The results showed that the composite scaffolds effectively improved the inflammatory microenvironment in the defect region, promoted macrophage polarization toward an anti-inflammatory phenotype, enhanced cellular osteogenic activity and mineralization, and facilitated new bone formation and tissue reconstruction.
Abstract
The persistent inflammatory microenvironment during bone defect repair can inhibit osteogenic differentiation, delay angiogenesis, and reduce the reparative efficacy of implanted materials. Therefore, developing biomaterials that combine immunomodulatory functions with bone-regenerative capacity is of great significance. In this study, composite scaffolds with anti-inflammatory and bone-repair-promoting properties were fabricated through surface functionalization and 3D printing. The structural and physicochemical properties of the scaffolds were systematically characterized by scanning electron microscopy (SEM), elemental mapping, X-ray diffraction (XRD), Fourier-transform infrared spectroscopy (FTIR), contact angle measurement, and mechanical testing. Transmission electron microscopy and related analyses were further used to evaluate their microstructure and surface characteristics. The degradation behavior, pH variation, ion release profile, and antioxidant performance of the scaffolds under inflammatory conditions were then investigated to verify their ability to regulate the local microenvironment. In vitro, cytocompatibility was evaluated using CCK-8 assays, live/dead staining, and immunofluorescence staining. The effects of the scaffolds on macrophage polarization and inflammatory factor expression were further analyzed. Their osteogenic differentiation potential was assessed by alkaline phosphatase (ALP) staining, Alizarin Red staining, and osteogenesis-related gene expression analysis. In addition, Micro-CT, hematoxylin and eosin (HE) staining, and Masson's trichrome staining were performed in a bone defect animal model to evaluate bone regeneration and tissue repair. The results showed that the composite scaffolds effectively improved the inflammatory microenvironment in the defect region, promoted macrophage polarization toward an anti-inflammatory phenotype, enhanced cellular osteogenic activity and mineralization, and facilitated new bone formation and tissue reconstruction. This study provides a theoretical basis and experimental evidence for the design and application of bone repair materials under inflammatory conditions.
The scaffold showed the highest osteoinduction, and the scaffold with 530 ± 56 μm average pore diameter demonstrated the highest expression of osteodifferentiation marker genes in DPSCs, and the addition of nanoparticles into the polymer matrix led to the decrease in the expression of pro-inflammatory genes in macrophages.
A. V. Yushkov, E. A. Kuvshinova, I. Bulygina et al.· Biomedical Materials· 0 citations
These findings underscore the dual function of rGO in simultaneously improving the mechanical integrity and osteogenic capacity of CMC-based scaffolds, with 0.5%-1% rGO identified as the optimal concentration window for bone tissue engineering applications.
Ronghui Zhou, Yanjun Lin, Xiaojing Zhu et al.· Journal of Biomedical Materi...· 0 citations
It is demonstrated that the PCL/Gel/IL-4 membrane synergistically improves physical properties, release behavior, osteogenic capacity, and immunomodulation, offering a promising multi-functional platform for bone regeneration.
Guofeng Huang, Min Liu, Zhiyuan Tai et al.· Materials Research Express· 0 citations
PURPOSE
Titanium implants are widely used in prosthodontics, but their bioinert surfaces can limit early osseointegration. This study examined whether electrolyte-tuned anodization can tailor TiO2 nanotube (TNT) coatings to improve in vitro osteogenesis, angiogenesis, and inflammation-related responses.
MATERIALS AND METHODS
Titanium was anodized in three electrolytes to produce TNT, TNT-H, and TNT-B coatings. Morphology and roughness were assessed by scanning electron microscope, phase/chemistry by X-ray diffraction (XRD) and X-ray photoelectron spectroscopy (XPS), and wettability by contact angle. Cytocompatibility and functional responses were evaluated using bone marrow-derived mesenchymal stem cells, human umbilical vein endothelial cells, and RAW264.7 cells, including viability/adhesion assays, macrophage polarization and cytokine expression, and osteogenic/angiogenic assays.
RESULTS
TNT-B (mean pore diameter ∼188 nm) showed the most consistent improvements across endpoints, enhancing cell adhesion/proliferation, osteogenesis-associated markers, and angiogenesis-associated signals in vitro, while reducing pro-inflammatory cytokine expression and promoting M2-skewed polarization. TNT-H showed measurable responses versus TNT but did not outperform TNT-B in angiogenic assays under the tested conditions. XRD/XPS indicated minor Ti6O- and defect-related signatures in TNT-B that are relevant to these responses. After annealing, corrosion resistance ranked TNT-H > TNT-B > TNT.
CONCLUSIONS
Electrolyte modulation enables the controllable fabrication of TNT architectures and surface chemistry. TNT-B demonstrates promising in vitro performance but exhibits reduced electrochemical stability relative to TNT-H, highlighting a bioactivity-stability trade-off and the need for further optimization and validation before clinical use.
Zhengyang Xing, Rui Chao, Xitong Tu et al.· Journal of Prosthodontics· 0 citations
The bioactive chitosan/Mg-HAp nanocomposite scaffold effectively promotes bone regeneration by enhancing osteogenic signaling pathways and exhibits strong potential for bone tissue engineering applications.
S.M. Hefzollesan, H. Musayeva, Hamed Aghazadeh et al.· Emergent Materials· 0 citations
The in-vitro experiment revealed that the PCL-CQ composite electrospun scaffold showed better MG63 cell adhesion and growth compared to the control PCL scaffold and thus could be a potential scaffold material for bone defect applications.
P. Harikrishnan, Kayal Vizhi Kumaravel, Arayambath Balamani et al.· Trends in Biomaterials & Art...· 0 citations
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