Graded oxidation state calcium phosphate graphene oxide modulates the mechanical and biological behavior of bone matrices

成果类型:
Article
署名作者:
Hosseini, Fatemeh S.; Kan, Ho-Man; Whitfield, Taraje; Argyrou, Chrysoula; Silva, Dilshan; Deng, Chenyun; Orlando, Jason D.; Nair, Lakshmi; Sydlik, Stefanie A.; Maye, Peter F.; Lo, Kevin W. -H.; Laurencin, Cato T.
署名单位:
University of Connecticut; University of Connecticut; Carnegie Mellon University; Carnegie Mellon University; University of Connecticut; University of Connecticut; University of Connecticut; University of Connecticut; University of Connecticut
刊物名称:
PROCEEDINGS OF THE NATIONAL ACADEMY OF SCIENCES OF THE UNITED STATES OF AMERICA
ISSN/ISSBN:
0027-8424; 1091-6490
DOI:
10.1073/pnas.2537761123
发表日期:
2026-08-11
页码:
e2537761123
关键词:
bone regenerative engineering calcium phosphate graphene oxide bone scaffolds POLY(LACTIC-CO-GLYCOLIC ACID) PLGA scaffolds cells
摘要:
Calcium phosphate graphene (CaPG) is a promising reinforcement for polymeric bone matrices, yet the impact of graphene oxide (GO) oxidation on CaPG chemistry and matrix performance remains unclear. Our previous work demonstrated that 5 wt% CaPG provides optimal mechanical and biological performance of poly (lactic-co-glycolic acid) (PLGA) matrix. The present study isolates GO oxidation as the sole variable while maintaining a fixed 5 wt% CaPG loading. CaPG was synthesized under three oxidation conditions: Low Phosphate-High Oxygen at 50 degrees C, High Phosphate-High Oxygen at 100 degrees C, and High Phosphate-Low Oxygen at 156 degrees C and incorporated into the PLGA microspheres. Our results have shown that oxidation state regulates oxygen functional group density, calcium phosphate incorporation, hydrophilicity, and hydration behavior, which collectively modulate mechanical properties and osteogenic activity of the matrix. These findings demonstrate that oxidation can serve as a key tunable factor that generates distinct physicochemical and biological profiles, establishing oxidation programming as a practical approach for creating adaptable CaPG-reinforced PLGA matrices for diverse bone regeneration needs.
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