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Laser Capture Microdissection of Mouse Embryonic Cartilage and Bone for Gene Expression Analysis
Published on: December 18, 2019
Aberrant binding of mutant HSP47 affects posttranslational modification of type I collagen and leads to osteogenesis
Delfien Syx1, Yoshihiro Ishikawa2,3, Jan Gebauer4
1Center for Medical Genetics, Ghent University Hospital, Ghent, Belgium.
Insights
A mutation in Heat Shock Protein 47 (HSP47) causes severe osteogenesis imperfecta by disrupting collagen folding and leading to abnormal protein modification. This study reveals compensatory mechanisms involving other chaperones.
Area of Science:
- Molecular Biology
- Genetics
- Biochemistry
Background:
- Heat Shock Protein 47 (HSP47) is crucial for proper collagen folding.
- Mutations in HSP47 can lead to severe genetic disorders.
Observation:
- A homozygous p.(R222S) substitution in HSP47 was identified in a child with severe osteogenesis imperfecta.
- This mutation significantly reduced HSP47's affinity for type I collagen.
Findings:
- The HSP47 mutation resulted in posttranslational overmodification of type I procollagen, including increased glycosylation and hydroxylation.
- This overmodification occurred despite normal procollagen folding and secretion rates.
- Upregulation of other chaperones and modifying enzymes suggests a compensatory response to the defective HSP47 binding.
Implications:
- This research highlights the critical role of HSP47 in collagen posttranslational modification.
- It provides insights into the molecular mechanisms underlying severe osteogenesis imperfecta caused by HSP47 alterations.
- Understanding these pathways may inform future therapeutic strategies for collagen-related disorders.
Abstract:
Heat shock protein 47 (HSP47), encoded by the SERPINH1 gene, is a molecular chaperone essential for correct folding of collagens. We report a homozygous p.(R222S) substitution in HSP47 in a child with severe osteogenesis imperfecta leading to early demise. p.R222 is a highly conserved residue located within the collagen interacting surface of HSP47. Binding assays show a significantly reduced affinity of HSP47-R222S for type I collagen. This altered interaction leads to posttranslational overmodification of type I procollagen produced by dermal fibroblasts, with increased glycosylation and/or hydroxylation of lysine and proline residues as shown by mass spectrometry. Since we also observed a normal intracellular folding and secretion rate of type I procollagen, this overmodification cannot be explained by prolonged exposure of the procollagen molecules to the modifying hydroxyl- and glycosyltransferases, as is commonly observed in other types of OI. We found significant upregulation of several molecular chaperones and enzymes involved in procollagen modification and folding on Western blot and RT-qPCR. In addition, we showed that an imbalance in binding of HSP47-R222S to unfolded type I collagen chains in a gelatin sepharose pulldown assay results in increased binding of other chaperones and modifying enzymes. The elevated expression and binding of this molecular ensemble to type I procollagen suggests a compensatory mechanism for the aberrant binding of HSP47-R222S, eventually leading to overmodification of type I procollagen chains. Together, these results illustrate the importance of HSP47 for proper posttranslational modification and provide insights into the molecular pathomechanisms of the p.(R222S) alteration in HSP47, which leads to a severe OI phenotype.
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