Intron retention resulting from a silent mutation in the VWF gene that structurally influences the 5′ splice site

Disease-associated silent mutations are considered to affect the accurate pre–messenger RNA (mRNA) splicing either by influencing regulatory elements, leading to exon skipping, or by creating a new cryptic splice site. This study describes a new molecular pathological mechanism by which a silent mut...

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Veröffentlicht in:Blood 2016-10, Vol.128 (17), p.2144-2152
Hauptverfasser: Yadegari, Hamideh, Biswas, Arijit, Akhter, Mohammad Suhail, Driesen, Julia, Ivaskevicius, Vytautas, Marquardt, Natascha, Oldenburg, Johannes
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Sprache:eng
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Zusammenfassung:Disease-associated silent mutations are considered to affect the accurate pre–messenger RNA (mRNA) splicing either by influencing regulatory elements, leading to exon skipping, or by creating a new cryptic splice site. This study describes a new molecular pathological mechanism by which a silent mutation inhibits splicing and leads to intron retention. We identified a heterozygous silent mutation, c.7464C>T, in exon 44 of the von Willebrand factor (VWF) gene in a family with type 1 von Willebrand disease. In vivo and ex vivo transcript analysis revealed an aberrantly spliced transcript, with intron 44 retained in the mRNA, implying disruption of the first catalytic step of splicing at the 5′ splice site (5′ss). The abnormal transcript with the retained intronic region coded a truncated protein that lacked the carboxy-terminal end of the VWF protein. Confocal immunofluorescence characterizations of blood outgrowth endothelial cells derived from the patient confirmed the presence of the truncated protein by demonstrating accumulation of VWF in the endoplasmic reticulum. In silico pre-mRNA secondary and tertiary structure analysis revealed that this substitution, despite its distal position from the 5′ss (85 bp downstream), induces cis alterations in pre-mRNA structure that result in the formation of a stable hairpin at the 5′ss. This hairpin sequesters the 5′ss residues involved in U1 small nuclear RNA interactions, thereby inhibiting excision of the pre-mRNA intronic region. This study is the first to show the allosteric-like/far-reaching effect of an exonic variation on pre-mRNA splicing that is mediated by structural changes in the pre-mRNA. •This study demonstrates allosteric RNA structure alteration resulting from an exonic variation, thereby interfering with splicing.•This study details a novel mechanism by which silent mutation distant to the 5′ splice site could still result in intron retention.
ISSN:0006-4971
1528-0020
DOI:10.1182/blood-2016-02-699686