4.5 Article

Vulnerable exons, like ACADM exon 5, are highly dependent on maintaining a correct balance between splicing enhancers and silencers

期刊

HUMAN MUTATION
卷 43, 期 2, 页码 253-265

出版社

WILEY-HINDAWI
DOI: 10.1002/humu.24321

关键词

aberrant splicing; exonic splicing mutations; fatty acid oxidation; MCAD deficiency; newborn screening; pre-mRNA splicing; splicing enhancer; splicing silencer

资金

  1. Danish Medical Research Council [11-107174]
  2. Det Frie Forskningsrad [4181-00515]
  3. Novo Nordisk Fonden [61310-0128]

向作者/读者索取更多资源

Study shows that different exons have varying dependencies on splicing regulatory elements and susceptibility to splicing mutations. Factors like balance between enhancers and silencers, intron length, and splice site strength influence exon definition and splicing efficiency. Inherent vulnerabilities of exons should be considered for predicting pathogenic effects of exonic mutations.
It is now widely accepted that aberrant splicing of constitutive exons is often caused by mutations affecting cis-acting splicing regulatory elements, but there is a misconception that all exons have an equal dependency on splicing regulatory elements and thus a similar susceptibility to aberrant splicing. We investigated exonic mutations in ACADM exon 5 to experimentally examine their effect on splicing and found that 7 out of 11 tested mutations affected exon inclusion, demonstrating that this constitutive exon is particularly vulnerable to exonic splicing mutations. Employing ACADM exon 5 and 6 as models, we demonstrate that the balance between splicing enhancers and silencers, flanking intron length, and flanking splice site strength are important factors that determine exon definition and splicing efficiency of the exon in question. Our study shows that two constitutive exons in ACADM have different inherent vulnerabilities to exonic splicing mutations. This suggests that in silico prediction of potential pathogenic effects on splicing from exonic mutations may be improved by also considering the inherent vulnerability of the exon. Moreover, we show that single nucleotide polymorphism that affect either of two different exonic splicing silencers, located far apart in exon 5, all protect against both immediately flanking and more distant exonic splicing mutations.

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