4.7 Article

Proof-of-Concept: Antisense Oligonucleotide Mediated Skipping of Fibrillin-1 Exon 52

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出版社

MDPI
DOI: 10.3390/ijms22073479

关键词

Marfan syndrome; fibrillin-1; antisense oligonucleotides; exon skipping; splice-switching

资金

  1. NHMRC [APP 1144791]
  2. Murdoch University

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Marfan syndrome is a dominantly inherited connective tissue disorder caused by mutations in the FBN1 gene. In vitro experiments have shown that exclusion of exon 52 using antisense oligonucleotides has the potential to treat the disease by restoring monomer homology. More research is needed to explore the impact of exon skipping on fibrillin-1 function and its therapeutic implications.
Marfan syndrome is one of the most common dominantly inherited connective tissue disorders, affecting 2-3 in 10,000 individuals, and is caused by one of over 2800 unique FBN1 mutations. Mutations in FBN1 result in reduced fibrillin-1 expression, or the production of two different fibrillin-1 monomers unable to interact to form functional microfibrils. Here, we describe in vitro evaluation of antisense oligonucleotides designed to mediate exclusion of FBN1 exon 52 during pre-mRNA splicing to restore monomer homology. Antisense oligonucleotide sequences were screened in healthy control fibroblasts. The most effective sequence was synthesised as a phosphorodiamidate morpholino oligomer, a chemistry shown to be safe and effective clinically. We show that exon 52 can be excluded in up to 100% of FBN1 transcripts in healthy control fibroblasts transfected with PMO52. Immunofluorescent staining revealed the loss of fibrillin 1 fibres with similar to 50% skipping and the subsequent re-appearance of fibres with >80% skipping. However, the effect of exon skipping on the function of the induced fibrillin-1 isoform remains to be explored. Therefore, these findings demonstrate proof-of-concept that exclusion of an exon from FBN1 pre-mRNA can result in internally truncated but identical monomers capable of forming fibres and lay a foundation for further investigation to determine the effect of exon skipping on fibrillin-1 function.

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