Integrin α2β1 plays a critical role in osteoblast response to micron-scale surface structure and surface energy of titanium substrates
- 14 October 2008
- journal article
- Published by Proceedings of the National Academy of Sciences in Proceedings of the National Academy of Sciences
- Vol. 105 (41), 15767-15772
- https://doi.org/10.1073/pnas.0805420105
Abstract
Efforts to improve bone response to biomaterials have focused on ligands that bind alpha5beta1 integrins. However, antibodies to alpha5beta1 reduce osteoblast proliferation but do not affect differentiation when cells are grown on titanium (Ti). beta1-silencing blocks the differentiation stimulus of Ti microtopography, suggesting that other beta1 partners are important. Stably alpha2-silenced MG63 human osteoblast-like cells were used to test whether alpha2beta1 specifically mediates osteoblast response to Ti surface micron-scale structure and energy. WT and alpha2-silenced MG63 cells were cultured on tissue culture polystyrene (TCPS) and Ti disks with different surface microtopographies: machined pretreatment (PT) surfaces [mean peak to valley roughness (R(a)) < 0.02 microm], PT surfaces that were grit-blasted and acid-etched (SLA; R(a) = 4 microm), and SLA with high surface energy (modSLA). Alkaline phosphatase (ALP), alpha2 and beta1 mRNA, but not alpha5, alpha v, beta3, type-I collagen, or osteocalcin, increased on SLA and modSLA at 6 days. Alpha2 increased at 8 days on TCPS and PT, but remained unchanged on SLA and modSLA. Alpha2-protein was reduced 70% in alpha2-siRNA cells, whereas alpha5-mRNA and protein were unaffected. Alpha2-knockdown blocked surface-dependent increases in beta1 and osteocalcin and decreases in cell number and increases in ALP and local factors typical of MG63 cells grown on SLA and modSLA [e.g., prostaglandin E(2), osteoprotegerin, latent and active TGF-beta1, and stimulatory effects of 1alpha,25(OH)(2)D(3) on these parameters]. This finding indicates that alpha2beta1 signaling is required for osteoblastic differentiation caused by Ti microstructure and surface energy, suggesting that conclusions based on cell behavior on TCPS are not predictive of behavior on other substrates or the mechanisms involved.Keywords
This publication has 67 references indexed in Scilit:
- Effect of Micrometer-Scale Roughness of the Surface of Ti6Al4V Pedicle Screws in Vitro and in VivoJournal of Bone and Joint Surgery, 2008
- Connective‐tissue responses to defined biomaterial surfaces. I. Growth of rat fibroblast and bone marrow cell colonies on microgrooved substratesJournal of Biomedical Materials Research Part A, 2007
- Biomolecular surface coating to enhance orthopaedic tissue healing and integrationBiomaterials, 2007
- Requirement for both micron- and submicron scale structure for synergistic responses of osteoblasts to substrate surface energy and topographyBiomaterials, 2007
- Bioactive Hydrogel Substrates: Probing Leukocyte Receptor–Ligand Interactions in Parallel Plate Flow Chamber StudiesAnnals of Biomedical Engineering, 2006
- Comments from the authors: F. Rupp, L. Scheideler, N. Olshanska, M. de Wild, M. Wieland, and J. Geis-Gerstorfer of “Enhancing surface free energy and hydrophilicity through chemical modification of microstructured titanium implant surfaces”, J Biomed Mater Res 76A: 323–334 (2006), to the Letter to the Editor of M. Morra et al.Journal of Biomedical Materials Research Part A, 2006
- IntegrinsCell, 2002
- Response of normal female human osteoblasts (NHOst) to 17β‐estradiol is modulated by implant surface morphologyJournal of Biomedical Materials Research, 2002
- Modulation of Integrin Expression on Rat Bone Marrow Cells by Substrates with Different Surface CharacteristicsTissue Engineering, 2002
- Biomimetic Surfaces for Control of Cell Adhesion to Facilitate Bone FormationCritical Reviews™ in Eukaryotic Gene Expression, 2002