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In Vivo Modeling of the Morbid Human Genome using Danio rerio
Published on: August 24, 2013
MMP13 mutation causes spondyloepimetaphyseal dysplasia, Missouri type (SEMD(MO)
Ann M Kennedy1, Masaki Inada, Stephen M Krane
1Academic Endocrine Unit, Nuffield Department of Clinical Medicine, University of Oxford, Oxford Centre for Diabetes, Endocrinology and Metabolism (OCDEM), Churchill Hospital, Oxford, United Kingdom.
Abstract:
MMPs, which degrade components of the ECM, have roles in embryonic development, tissue repair, cancer, arthritis, and cardiovascular disease. We show that a missense mutation of MMP13 causes the Missouri type of human spondyloepimetaphyseal dysplasia (SEMD(MO)), an autosomal dominant disorder characterized by defective growth and modeling of vertebrae and long bones. Genome-wide linkage analysis mapped SEMD(MO) to a 17-cM region on chromosome 11q14.3-23.2 that contains a cluster of 9 MMP genes. Among these, MMP13 represented the best candidate for SEMD(MO), since it preferentially degrades collagen type II, abnormalities of which cause skeletal dysplasias that include Strudwick type SEMD. DNA sequence analysis revealed a missense mutation, F56S, that substituted an evolutionarily conserved phenylalanine residue for a serine in the proregion domain of MMP13. We predicted, by modeling MMP13 structure, that this F56S mutation would result in a hydrophobic cavity with misfolding, autoactivation, and degradation of mutant protein intracellularly. Expression of wild-type and mutant MMP13s in human embryonic kidney cells confirmed abnormal intracellular autoactivation and autodegradation of F56S MMP13 such that only enzymatically inactive, small fragments were secreted. Thus, the F56S mutation results in deficiency of MMP13, which leads to the human skeletal developmental anomaly of SEMD(MO).
Insights
A mutation in MMP13 causes spondyloepimetaphyseal dysplasia (SEMD(MO)), a disorder affecting bone growth. This genetic change leads to MMP13 deficiency, impacting skeletal development.
Area of Science:
- Genetics
- Molecular Biology
- Biochemistry
Background:
- Matrix metalloproteinases (MMPs) are crucial enzymes involved in extracellular matrix (ECM) degradation, playing roles in development, repair, and disease.
- Skeletal dysplasias are a group of genetic disorders characterized by abnormal bone and cartilage development.
Purpose of the Study:
- To identify the genetic cause of the Missouri type of human spondyloepimetaphyseal dysplasia (SEMD(MO)).
- To investigate the functional consequences of a specific MMP13 mutation on skeletal development.
Main Methods:
- Genome-wide linkage analysis to map the SEMD(MO) locus.
- DNA sequencing to identify mutations in candidate genes.
- Structural modeling and in vitro expression studies to assess protein function.
Main Results:
- SEMD(MO) was mapped to chromosome 11q14.3-23.2, containing a cluster of MMP genes.
- A missense mutation (F56S) in the MMP13 gene was identified as the cause of SEMD(MO).
- The F56S mutation leads to abnormal intracellular autoactivation and degradation of MMP13, resulting in enzyme deficiency.
Conclusions:
- The F56S mutation in MMP13 causes a deficiency of functional MMP13 protein.
- This MMP13 deficiency is responsible for the skeletal abnormalities observed in SEMD(MO).
- MMP13 plays a critical role in normal skeletal development.
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