohibited NMD, and the lack of a transmembrane region (∆TM) prevented the formation of any signaling-competent PreBCR complexes that may arise as a result of read-through translation across premature Ter5 stop codon. A highly sensitive sandwich Western blot revealed read-through translation of IghTer5H message, indicating that previous conclusions regarding a role of IgHR in establishing allelic exclusion requires further exploration. As determined by RNA sequencing (RNA-Seq), this low amount of IgHC sufficed to initiate PreB cell markers normally associated with PreBCR signaling. In contrast, the IghTer5H∆TM knock-in allele, which generated stable IgHR but no detectable IgHC, failed to induce PreB development. Our data indicate that the IgHCC is controlled at the level of IgHC and not IgHR expression.

More about this publication

Proceedings of the National Academy of Sciences of the United States of America

Volume 117
Issue nr. 49
Pages 31343-31352
Publication date 08-12-2020

Full text links

Publisher website (DOI) 10.1073/pnas.2004810117
Europe PubMed Central 33229554
Pubmed 33229554

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