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Clinical and Molecular Characterization of SMAD4 Splicing Variants in Patients with Juvenile Polyposis Syndrome
Giovanna Forte1, Antonia Lucia Buonadonna1, Candida Fasano1
1Medical Genetics, National Institute of Gastroenterology-IRCCS "Saverio de Bellis" Research Hospital, 70013 Castellana Grotte, Italy.
Insights
This study identifies novel SMAD4 gene splicing variants in families with juvenile polyposis syndrome and gastrointestinal cancer. These findings highlight the importance of analyzing RNA for accurate genetic variant interpretation in JPS patients.
Area of Science:
- Genetics
- Molecular Biology
- Oncology
Background:
- Juvenile polyposis syndrome (JPS) is an inherited disorder increasing the risk of gastrointestinal (GI) malignancy.
- Germline variants in the SMAD4 gene cause a subset of JPS cases, with most known variants being missense, nonsense, or frameshift mutations.
Observation:
- Two unrelated Italian families with JPS and/or GI cancer presented with novel SMAD4 intronic variants (c.424+5G>A and c.425-9A>G).
- In silico, in vitro minigene assays, and RT-PCR demonstrated that these variants cause aberrant SMAD4 splicing through exonization of intronic sequences, leading to premature stop codons and truncated proteins.
Findings:
- The identified SMAD4 intronic variants result in aberrant splicing, leading to premature termination of protein synthesis.
- This expands the known spectrum of SMAD4 germline alterations associated with JPS and GI cancer.
Implications:
- Functional characterization of SMAD4 splicing variants via RNA analysis is crucial for accurate genetic variant interpretation.
- This research aids in providing tailored genetic counseling, management, and surveillance strategies for patients with JPS and GI polyposis or cancer.
Abstract:
Juvenile polyposis syndrome (JPS) is an inherited autosomal dominant condition that predisposes to the development of juvenile polyps throughout the gastrointestinal (GI) tract, and it poses an increased risk of GI malignancy. Germline causative variants were identified in the SMAD4 gene in a subset (20%) of JPS cases. Most SMAD4 germline genetic variants published to date are missense, nonsense, and frameshift mutations. SMAD4 germline alterations predicted to result in aberrant splicing have rarely been reported. Here, we report two unrelated Italian families harboring two different SMAD4 intronic variants, c.424+5G>A and c.425-9A>G, which are clinically associated with colorectal cancer and/or juvenile GI polyps. In silico prediction analysis, in vitro minigene assays, and RT-PCR showed that the identified variants lead to aberrant SMAD4 splicing via the exonization of intronic nucleotides, resulting in a premature stop codon. This is expected to cause the production of a truncated protein. This study expands the landscape of SMAD4 germline genetic variants associated with GI polyposis and/or cancer. Moreover, it emphasizes the importance of the functional characterization of SMAD4 splicing variants through RNA analysis, which can provide new insights into genetic disease variant interpretation, enabling tailored genetic counseling, management, and surveillance of patients with GI polyposis and/or cancer.
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