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Updated: Jun 16, 2026

Evaluation of Exon Inclusion Induced by Splice Switching Antisense Oligonucleotides in SMA Patient Fibroblasts
Published on: May 11, 2018
Novel exon nucleotide substitution at the splice junction causes a neonatal Marfan syndrome
1Department of Obstetrics and Gynecology, National Cheng Kung University Hospital, Douliou Branch, Yunlin, Taiwan.
Abstract:
The fibrillin-1 gene (FBN1) mutations are associated with a broad spectrum of disorders including Marfan syndrome (MFS) and show great clinical heterogeneity. An underrepresentation for mutations leading to premature termination codon (PTC) in FBN1 exons 24-32 was found in neonatal or severe MFS but the underlying cause was unclear. This study thoroughly examined two FBN1 mutations on exons 24-32 region to illustrate the molecular mechanisms underlying these FBN1 mutations on MFS etiology. Two nucleotide substitutions, c.3208G> C, the last nucleotide of exon 26, and c.3209A>G, the first nucleotide of exon 27, affecting the same amino acid, p.D1070H and p.D1070G, respectively, gave very different phenotypes. We demonstrate that c.3208G>C generates two alternatively spliced transcripts, while c.3209A>G does not affect the splicing. We further demonstrate that the aberrantly spliced transcripts do not go through nonsense-mediated decay, but rather produce unstable, premature protein peptides that are degraded by endoplasmic reticulum associated degradation. The molecular mechanism outlined here defines a model for the pathogenesis of PTC-containing mutation within the exons 24-32 of FBN1 in MFS. Furthermore, our data suggest that PTC mutation within this region may lead to early lethality in neonatal MFS.
Insights
Fibrillin-1 gene mutations cause Marfan syndrome. This study reveals how specific mutations in exons 24-32 lead to severe MFS by producing unstable proteins, not premature decay.
Area of Science:
- Genetics
- Molecular Biology
- Medical Genetics
Background:
- Mutations in the fibrillin-1 gene (FBN1) are linked to Marfan syndrome (MFS), a condition with diverse clinical presentations.
- A notable underrepresentation of premature termination codon (PTC) mutations in FBN1 exons 24-32 was observed in severe neonatal MFS, with the underlying reasons remaining unclear.
Observation:
- Two distinct nucleotide substitutions within FBN1 exons 24-32 (c.3208G>C and c.3209A>G) resulted in different MFS phenotypes.
- The c.3208G>C mutation altered splicing, generating aberrant transcripts, while c.3209A>G did not impact splicing.
Findings:
- Aberrantly spliced transcripts from the c.3208G>C mutation were not degraded by nonsense-mediated decay.
- These transcripts led to unstable, premature fibrillin-1 protein peptides targeted for degradation via endoplasmic reticulum-associated degradation (ERAD).
Implications:
- This study elucidates a novel molecular mechanism for FBN1 PTC mutations in MFS pathogenesis.
- PTC mutations in FBN1 exons 24-32 may contribute to the early lethality observed in some neonatal MFS cases.
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