4.8 Article

Polydopamine-Templated Hydroxyapatite Reinforced Polycaprolactone Composite Nanofibers with Enhanced Cytocompatibility and Osteogenesis for Bone Tissue Engineering

期刊

ACS APPLIED MATERIALS & INTERFACES
卷 8, 期 5, 页码 3499-3515

出版社

AMER CHEMICAL SOC
DOI: 10.1021/acsami.5b12413

关键词

polydopamine; nanohydroxyapatite; nanofiber; human mesenchymal stem cells; bone tissue engineering

资金

  1. National Natural Science Foundation of China [81371697, 81271183, 81570979]
  2. Peking University's 985 Grants
  3. Open Project of Chongqing Key Laboratory of Oral Diseases and Biomedical Sciences [ODBS-2014-001]
  4. Program for Innovation Team Building at Institutions of Higher Education in Chongqing
  5. Chongqing Municipal Key Laboratory of Oral Biomedical Engineering of Higher Education
  6. Outstanding Doctoral Scientific Research Fund of Chongqing Medical University

向作者/读者索取更多资源

Nanohydroxyapatite (HA) synthesized by biomimetic strategy is a promising nanomaterial as bone substitute due to its physicochemical features similar to those of natural nanocrystal in bone tissue. Inspired by mussel adhesive chemistry, a novel nano-HA was synthesized in our work by employing polydopamine (pDA) as template under weak alkaline condition. Subsequently, the as-prepared pDA-tem, plated HA (tHA) was introduced into polycaprolactone (PCL), matrix via coelectrospinning, and a bioactive tHA/PCL composite nanofiber scaffold was developed targeted at bone regeneration application. Out research showed that tHA reinforced PCL composite nanofibers exhibited favorable cytocompatibility at given concentration of tHA (0=10 w.t%). Compared to pure PCL and traditional nano-HA enriched PCL (HA/PCL) composite nanofibers, enhanced cell adhesion, spreading and proliferation of human mesenchymal stem cells (hMSCs) were observed on tHA/PCL :composite nanofibers on account of the contribution of pDA present in tHA. More importantly, tHA nanoparticles exposed on the surface of composite nanofibers could further promote osteogenesis of hMSCs in vitro even in the absence of osteogenesis soluble inducing factors when compared to traditional HA/PCL scaffolds, which was supported by in vivo test as well according to the histological analysis. Overall, our study demonstrated that the developed tHA/PCL composite nanofibers with enhanced cytocompatibility and osteogenic capacity hold great potential as scaffolds for bone tissue engineering.

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