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PMID: 41958836 已发表 · epublish 英语

A multifunctional conductive physiomimetic scaffold: synergy of rGO coating and cannabis-derived nanotopography for infection-resistant bone repair.

Saeedi FH, Shahsavarani H, Hosseini S, Farrokhi N, Ghosal K, Thomas S, Alipour A, Ingvarsson PK, Jahanfar M

摘要

Conventional bone grafts cannot reliably fulfill the dual requirements of rapid osseoinduction and intrinsic infection-resistance to meet clinical needs. We therefore aimed to overcome this dual challenge by fabricating a novel physiomimetic three-dimensional scaffold. This was achieved by coating the unique nano-grooved cellulosic matrix derived from Cannabis sativa leaf trichomes with reduced graphene oxide (rGO) to mimic the native osteogenic niche. The plant-derived skeleton serves as a ready-made, topographically complex framework, while the rGO coating provides a microenvironment well suited for bone repair. Comprehensive characterization verified a measurable surface energy, hydrophilicity, roughness, and proper conductivity due to rGO coating. Moreover, in vitro examination confirmed that rGO biofunctionalization synergized with the innate nano-topography, dynamically accelerated the osteogenic differentiation of human adipose-derived stem cells. An upregulated expression of key bone markers, COL1A1, RUNX2, and OPN, sustained alkaline phosphatase activity, and augmented deposition of collagen and mineralized matrix exhibited the potential of the proposed approach for efficient osteal regeneration. An equally important finding was the scaffold's inherent antibacterial property against Gram-positive and Gram-negative pathogens. We demonstrated that augmenting a natural cannabis-derived nanostructure with a conductive nanomaterial coating creates a multifaceted therapeutic strategy capable of promoting bone formation and potentially antibacterial effects, addressing two critical obstacles in regenerative orthopedics.

关键词
antibacterial biomaterials bone graft substitute bone regeneration cannabis trichomes conductive scaffold
文献信息
期刊
Frontiers in bioengineering and biotechnology
期刊简称
Front Bioeng Biotechnol
ISSN
2296-4185
语言
英语
国家/地区
Switzerland
NLM ID
101632513
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