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Updated: May 2, 2026

Fabrication of Mechanically Tunable and Bioactive Metal Scaffolds for Biomedical Applications
Published on: December 8, 2015
Structural Evolution of an Optimized Highly Interconnected Hierarchical Porous Mg Scaffold under Dynamic Flow
Gaozhi Jia1, Yicong Huang2, Zhenjiu Zhang1
1School of Intelligent Manufacturing and Equipment, Shenzhen Institute of Information Technology, Shenzhen 518172, China.
This study shows that fluid flow rate significantly impacts the degradation and porosity of magnesium scaffolds, crucial for bone healing. Lower flow rates reduce interconnectivity by causing deposits, affecting scaffold performance.
Area of Science:
- Biomaterials Science
- Orthopedic Engineering
- Tissue Engineering
Background:
- Magnesium (Mg) and its alloys are promising for bone screws due to biocompatibility and biodegradability.
- Controlled Mg2+ ion release aids bone fracture healing, making Mg attractive for tissue engineering.
- Porous Mg scaffolds offer high surface area but struggle with slow degradation and maintaining interconnectivity for tissue ingrowth.
Purpose of the Study:
- To introduce a highly interconnected hierarchical porous Mg scaffold.
- To investigate scaffold degradation behavior under simulated body fluid flow rates.
- To elucidate how degradation impacts scaffold interconnectivity and structural integrity.
Main Methods:
- Utilized a bioreactor to simulate in vivo degradation conditions with varying body fluid flow rates.
- Analyzed the evolution of the porous structure and scaffold interconnectivity over 42 days.
- Quantified porosity changes and deposit formation at different flow rates (0.5, 1.0, 2.0 mL/min).
Main Results:
- Initial scaffold interconnectivity is significantly influenced by fluid flow rate.
- Lower flow rates (0.5 mL/min) led to substantial Mg2+ ion accumulation and pore occlusion by deposits.
- Porosity decreased significantly: 41.25% at 0.5 mL/min, 58.52% at 1.0 mL/min, and 68.80% at 2.0 mL/min after 42 days.
- Reduced porosity and pore space occlusion hindered scaffold interconnectivity.
Conclusions:
- Fluid flow rate is a critical factor in managing Mg scaffold degradation and maintaining structural integrity.
- The degree of porosity reduction can serve as an indicator for assessing a scaffold's ability to retain interconnectivity.
- Findings offer insights into designing Mg scaffolds with optimized pore strut and interconnectivity for enhanced tissue engineering applications.
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