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Updated: Aug 8, 2026

Multimodal Approach to Assess Bone Regeneration and Scaffold Performance
Published on: February 13, 2026
Influence of scaffold micro architecture on bone regeneration: a multi-physics parametric study
Nerea Olivera Jurjo1, Luca D'Andrea1, Pasquale Vena1
1Laboratory of Biological Structure Mechanics (LaBS), Department of Chemistry, Materials and Chemical Engineering "Giulio Natta", Politecnico di Milano, Piazza Leonardo da Vinci 32, Milan, 20133, Italy.
Triply periodic minimal surface (TPMS) scaffolds enhance bone regeneration. Optimized geometry, porosity, and connectivity significantly accelerate cell ingrowth and tissue formation for improved bone repair.
Area of Science:
- Biomaterials Engineering
- Regenerative Medicine
- Computational Biology
Background:
- Scaffold geometry is crucial for bone defect regeneration.
- Triply periodic minimal surface (TPMS) structures offer connected porosity and tunable mechanical properties for bone repair applications.
Purpose of the Study:
- To computationally analyze TPMS scaffold geometry for optimal bone regeneration.
- To identify key architectural features influencing osteogenesis and mechanical performance.
Main Methods:
- Parametric computational analysis of four TPMS architectures with varying porosity and connectivity.
- Assessment of regenerative potential using a validated mechano-biological model.
- Quantification of mechanical stiffness, permeability, and morphometric properties.
Main Results:
- Scaffold porosity and pore connectivity significantly impact cellular ingrowth.
- Network-type TPMS geometries showed 20-30% faster regeneration than Sheet-type.
- Primitive architecture yielded fastest regeneration; Diamond offered a balance of regeneration and mechanics; IWP structures provided high stiffness.
Conclusions:
- Geometric features of TPMS scaffolds critically influence bone regeneration efficiency.
- Optimized porosity and full interconnectivity are key for enhanced osteogenic performance.
- This study provides quantitative guidance for designing advanced TPMS ceramic scaffolds for bone regeneration.
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