Effects of MgO nanoparticle addition on the mechanical properties, degradation properties, antibacterial properties and in vitro and in vivo biological properties of 3D-printed Zn scaffolds

Bone tissue engineering is the main method for repairing large segment bone defects. In this study, a layer of bioactive MgO nanoparticles was wrapped on the surface of spherical Zn powders, which allowed the MgO nanoparticles to be incorporated into 3D-printed Zn matrix and improved the biodegradat...

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Veröffentlicht in:Bioactive materials 2024-07, Vol.37, p.72-85
Hauptverfasser: Yu, Leiting, Sun, Fengdong, Wang, Yuanyuan, Li, Wei, Zheng, Yufeng, Shen, Guangxin, Wang, Yao, Chen, Minfang
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Sprache:eng
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Zusammenfassung:Bone tissue engineering is the main method for repairing large segment bone defects. In this study, a layer of bioactive MgO nanoparticles was wrapped on the surface of spherical Zn powders, which allowed the MgO nanoparticles to be incorporated into 3D-printed Zn matrix and improved the biodegradation and biocompatibility of the Zn matrix. The results showed that porous pure Zn scaffolds and Zn/MgO scaffolds with skeletal-gyroid (G) model structure were successfully prepared by selective laser melting (SLM). The average porosity of two porous scaffolds was 59.3 and 60.0%, respectively. The pores were uniformly distributed with an average pore size of 558.6–569.3 μm. MgO nanoparticles regulated the corrosion rate of scaffolds, resulting in a more uniform corrosion degradation behavior of the Zn/MgO scaffolds in simulated body fluid solution. The degradation ratio of Zn/MgO composite scaffolds in vivo was increased compared to pure Zn scaffolds, reaching 15.6% at 12 weeks. The yield strength (10.8 ± 2.4 MPa) of the Zn/MgO composite scaffold was comparable to that of cancellous bone, and the antimicrobial rate were higher than 99%. The Zn/MgO composite scaffolds could better guide bone tissue regeneration in rat cranial bone repair experiments (completely filling the scaffolds at 12 weeks). Therefore, porous Zn/MgO scaffolds with G-model structure prepared with SLM are a promising biodegradable bone tissue engineering scaffold. [Display omitted] •MgO nanoparticles can refine the microstructure of Zn/MgO composite scaffolds by powder mixing and 3D printing technology.•MgO nanoparticles can regulate the corrosion rate of Zn/MgO scaffolds, resulting in a more uniform corrosion degradation behavior in SBF solution.•The Zn/MgO composite scaffolds have excellent biocompatibility, which can better guide bone tissue regeneration in rat cranial bone repair experiments.•The Zn/MgO composite scaffolds can inhibit bacterial adhesion and biofilm formation with good antibacterial effects.
ISSN:2452-199X
2097-1192
2452-199X
DOI:10.1016/j.bioactmat.2024.03.016