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Analysis of Minerals Produced by hFOB 1.19 and Saos-2 Cells Using Transmission Electron Microscopy with Energy Dispersive X-ray Microanalysis
Published on: June 24, 2018
Active sites of human MEPE-ASARM regulating bone matrix mineralization
Tomoko Minamizaki1, Kaoru Sakurai2, Ikue Hayashi3
1Department of Calcified Tissue Biology, Hiroshima University Graduate School of Biomedical and Health Sciences, Hiroshima, Japan.
Abstract:
The proteolytic fragment ASARM (acidic serine- and aspartate-rich motif) of MEPE (matrix extracellular phosphoglycoprotein) (MEPE-ASARM) may act as an endogenous anti-mineralization factor involved in X-linked hypophosphatemic rickets/osteomalacia (XLH). We synthesized MEPE-ASARM peptides and relevant peptide fragments with or without phosphorylated Ser residues (pSer) to determine the active site(s) of MEPE-ASARM in a rat calvaria cell culture model. None of the synthetic peptides elicited changes in cell death, proliferation or differentiation, but the peptide (pASARM) with three pSer residues inhibited mineralization without causing changes in gene expression of osteoblast markers tested. The anti-mineralization effect was maintained in peptides in which any one of three pSer residues was deleted. Polyclonal antibodies recognizing pASARM but not ASARM abolished the pASARM effect. Deletion of six N-terminal residues but leaving the recognition sites for PHEX (phosphate regulating endopeptidase homolog, X-linked), a membrane endopeptidase responsible for XLH, intact and two C-terminal amino acid residues did not alter the anti-mineralization activity of pASARM. Our results strengthen understanding of the active sites of MEPE-pASARM and allowed us to identify a shorter more stable sequence with fewer pSer residues still exhibiting hypomineralization activity, reducing peptide synthesis cost and increasing reliability for exploring biological and potential therapeutic effects.
Insights
The acidic serine- and aspartate-rich motif (ASARM) peptide from MEPE, when phosphorylated (pASARM), inhibits mineralization in a rat model. This finding identifies a shorter, more stable peptide for studying X-linked hypophosphatemic rickets.
Area of Science:
- Biochemistry
- Cell Biology
- Molecular Biology
Background:
- The MEPE-ASARM fragment is a potential endogenous anti-mineralization factor.
- X-linked hypophosphatemic rickets (XLH) is a disease associated with impaired mineralization.
Purpose of the Study:
- To identify the active sites of MEPE-ASARM responsible for anti-mineralization.
- To develop a shorter, more stable peptide for therapeutic research.
Main Methods:
- Synthesis of MEPE-ASARM peptides with and without phosphorylated serine (pSer) residues.
- Assessment of peptide effects on cell death, proliferation, differentiation, and mineralization in rat calvaria cell cultures.
- Use of specific antibodies to confirm the role of pSer residues.
Main Results:
- Phosphorylated MEPE-ASARM (pASARM) inhibited mineralization without affecting cell viability or osteoblast gene expression.
- The anti-mineralization activity was retained even when individual pSer residues were deleted.
- A shorter, more stable pASARM peptide with fewer pSer residues maintained hypomineralization activity.
Conclusions:
- The study elucidates the active sites of MEPE-pASARM involved in anti-mineralization.
- A more stable and cost-effective peptide sequence was identified for future research into XLH and potential therapies.
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