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Laser Capture Microdissection of Mouse Embryonic Cartilage and Bone for Gene Expression Analysis
Published on: December 18, 2019
Mutant MESD links cellular stress to type I collagen aggregation in osteogenesis imperfecta type XX
Debasish Kumar Ghosh1, Prajna Udupa1, Akshaykumar Nanaji Shrikondawar2
1Department of Medical Genetics, Kasturba Medical College, Manipal, Manipal Academy of Higher Education, Manipal, Karnataka 576104, India.
Abstract:
Aberrant forms of endoplasmic reticulum (ER)-resident chaperones are implicated in loss of protein quality control in rare diseases. Here we report a novel mutation (p.Asp233Asn) in the ER retention signal of MESD by whole exome sequencing of an individual diagnosed with osteogenesis imperfecta (OI) type XX. While MESDD233N has similar stability and chaperone activity as wild-type MESD, its mislocalization to cytoplasm leads to imbalance of ER proteostasis, resulting in improper folding and aggregation of proteins, including LRP5 and type I collagen. Aggregated LRP5 loses its plasma membrane localization to disrupt the expression of WNT-responsive genes, such as BMP2, BMP4, in proband fibroblasts. We show that MESD is a direct chaperone of pro-α1(I) [COL1A1], and absence of MESDD233N in ER results in cytosolic type I collagen aggregates that remain mostly not secreted. While cytosolic type I collagen aggregates block the intercellular nanotubes, decreased extracellular type I collagen also results in loss of interaction of ITGB1 with type I collagen and weaker attachment of fibroblasts to matrix. Although proband fibroblasts show increased autophagy to degrade the aggregated type I collagen, an overall cellular stress overwhelms the proband fibroblasts. In summary, we present an essential chaperone function of MESD for LRP5 and type I collagen and demonstrating how the D233N mutation in MESD correlates with impaired WNT signaling and proteostasis in OI.
Insights
A novel mutation in the MESD gene causes osteogenesis imperfecta by disrupting protein quality control. This leads to misfolded collagen and impaired WNT signaling, impacting bone development.
Area of Science:
- Genetics
- Molecular Biology
- Rare Diseases
Background:
- Endoplasmic reticulum (ER)-resident chaperones maintain protein quality control.
- Defects in chaperones are linked to rare diseases.
- Osteogenesis imperfecta (OI) is a rare genetic disorder affecting bone development.
Purpose of the Study:
- To investigate the molecular mechanisms underlying a novel case of osteogenesis imperfecta (OI) type XX.
- To identify the genetic cause and functional consequences of a mutation in the MESD gene.
Main Methods:
- Whole exome sequencing identified a novel mutation (p.Asp233Asn) in the ER retention signal of MESD.
- Analysis of MESD stability, chaperone activity, and cellular localization.
- Assessment of protein folding, aggregation, and secretion (LRP5, type I collagen).
- Evaluation of WNT signaling pathway components (BMP2, BMP4) and cell-matrix interactions (ITGB1).
Main Results:
- The MESDD233N mutation causes mislocalization of MESD to the cytoplasm, disrupting ER proteostasis.
- This leads to aggregation of LRP5 and type I collagen, impairing WNT signaling and collagen secretion.
- Proband fibroblasts exhibit disrupted cell-matrix interactions and increased autophagy, indicating cellular stress.
Conclusions:
- MESD is an essential chaperone for LRP5 and type I collagen.
- The D233N mutation in MESD impairs WNT signaling and proteostasis, contributing to osteogenesis imperfecta.
- This study highlights the critical role of ER chaperones in maintaining cellular and tissue homeostasis.
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