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Cryogenic 3D-Printed PLGA/Nano-selenium Scaffold for Bone Regeneration: A Dual-Functional Strategy Synergistically Regulating Macrophage Polarization and Osteogenic Differentiation

作者:Shengwen Cheng, Yue Wang, Yu Zhai, Mingfei Dong, X Q Peng, Xiaohong Luo, Jiacheng Liu, Junyan Liu, Y F He, Xiaoxiong Li, Ke Huang, Senrui Liu, F M Liu, Y S Zhang, Z H Li, Wei Huang, Chen Zhao, Yiting Lei · 发表于:Burns & Trauma · 年份:2026 · DOI:10.1093/burnst/tkag049 · 被引用次数:1 · 研究领域:Bone Tissue Engineering Materials、Selenium in Biological Systems、Tissue Engineering and Regenerative Medicine

Abstract Background Autologous and allogeneic bone grafts are primarily used for bone tissue defects; however, they have limitations such as limited supply, donor site morbidity, and immune rejection risks. Therefore, substitute synthetic bone grafts are required. Methods Using low-temperature 3D printing combined with freeze-drying technology, a hierarchically porous PLGA/HA@SeNPs composite scaffold was fabricated by compositing poly(lactic-co-glycolic acid) (PLGA) with hyaluronic acid-modified selenium nanoparticles (HA@SeNPs), enabling sustained immunomodulation and osteogenic activity through its engineered microtopography and bioactive components. Results In vitro evaluations confirmed that the unique microstructure and sustained selenium release from HA@SeNPs synergistically promoted macrophage polarization toward the M2 phenotype, accompanied by enhanced osteogenic differentiation as shown by upregulation of Runx2 and OCN and accelerated matrix mineralization. Implantation into a rat femoral critical-sized defect model resulted in substantially improved bone repair and architectural restoration. Conclusions These findings indicate that the intrinsic physicochemical properties of the PLGA/HA@SeNPs scaffold orchestrate a favorable osteo-immune environment, positioning it as a promising platform for bone regeneration.