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SECTION 6: Functional specificity of mineralized non-collagenous proteins

The role of phosphorylation in dentin phosphoprotein peptide absorption to hydroxyapatite surfaces: a molecular dynamics study

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Pages 134-137 | Received 08 Nov 2013, Accepted 30 Apr 2014, Published online: 26 Aug 2014

References

  • Boskey AL. Noncollagenous matrix proteins and their role in mineralization. Bone Mineral 1989;6:111–23
  • Boskey AL, Maresca M, Ullrich W, Doty SB, Butler WT, Prince CW. Osteopontin-hydroxyapatite interactions in vitro: inhibition of hydroxyapatite formation and growth in a gelatin-gel. Bone Mineral 1993;22:147–59
  • Nanci A, ed. Dentin-Pulp complex. In: Ten Cate s oral histology development, structure, and function. St. Louis (MO): Mosby; 2003:192–239
  • Lee SL, Veis A, Glonek T. Dentin phosphoprotein: an extracellular calcium-binding protein. Biochemistry 1977;16:2971–9
  • Fujisawa R, Kuboki Y. Preferential adsorption of dentin and bone acidic proteins on the (100) face of hydroxyapatite crystals. Biochim Biophys Acta 1991;1075:56–60
  • Boskey AL, Maresca M, Doty S, Sabsay B, Veis A. Concentration-dependent effects of dentin phosphophoryn in the regulation of in vitro hydroxyapatite formation and growth. Bone Mineral 1990;11:55–65
  • Pan HH, Tao JH, Xu XR, Tang RK. Adsorption processes of Gly and Glu amino acids on hydroxyapatite surfaces at the atomic level. Langmuir: ACS J Surface Colloid 2007;23:8972–81
  • Azzopardi PV, O'Young J, Lajoie G, Karttunen M, Goldberg HA, Hunter GK. Roles of electrostatics and conformation in protein–crystal interactions. PLoS ONE 2010;5:e9330
  • Xu ZJ, Yang Y, Wang ZQ, Mkhonto D, Shang C, Liu ZP, Cui Q, Sahai N. Small molecule-mediated control of hydroxyapatite growth: free energy calculations benchmarked to density functional theory. J Comput Chem 2014;35:70–81
  • Bhowmik R, Katti KS, Katti D. Molecular dynamics simulation of hydroxyapatite–polyacrylic acid interfaces. Polymer 2007;48:664–74
  • Van Der Spoel D, Lindahl E, Hess B, Groenhof G, Mark AE, Berendsen HJC. GROMACS: fast, flexible, and free. J Comput Chem 2005;26:1701–18
  • McKnight DA, Fisher LW. Molecular evolution of dentin phosphoprotein among toothed and toothless animals. BMC Evol Biol 2009;9:299
  • Mostafa NY, Brown PW. Computer simulation of stoichiometric hydroxyapatite: structure and substitutions. J Phys Chem Solid 2007;68:431–7
  • Hauptmann S, Dufner H, Brickmann J, Kast SM, Berry RS. Potential energy function for apatites. Phys Chem Chem Phys 2003;5:635–9
  • George A, Veis A. Phosphorylated proteins and control over apatite nucleation, crystal growth, and inhibition. Chem Rev 2008;108:4670–93
  • Smart JL, Mccammon JA. Phosphorylation stabilizes the N-termini of α-helices. Biopolymers 1999;49:225–33
  • Boskey AL, Doty SB, Kudryashov V, Mayer-Kuckuk P, Roy R, Binderman I. Modulation of extracellular matrix protein phosphorylation alters mineralization in differentiating chick limb-bud mesenchymal cell micromass cultures. Bone 2008;42:1061–71
  • Gericke A, Qin C, Spevak L, Fujimoto Y, Butler WT, Sørensen ES, Boskey AL. Importance of phosphorylation for osteopontin regulation of biomineralization. Calci Tissue Int 2005;77:45–54

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