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Alexandria Dental Journal
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Journal Archive
Volume Volume 50 (2025)
Issue Issue 2
A (Oral and maxillofacial surgery, oral medicine, periodontology, oral radiology, oral pathology, oral biology)
Issue Issue 2
B (Endodontics, Prosthodontics, Fixed prosthodontics, Conservative dentistry, Dental Biomaterials)
Issue Issue 2
C (Pediatric dentistry, Dental public health, Orthodontics)
Issue Issue 1
A (Oral and maxillofacial surgery, oral medicine, periodontology, oral radiology, oral pathology, oral biology)
Issue Issue 1
B (Endodontics, Prosthodontics, Fixed prosthodontics, Conservative dentistry, Dental Biomaterials)
Issue Issue 1
C (Pediatric dentistry, Dental public health, Orthodontics)
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Eldokmak, M., Essawy, M., Abdelkader, S., Abolgheit, S. (2025). Biological and Mechanical Evaluation of Integrated Nano-Hydroxyapatite in 3D-Printed Polylactic Acid Scaffold. Alexandria Dental Journal, 50(1), 133-138. doi: 10.21608/adjalexu.2024.243326.1425
Mai Eldokmak; Marwa Essawy; Sally Abdelkader; Salma Abolgheit. "Biological and Mechanical Evaluation of Integrated Nano-Hydroxyapatite in 3D-Printed Polylactic Acid Scaffold". Alexandria Dental Journal, 50, 1, 2025, 133-138. doi: 10.21608/adjalexu.2024.243326.1425
Eldokmak, M., Essawy, M., Abdelkader, S., Abolgheit, S. (2025). 'Biological and Mechanical Evaluation of Integrated Nano-Hydroxyapatite in 3D-Printed Polylactic Acid Scaffold', Alexandria Dental Journal, 50(1), pp. 133-138. doi: 10.21608/adjalexu.2024.243326.1425
Eldokmak, M., Essawy, M., Abdelkader, S., Abolgheit, S. Biological and Mechanical Evaluation of Integrated Nano-Hydroxyapatite in 3D-Printed Polylactic Acid Scaffold. Alexandria Dental Journal, 2025; 50(1): 133-138. doi: 10.21608/adjalexu.2024.243326.1425

Biological and Mechanical Evaluation of Integrated Nano-Hydroxyapatite in 3D-Printed Polylactic Acid Scaffold

Article 19, Volume 50, Issue 1, April 2025, Page 133-138  XML PDF (353.29 K)
Document Type: Original Article
DOI: 10.21608/adjalexu.2024.243326.1425
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Authors
Mai Eldokmak email 1; Marwa Essawyorcid 2; Sally Abdelkader3; Salma Abolgheit3
1Dental biomaterials department, Faculty of Dentistry, Champollion Street, Azarita, Alexandria, 21521 Egypt.
2Oral Pathology Department, Faculty of Dentistry, Alexandria University, Egypt. Center of Excellence for Research in Regenerative Medicine and Applications (CERRMA), Faculty of Medicine, Alexandria University, Egypt
3Dental biomaterials Department, Faculty of Dentistry, Champollion Street – Azarita, Alexandria, 21521 Egypt.
Abstract
Introduction: Tissue engineering is a technique for simulating nature. It involves the development of artificial substitutes to restore the functions of damaged tissues. It includes the usage of porous matrix to allow its loading with cells to produce a regenerative construct. Most synthetic polymers including poly (lactic acid) (PLA) used in 3D printing are not designed to act as a scaffold to promote cellular adhesion and has limited bioactivity, so they need modification to increase bioactivity, promote cellular adhesion and then tissue regeneration.
Objective: Our purpose was to study the bioactivity, compressive strength, elastic modulus and toughness of 3D-printed PLA scaffold modified with 5% nano-hydroxyapatite (nano-HA) versus PLA scaffold.
Methods: The fused deposition modeling method was used to print PLA, and PLA with embedded 5% nano-HA particles in the matrix. The chemical composition and surface properties of scaffolds were characterized by Energy Dispersive X-ray Analysis and Scanning Electron Microscope, the mechanical properties of scaffolds were tested using universal testing machine testing. The scaffold bioactivity was determined by monitoring the deposition of calcium phosphate compounds after simulated body fluid immersion.
Results: The nano-HA loaded PLA scaffold showed decreasing compressive strength and toughness which recorded 16.02 MPa and 226.82 J respectively compared to blank PLA scaffold which recorded 27.87 MPa and 1026.7 J, but it showed increasing calcium phosphate crystals deposition.
Conclusions: This study explored the efficacy of modifying PLA scaffold with inductive nano-HA incorporated in the matrix, which improved its bioactivity without interfering with the compressive strength of PLA material significantly.
Keywords
3D-printing; Bioactivity; Nano-hydroxyapatite; Poly lactic acid; Scaffold
Main Subjects
Dental biomaterials
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