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October 16, 2025Biomimetics3 citationsOpen Access

Optimizing Biodegradable Poly(D,L-lactide) Scaffolds Reinforced with Graphene Oxide for Bone Tissue Regeneration

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EDEsperanza Dı́azADAnder García DíezXLXabier León

Key Points

  • Incorporation of graphene oxide into poly(D,L-lactide) scaffolds significantly enhances their mechanical strength and thermal stability.
  • Cytotoxicity assays confirmed all scaffold variants were biocompatible, indicating their suitability for medical applications.
  • The scaffolds exhibited accelerated degradation with higher graphene oxide content, retaining excellent mechanical properties.
  • Findings provide insights for designing enhanced materials for effective bone tissue regeneration.

Abstract

This study investigates the potential of porous poly(D,L-lactide) (PDLLA) scaffolds reinforced with graphene oxide (GO) for bone tissue engineering applications. Scaffolds were fabricated using thermally induced phase separation (TIPS) and characterized in terms of morphology, biodegradation, thermal and mechanical properties, and cytocompatibility. The incorporation of GO enhanced both mechanical strength and thermal stability, likely due to hydrogen bonding and electrostatic interactions between GO’s functional groups (carbonyl, carboxyl, epoxide, and hydroxyl) and PDLLA chains. In vitro degradation studies showed that GO accelerated degradation, while scaffolds with higher GO content retained superior mechanical strength. Cytotoxicity assays confirmed the biocompatibility of all scaffold variants, supporting their suitability for biomedical applications. Overall, the findings demonstrate how GO incorporation can modulate scaffold composition and performance. This provides insights for the design of improved systems for bone tissue regeneration.

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Cite This Study

Dı́az et al. (2025) studied this question.

synapsesocial.com/papers/68f12bfb2107091eab27a56dhttps://doi.org/10.3390/biomimetics10100700
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