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Updated: Nov 25, 2025

Targeted Next-generation Sequencing and Bioinformatics Pipeline to Evaluate Genetic Determinants of Constitutional Disease
Published on: April 4, 2018
Splicing analysis of SLC40A1 missense variations and contribution to hemochromatosis type 4 phenotypes
Marlène Le Tertre1, Chandran Ka2, Loann Raud3
1Univ Brest, Inserm, EFS, UMR1078, GGB, F-29200, France; CHRU de Brest, Service de Génétique Médicale et Biologie de la Reproduction, Laboratoire de Génétique Moléculaire et Histocompatibilité, F-29200, France.
Insights
Splicing defects rarely cause hemochromatosis type 4 (ferroportin disease), a primary iron overload disorder. Researchers found only two of fifteen SLC40A1 variants impacted splicing, with one potentially causing a gain-of-function.
Area of Science:
- Genetics
- Molecular Biology
- Human Physiology
Background:
- Hemochromatosis type 4, or ferroportin disease, is a significant cause of primary iron overload.
- It is primarily linked to SLC40A1 gene missense variations, presenting diverse clinical symptoms.
- The role of splicing defects in this disease remains largely unexplored.
Purpose of the Study:
- To investigate whether specific SLC40A1 missense mutations cause splicing defects in ferroportin disease.
- To analyze the functional impact of identified splicing alterations on ferroportin iron export.
- To determine the frequency and mechanisms of splicing mutations in hemochromatosis type 4.
Main Methods:
- Selection of 58 genetic variants from literature based on nucleotide change and iron overload evidence.
- In silico analysis of variants using prediction tools.
- In vitro midigene splicing assays for 15 prioritized variants.
- Functional assessment of ferroportin iron export for specific variants.
Main Results:
- Only two of 15 tested variants showed splicing alterations.
- The c.1402G>A (p.Gly468Ser) variant disrupted splicing, creating a truncated protein, but did not affect iron export function.
- The c.430A>G (p.Asn144Asp) variant promoted exon 5 inclusion, suggesting a potential gain-of-function mechanism.
Conclusions:
- Splicing mutations are an infrequent cause of hemochromatosis type 4.
- The p.Gly468Ser substitution's lack of impact on iron export function was a novel finding.
- Further research into exon 5 splicing regulation is needed to understand SLC40A1 transcript production and physiological roles.
Abstract:
Hemochromatosis type 4, or ferroportin disease, is considered as the second leading cause of primary iron overload after HFE-related hemochromatosis. The disease, which is predominantly associated with missense variations in the SLC40A1 gene, is characterized by wide clinical heterogeneity. We tested the possibility that some of the reported missense mutations, despite their positions within exons, cause splicing defects. Fifty-eight genetic variants were selected from the literature based on two criteria: a precise description of the nucleotide change and individual evidence of iron overload. The selected variants were investigated by different in silico prediction tools and prioritized for midigene splicing assays. Of the 15 variations tested in vitro, only two were associated with splicing changes. We confirm that the c.1402G>A transition (p.Gly468Ser) disrupts the exon 7 donor site, leading to the use of an exonic cryptic splicing site and the generation of a truncated reading frame. We observed, for the first time, that the p.Gly468Ser substitution has no effect on the ferroportin iron export function. We demonstrate alternative splicing of exon 5 in different cell lines and show that the c.430A>G (p.Asn144Asp) variant promotes exon 5 inclusion. This could be part of a gain-of-function mechanism. We conclude that splicing mutations rarely contribute to hemochromatosis type 4 phenotypes. An in-depth investigation of exon 5 auxiliary splicing sequences may help to elucidate the mechanism by which splicing regulatory proteins regulate the production of the full length SLC40A1 transcript and to clarify its physiological importance.
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