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Compound Heterozygous Frameshift Mutations in MESD Cause a Lethal Syndrome Suggestive of Osteogenesis Imperfecta Type
Julian Stürznickel1, Katharina Jähn-Rickert1, Jozef Zustin1
1Department of Osteology and Biomechanics, University Medical Center Hamburg-Eppendorf, Hamburg, Germany.
Abstract:
Multiple genes are known to be associated with osteogenesis imperfecta (OI), a phenotypically and genetically heterogenous bone disorder, marked predominantly by low bone mineral density and increased risk of fractures. Recently, mutations affecting MESD, which encodes for a chaperone required for trafficking of the low-density lipoprotein receptors LRP5 and LRP6 in the endoplasmic reticulum, were described to cause autosomal-recessive OI XX in homozygous children. In the present study, whole-exome sequencing of three stillbirths in one family was performed to evaluate the presence of a hereditary disorder. To further characterize the skeletal phenotype, fetal autopsy, bone histology, and quantitative backscattered electron imaging (qBEI) were performed, and the results were compared with those from an age-matched control with regular skeletal phenotype. In each of the affected individuals, compound heterozygous mutations in MESD exon 2 and exon 3 were detected. Based on the skeletal phenotype, which was characterized by multiple intrauterine fractures and severe skeletal deformity, OI XX was diagnosed in these individuals. Histological evaluation of MESD specimens revealed an impaired osseous development with an altered osteocyte morphology and reduced canalicular connectivity. Moreover, analysis of bone mineral density distribution by qBEI indicated an impaired and more heterogeneous matrix mineralization in individuals with MESD mutations than in controls. In contrast to the previously reported phenotypes of individuals with OI XX, the more severe phenotype in the present study is likely explained by a mutation in exon 2, located within the chaperone domain of MESD, that leads to a complete loss of function, which indicates the relevance of MESD in early skeletal development. © 2021 The Authors. Journal of Bone and Mineral Research published by Wiley Periodicals LLC on behalf of American Society for Bone and Mineral Research (ASBMR)..
Insights
Mutations in the MESD gene cause severe osteogenesis imperfecta XX (OI XX) in stillbirths. This study highlights MESD
Area of Science:
- Genetics
- Skeletal Biology
- Developmental Biology
Background:
- Osteogenesis imperfecta (OI) is a heterogeneous bone disorder characterized by low bone mineral density and increased fracture risk.
- Mutations in the MESD gene, encoding a chaperone for LRP5/LRP6, cause autosomal-recessive OI XX.
- Previously reported OI XX phenotypes were associated with homozygous mutations in MESD.
Purpose of the Study:
- To investigate the genetic cause of severe skeletal deformity and intrauterine fractures in three stillbirths from a single family.
- To characterize the skeletal phenotype and identify mutations in the MESD gene.
Main Methods:
- Whole-exome sequencing was performed on three affected stillbirths.
- Fetal autopsy, bone histology, and quantitative backscattered electron imaging (qBEI) were used for skeletal phenotyping.
- Results were compared to an age-matched control.
Main Results:
- Compound heterozygous mutations in MESD exons 2 and 3 were identified in all affected individuals.
- The skeletal phenotype included multiple intrauterine fractures and severe deformities, consistent with OI XX.
- Histology revealed impaired bone development, altered osteocyte morphology, and reduced canalicular connectivity.
- qBEI showed impaired and heterogeneous bone matrix mineralization compared to controls.
Conclusions:
- Compound heterozygous MESD mutations can cause a severe form of OI XX, even in stillbirths.
- A mutation in MESD exon 2, within the chaperone domain, likely leads to complete loss of function, explaining the severe phenotype.
- These findings underscore the critical role of MESD in early skeletal development.
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