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Peptides from Phage Display Library Modulate Gene Expression in Mesenchymal Cells and Potentiate Osteogenesis in Unicortical Bone Defects
Published on: December 11, 2010
Expression and characterization of recombinant osteopontin peptides representing matrix metalloproteinase proteolytic
Yu Alice Gao1, Renu Agnihotri, Calvin P H Vary
1Center for Molecular Medicine, Maine Medical Center Research Institute, 81 Research Drive Scarborough, ME 04074, USA.
Abstract:
Osteopontin (OPN) is a secreted, arginine-glycine-aspartic acid (RGD)-containing phosphoprotein proteolytically modified by members of the matrix metalloproteinase (MMP) family. We previously defined the MMP-3 and MMP-7 cleavage sites in OPN and found increased adhesive and migratory activity of a pool of MMP-cleaved fragments compared to full-length OPN. In the present study, we performed mutational analysis of recombinant full-length OPN and generated recombinant OPN fragments corresponding to the MMP-cleaved fragments, which have apparent molecular weights of 40, 32, and 25 kD by SDS-PAGE. Single residue mutations in 167L and 211L do not abrogate MMP cleavage although processing of the putative C-terminal fragment appears to be affected by a 167L to 167A mutation. The N-terminal 40-kD fragment was a stronger adhesive substrate compared to full-length OPN despite the observation that full-length OPN displayed greater binding in soluble phase to endothelial cell surfaces. While the 32-kD fragment showed significant binding to endothelial cell surfaces, the C-terminal 25-kD fragment did not interact with cell surface. Our data indicate that the increased adhesive activity of MMP-cleaved OPN was accountable by the N-terminal 40-kD fragment. We further analyzed receptor binding, using competition with peptides representing the alpha4beta1 and alpha9beta1 binding sites in the 40-kD N-terminal fragment. Using Jurkat cells, we found that a peptide corresponding to 131ELVTDFPTDLPATE144 had no effect on cell adhesion, whereas the peptide SVVYGLR competitively inhibited cell adhesion. These results suggest that a shorter motif that is found in MMP-cleaved OPN, 162SVVYG166, is sufficient to mediate cell adhesion of Jurkat cells to receptors, including the beta1 integrins, which have been previously characterized to bind the SVVYGLR sequence.
Insights
Matrix metalloproteinase (MMP) cleavage enhances osteopontin (OPN) adhesion via its N-terminal 40-kD fragment. A specific motif (SVVYGLR) within this fragment mediates cell adhesion to beta1 integrins.
Area of Science:
- Molecular and Cellular Biology
- Biochemistry
- Protein Chemistry
Background:
- Osteopontin (OPN) is a phosphoprotein cleaved by matrix metalloproteinases (MMPs).
- Previous studies showed MMP-cleaved OPN fragments have increased adhesive and migratory activity compared to full-length OPN.
Purpose of the Study:
- To identify which MMP-cleaved OPN fragment is responsible for increased cell adhesion.
- To determine the specific binding motif and receptors involved in the adhesion of MMP-cleaved OPN fragments.
Main Methods:
- Generated and analyzed recombinant full-length OPN and specific MMP-cleaved OPN fragments (40, 32, and 25 kD).
- Performed mutational analysis to assess the role of specific residues in MMP cleavage.
- Assessed cell adhesion and soluble phase binding of OPN fragments to endothelial cells and Jurkat cells.
- Utilized competitive inhibition assays with peptides representing known integrin binding sites.
Main Results:
- The N-terminal 40-kD fragment of MMP-cleaved OPN exhibited stronger adhesive substrate activity than full-length OPN.
- The 40-kD fragment mediated Jurkat cell adhesion via the SVVYGLR motif, which competitively inhibited binding to beta1 integrins.
- The 32-kD fragment showed significant cell surface binding, while the 25-kD fragment did not interact with the cell surface.
Conclusions:
- The increased adhesive activity of MMP-cleaved OPN is primarily attributed to the N-terminal 40-kD fragment.
- The SVVYGLR sequence within the 40-kD fragment is sufficient for mediating cell adhesion to beta1 integrins.
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