3D Printed Zn-doped Mesoporous Silica-incorporated Poly-L-lactic Acid Scaffolds for Bone Repair
- PMID: 33997435
 - PMCID: PMC8114096
 - DOI: 10.18063/ijb.v7i2.346
 
3D Printed Zn-doped Mesoporous Silica-incorporated Poly-L-lactic Acid Scaffolds for Bone Repair
Abstract
Poly-L-lactic acid (PLLA) lacks osteogenic activity, which limits its application in bone repair. Zinc (Zn) is widely applied to strengthen the biological properties of polymers due to its excellent osteogenic activity. In the present study, Zn-doped mesoporous silica (Zn-MS) particles were synthesized by one-pot hydrothermal method. Then, the particles were induced into PLLA scaffolds prepared by selective laser sintering technique, aiming to improve their osteogenic activity. Our results showed that the synthesized particles possessed rosette-like morphology and uniform mesoporous structure, and the composite scaffold displayed the sustained release of Zn ion in a low concentration range, which was attributed to the shield effect of the PLLA matrix and the strong bonding interaction of Si-O-Zn. The scaffold could evidently promote osteogenesis differentiation of mouse bone marrow mesenchymal stem cells by upregulating their osteogenesis-related gene expression. Besides, Zn-MS particles could significantly increase the compressive strength of the PLLA scaffold because of their rosette-like morphology and mesoporous structure, which can form micromechanical interlocking with the PLLA matrix. The Zn-MS particles possess great potential to improve various polymer scaffold properties due to their advantageous morphology and physicochemical properties.
Keywords: Bone repair; Poly-L-lactic acid; Zinc doped mesoporous silica.
Copyright: © 2021 Qian, et al.
Conflict of interest statement
The authors declare no conflicts of interest.
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                References
- 
    
- Wang G, Qian G, Zan J, et al. A Co-dispersion Nanosystem of Graphene Oxide@Silicon-doped Hydroxyapatite to Improve Scaffold Properties. Mater Design. 2020;2020:109399. https://doi.org/10.1016/j.matdes.2020.109399.
 
 - 
    
- Shuai C, Yu L, Feng P, et al. Organic Montmorillonite Produced an Interlayer Locking Effect in a Polymer Scaffold to Enhance Interfacial Bonding. Mater Chem Front. 2020;4:2398–408. https://doi.org/10.1039/d0qm00254b.
 
 - 
    
- Shuai C, Yang W, Feng P, et al. Accelerated Degradation of HAP/PLLA Bone Scaffold by PGA Blending Facilitates Bioactivity and Osteoconductivity. Bioact Mater. 2020;6:490–502. https://doi.org/10.1016/j.bioactmat.2020.09.001. - PMC - PubMed
 
 - 
    
- Qi F, Wang C, Peng S, et al. A Co-dispersed Nanosystem from Strontium-Anchored Reduced Graphene Oxide to Enhance Bioactivity and Mechanical Property in Polymer Scaffolds. Mater Chem Front. 2021;2021:958. https://doi.org/10.1039/d0qm00958j.
 
 - 
    
- King JC, Shames DM, Woodhouse LR. Zinc Homeostasis in Humans. J Nutr. 2020;130:1360, S–6S. - PubMed
 
 
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