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Published on: August 25, 2021
Tiling resolution array-CGH shows that somatic mosaic deletion of the EXT gene is causative in EXT gene mutation
Károly Szuhai1, Ivy Jennes, Danielle de Jong
1Department of Molecular Cell Biology, Leiden University Medical Center, Leiden, the Netherlands. k.szuhai@lumc.n
Abstract:
Multiple osteochondromas (MO) is a hereditary skeletal disorder characterized by the presence of cartilage capped bony outgrowths at bone surface. Causative mutations in EXT1 or EXT2 genes have been described in 85-90 % of MO cases. However, in about 10-15 % of the MO cases, genomic alterations can not be detected, implying the potential role of other alterations. We have designed a custom-made Agilent oligonucleotide-based microarray, containing 44,000 probes, with tiling coverage of EXT1/2 genes and addition of 68 genes involved in heparan sulfate biosynthesis and other related pathways. Out of the 17 patient samples with previously undetected mutations, a low level of deletion of the EXT1 gene in about 10-15% of the blood cells was detected in two patients and mosaic deletion of the EXT2 was detected in one patient. Here we show that for the first time somatic mosaicism with large genomic deletions as the underlying mechanism in MO formation was identified. We propose that the existence of mosaic mutations and not alterations of other heparan sulfate biosynthesis related genes play a significant role in the development of MO in patients who are tested negative for mutations in Exostosins.
Insights
Somatic mosaicism, characterized by large genomic deletions in EXT1 or EXT2 genes, is identified as a novel mechanism causing multiple osteochondromas (MO). This finding explains MO cases previously lacking detectable mutations.
Area of Science:
- Genetics
- Molecular Biology
- Skeletal Disorders
Background:
- Multiple osteochondromas (MO) is a hereditary skeletal disorder.
- Mutations in EXT1 or EXT2 genes cause 85-90% of MO cases.
- 10-15% of MO cases lack detectable genetic alterations.
Purpose of the Study:
- Investigate the genetic basis of MO in patients with previously undetected mutations.
- Identify novel genetic mechanisms contributing to MO development.
Main Methods:
- Designed a custom Agilent oligonucleotide microarray with 44,000 probes.
- Tiled coverage of EXT1/2 genes and 68 related genes.
- Analyzed 17 patient samples with undetected mutations.
Main Results:
- Detected low-level mosaic deletions of EXT1 in two patients.
- Identified mosaic deletion of EXT2 in one patient.
- Established somatic mosaicism with large genomic deletions as a mechanism in MO.
Conclusions:
- Somatic mosaicism with large genomic deletions is a significant cause of MO in mutation-negative cases.
- Mosaic mutations, not other heparan sulfate pathway genes, are key.
- This study identifies a new mechanism for MO formation.
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