Literature DB >> 21770164

Growth and mechanisms of enamel-like hierarchical nanostructures on single crystalline hydroxyapatite micro-ribbons.

Guobin Ma1, Xiang Yang Liu, Mu Wang.   

Abstract

In vitro growth of enamel-like microstructured hydroxyapatite (HAP) crystals is highly expected for developing novel biomaterials/scaffolds. It is also essential for a clearer understanding of in vivo biomineralization process. In this paper, hierarchical HAP structures are controllably fabricated by growth of nanocrystals on single crystalline micro-ribbon substrates in vitro at biophysical conditions. HAP crystals grown on the substrate change from disordered aggregations of nano-flakes to well-oriented nano-needles, branched bundles of nano-needles, and finally highly porous aggregates, with increase of F- concentrations. The flexibility of the size, morphology, and microstructure control highlights a method to produce hierarchical HAP structures for potential applications in dental restoration or bone implant. We demonstrate that the mutual effects of F- on the crystallinity of HAP and on the supersaturation of the solutions control the morphology and assembly properties of the products. Moreover, the products excellently mimic real tooth enamel structures formed with different F- intakes. The work represents an appropriate simplified model system for an in-depth understanding of the microscopic mechanisms of the effects of F- on enamel growth, and the relationship of enamel microstructures and dental diseases.

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Year:  2011        PMID: 21770164     DOI: 10.1166/jnn.2011.4187

Source DB:  PubMed          Journal:  J Nanosci Nanotechnol        ISSN: 1533-4880


  1 in total

1.  A Drosophila model identifies a critical role for zinc in mineralization for kidney stone disease.

Authors:  Thomas Chi; Man Su Kim; Sven Lang; Neelanjan Bose; Arnold Kahn; Lawrence Flechner; Sarah D Blaschko; Tiffany Zee; Gulinuer Muteliefu; Nichole Bond; Marysia Kolipinski; Sirine C Fakra; Neil Mandel; Joe Miller; Arvind Ramanathan; David W Killilea; Katja Brückner; Pankaj Kapahi; Marshall L Stoller
Journal:  PLoS One       Date:  2015-05-13       Impact factor: 3.240

  1 in total

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