| Literature DB >> 27280476 |
Marco Laurenti, Ahmed Al Subaie1, Mohamed-Nur Abdallah, Arthur R G Cortes2, Jerome L Ackerman2, Hojatollah Vali, Kaustuv Basu, Yu Ling Zhang3, Monzur Murshed, Satu Strandman4, Julian Zhu4, Nicholas Makhoul, Jake E Barralet3, Faleh Tamimi.
Abstract
Hydrogels composed of two-dimensional (2D) nanomaterials have become an important alternative to replace traditional inorganic scaffolds for tissue engineering. Here, we describe a novel nanocrystalline material with 2D morphology that was synthesized by tuning the crystallization of the sodium-magnesium-phosphate system. We discovered that the sodium ion can regulate the precipitation of magnesium phosphate by interacting with the crystal's surface causing a preferential crystal growth that results in 2D morphology. The 2D nanomaterial gave rise to a physical hydrogel that presented extreme thixotropy, injectability, biocompatibility, bioresorption, and long-term stability. The nanocrystalline material was characterized in vitro and in vivo and we discovered that it presented unique biological properties. Magnesium phosphate nanosheets accelerated bone healing and osseointegration by enhancing collagen formation, osteoblasts differentiation, and osteoclasts proliferation through up-regulation of COL1A1, RunX2, ALP, OCN, and OPN. In summary, the 2D magnesium phosphate nanosheets could bring a paradigm shift in the field of minimally invasive orthopedic and craniofacial interventions because it is the only material available that can be injected through high gauge needles into bone defects in order to accelerate bone healing and osseointegration.Entities:
Keywords: 2D nanomaterial; biocompatible; bone tissue engineering; injectable; nanocrystalline magnesium phosphate
Year: 2016 PMID: 27280476 DOI: 10.1021/acs.nanolett.6b00636
Source DB: PubMed Journal: Nano Lett ISSN: 1530-6984 Impact factor: 11.189