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Published on: February 3, 2012
Mutations in SLC34A2 cause pulmonary alveolar microlithiasis and are possibly associated with testicular
Ayse Corut1, Abdurrahman Senyigit, Sibel Aylin Ugur
1Department of Molecular Biology and Genetics, Boğaziçi University, Istanbul, Turkey.
Abstract:
Pulmonary alveolar microlithiasis (PAM) is a rare disease characterized by the deposition of calcium phosphate microliths throughout the lungs. We first identified a PAM locus by homozygosity mapping to 4p15, then identified, by a candidate-gene approach, the gene responsible for the disease as SLC34A2 (the type IIb sodium-phosphate cotransporter gene), which is involved in phosphate homeostasis in several organs. We identified six homozygous exonic mutations in the seven unrelated patients with PAM we studied. Three of the mutations were frameshifts, one was a chain termination, one was an amino acid substitution, and one was a deletion spanning the minimal promoter and the first exon. Absence of functional protein product of the gene is compatible with calcium phosphate deposition in alveolar airspaces. We show that impaired activity of the phosphate transporter is presumably responsible for the microliths and that PAM is a recessive monogenic disease with full penetrance. Testicular microlithiasis (TM) is a disease that is more common than PAM. It is often associated with cancer and infertility. Since the gene we identified is also expressed in testis, we searched for mutations in subjects with TM. In 2 of the 15 subjects with TM we studied, we identified two rare variants, one synonymous and the other noncoding, that are possibly associated with the condition.
Insights
Pulmonary alveolar microlithiasis (PAM) is a rare genetic disorder caused by mutations in the SLC34A2 gene. This research identifies SLC34A2 as the causative gene, revealing PAM as a recessive monogenic disease.
Area of Science:
- Genetics
- Rare diseases
- Molecular biology
Background:
- Pulmonary alveolar microlithiasis (PAM) is a rare lung disease characterized by calcium phosphate microlith deposition.
- The genetic basis of PAM has not been fully elucidated.
Purpose of the Study:
- To identify the gene responsible for Pulmonary alveolar microlithiasis (PAM).
- To investigate the role of SLC34A2 in PAM pathogenesis.
- To explore potential genetic links between PAM and testicular microlithiasis (TM).
Main Methods:
- Homozygosity mapping to identify the PAM locus.
- Candidate-gene approach to pinpoint the responsible gene.
- Mutation analysis in patients with PAM and TM.
Main Results:
- A locus for PAM was mapped to 4p15.
- The SLC34A2 gene, encoding a sodium-phosphate cotransporter, was identified as the causative gene for PAM.
- Six homozygous mutations in SLC34A2 were found in seven unrelated PAM patients.
- Impaired SLC34A2 function is implicated in calcium phosphate deposition in PAM.
- Two rare variants in SLC34A2 were identified in subjects with testicular microlithiasis (TM).
Conclusions:
- Pulmonary alveolar microlithiasis (PAM) is a recessive monogenic disease caused by mutations in the SLC34A2 gene.
- The identified SLC34A2 mutations lead to impaired phosphate transport, resulting in microlith formation.
- The SLC34A2 gene's expression in the testis suggests a potential role in testicular microlithiasis (TM).
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