Hollow mesoporous zirconia delivery system for biomineralization precursors
- Xue qing Huang,
- Hong ye Yang,
- Tao Luo,
- Cui Huang,
- Franklin Chi Meng Tay(corresponding author),
- Li na Niu
- Sun Yat-Sen University,
- Ministry of Education, China,
- Guangzhou Medical College,
- ,
- Air Force Medical University
Abstract
Strategies based on the combination of nanocarrier delivery systems and scaffolds provide bone tissue engineering scaffolds with multifunctional capability. Zirconia, a biocompatible ceramic commonly used in orthopedic and dental implants, was used to synthesize hollow mesoporous nanocapsules for loading, storage and sustained release of a novel polyamine-stabilized liquid precursor phase of amorphous calcium phosphate (PAH-ACP) for collagen biomineralization and bone marrow stromal cells osteoinduction. Hollow mesoporous zirconia (hmZrO2) nanocapsules loaded with biomimetic precursors exhibited pH-sensitive release capability and good biocompatibility. The PAH-ACP released from loaded hmZrO2 still retained the ability to infiltrate and mineralize collagen fibrils as well as exhibited osteoinductivity. A collagen scaffold blended with PAH-ACP@hmZrO2 supplement and stem cells may be a promising tool for bone tissue engineering. Statement of Significance: The advent of nanotechnology has catalyzed the development of bone tissue engineering strategies based on the combination of nanocarrier delivery systems and scaffolds, which provide distinct advantages, including the possibilities of sustained release and protection of the bioactive agents, site-specific pharmacological effects and reduction of side effects. Herein, hollow mesoporous zirconia (hmZrO2) nanocapsules with pH-sensitive capacity were synthesized for loading, storage and sustained release of a novel polyamine-stabilized liquid precursor phase of ACP (PAH-ACP). The loaded nanocapsules show good biocompatibility and demonstrate bioactivities for collagen biomineralization and bone marrow stromal cells osteoinduction. Our results may offer a promising tool for designing bone tissue engineering “cocktail therapy” involving seeding scaffolds with biomineralization precursors loaded hmZrO2 supplement and stem cells.
Publication Information
Output type
Original language
English (US)Pages from-to (Number of pages)
Pages 366-377 (12 pages)Journal (Volume, Issue Number)
Acta biomaterialia (Volume 67)Publication milestones
- Accepted/In press - 01/01/2017
- Published - 02/2018
Publication status
ISSN
1742-7061Publication IDs
- Scopus: 85037596885
- PubMed: 29208555
