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Cathepsin K analysis in a pycnodysostosis cohort: demographic, genotypic and phenotypic features
Ahmet Arman, Abdullah Bereket, Ajda Coker
1The Department of Pediatric Endocrinology, Marmara University, İstanbul, Turkey. serap.turan@marmara.edu.tr.
Insights
This study identified novel cathepsin K (CTSK) mutations in pycnodysostosis patients, revealing genetic diversity and a unique Alu sequence insertion. Findings advance understanding of this rare bone disorder.
Area of Science:
- Genetics
- Molecular Biology
- Pediatric Endocrinology
Background:
- Pycnodysostosis is a rare genetic disorder characterized by skeletal abnormalities.
- Cathepsin K (CTSK) gene mutations are known causes of pycnodysostosis.
- Patients often present with short stature, frequent fractures, and dysmorphic features.
Purpose of the Study:
- To characterize cathepsin K (CTSK) mutations in a cohort of pycnodysostosis patients.
- To correlate genotype with phenotypic features in pycnodysostosis.
- To identify novel genetic variations in the CTSK gene associated with pycnodysostosis.
Main Methods:
- Genetic sequencing of the CTSK gene (seven exons and flanking regions) in 16 patients from 14 families.
- Polymerase Chain Reaction (PCR) amplification and sequencing of the CTSK gene.
- Clinical phenotyping including assessment of stature, fractures, dysmorphic features, and osteosclerosis.
Main Results:
- Five novel missense mutations (M1I, I249T, L7P, D80Y, D169N), one nonsense mutation (R312X), and a 301 bp Alu sequence insertion in intron 7 were identified.
- Homozygous mutations were observed in all patients, with families originating from a region with high consanguinity rates.
- The M1I mutation was associated with earlier fracture onset, potentially due to complete protein absence; acroosteolysis was absent in two patients despite carrying mutations.
Conclusions:
- A large cohort of pycnodysostosis patients with diverse genetic and phenotypic features was described.
- The first reported Alu sequence insertion in pycnodysostosis was identified.
- The study highlights genetic heterogeneity and expands the mutational spectrum of the CTSK gene in pycnodysostosis.
Background:
To characterize cathepsin K (CTSK) mutations in a group of patients with pycnodysostosis, who presented with either short stature or atypical fractures to pediatric endocrinology or dysmorphic features to pediatric genetics clinics.
Methods:
Seven exons and exon/intron boundaries of CTSK gene for the children and their families were amplified with PCR and sequenced. Sixteen patients from 14 families with pycnodysostosis, presenting with typical dysmorphic features, short stature, frequent fractures and osteosclerosis, were included in the study.
Results:
We identified five missense mutations (M1I, I249T, L7P, D80Y and D169N), one nonsense mutation (R312X) and one 301 bp insertion in intron 7, which is revealed as Alu sequence; among them, only L7P and I249 were described previously. The mutations were homozygous in all cases, and the families mostly originated from the region where consanguineous marriage rate is the highest. Patients with M1I mutation had fractures, at younger ages than the other pycnodysostosis cases in our cohort which were most probably related to the severity of mutation, since M1I initiates the translation, and mutation might lead to the complete absence of the protein. The typical finding of pycnodysostosis, acroosteolysis, could not be detected in two patients, although other patients carrying the same mutations had acroosteolysis. Additionally, none of the previously described hot spot mutations were seen in our cohort; indeed, L7P and R312X were the most frequently detected mutations.
Conclusions:
We described a large cohort of pycnodysostosis patients with genetic and phenotypic features, and, first Alu sequence insertion in pycnodysostosis.
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