Back to Search Start Over

Missing heritability in Bloom syndrome: First report of a deep intronic variant leading to pseudo-exon activation in the BLM gene.

Authors :
Backers L
Parton B
De Bruyne M
Tavernier SJ
Van Den Bogaert K
Lambrecht BN
Haerynck F
Claes KBM
Source :
Clinical genetics [Clin Genet] 2021 Feb; Vol. 99 (2), pp. 292-297. Date of Electronic Publication: 2020 Oct 19.
Publication Year :
2021

Abstract

Pathogenic biallelic variants in the BLM/RECQL3 gene cause a rare autosomal recessive disorder called Bloom syndrome (BS). This syndrome is characterized by severe growth delay, immunodeficiency, dermatological manifestations and a predisposition to a wide variety of cancers, often multiple and very early in life. Literature shows that the main mode of BLM inactivation is protein translation termination. We expanded the molecular spectrum of BS by reporting the first deep intronic variant causing intron exonisation. We describe a patient with a clinical phenotype of BS and a strong increase in sister chromatid exchanges (SCE), who was found to be compound heterozygous for a novel nonsense variant c.3379C>T, p.(Gln1127Ter) in exon 18 and a deep intronic variant c.3020-258A>G in intron 15 of the BLM gene. The deep intronic variant creates a high-quality de novo donor splice site, which leads to retention of two intron segments. Both pseudo-exons introduce a premature stop codon into the reading frame and abolish BLM protein expression, confirmed by Western Blot analysis. These findings illustrate the role of non-coding variation in Mendelian disorders and herewith highlight an unmet need in routine testing of Mendelian disorders, being the added value of RNA-based approaches to provide a complete molecular diagnosis.<br /> (© 2020 John Wiley & Sons A/S. Published by John Wiley & Sons Ltd.)

Details

Language :
English
ISSN :
1399-0004
Volume :
99
Issue :
2
Database :
MEDLINE
Journal :
Clinical genetics
Publication Type :
Academic Journal
Accession number :
33073370
Full Text :
https://doi.org/10.1111/cge.13859