Aug 2026· Polymers· Vol 18· 0 citations· 111 references
Medicine
TL;DR
The addition of HAP particles significantly altered the scaffold morphology and structure, increasing the fiber diameter and surface roughness, and promoting the formation of fused fiber junctions, and inducing the appearance of semicrystalline PLLA domains, which significantly improved the mechanical properties of the scaffolds.
Abstract
The addition of hydroxyapatite (HAP) to electrospun poly-L-lactide (PLLA) scaffolds promotes cell adhesion and differentiation but generally leads to a significant deterioration in mechanical properties due to particle agglomeration. Moreover, the encapsulation of HAP particles within a polymer layer makes them inaccessible to body fluids and cells, thereby limiting the bioactivity of the resulting composite scaffold. In this work, HAP microparticles with median size of 26.3 µm were used to obtain exposed HAP particles on the surface of electrospun PLLA fibers. SEM images and EDX maps revealed that individual particles, particularly the larger ones, were exposed from the polymer scaffold surface. The addition of HAP particles significantly altered the scaffold morphology and structure, increasing the fiber diameter and surface roughness by 2.8–4.1-fold, promoting the formation of fused fiber junctions, and inducing the appearance of semicrystalline PLLA domains. These structural changes significantly improved the mechanical properties of the scaffolds. Specifically, the tensile strength and Young’s modulus of the prepared scaffolds are increased by 2.3–3.8-fold following HAP incorporation. Compared with neat PLLA scaffolds, HAP-containing scaffolds exhibited 1.2–1.4-fold higher osteocalcin and osteopontin expression by human adipose-derived mesenchymal stromal cells (hADSCs). Compared to tissue culture plastic, the expressions of osteocalcin and osteopontin on the composite scaffolds were 7.1–7.9-fold and 2.8–3.0-fold higher, respectively.
Findings highlight the importance of controlling HAp loading to achieve a balanced combination of processability, structural integrity, and osteogenic performance in PLA-based biomaterials.
Lukošiūnas Jokūbas, Šaparajavaitė Gabrielė, Dambrauskas Tadas et al.· International Journal of Bio...· 0 citations
Various factors, such as materials, fabrication techniques, parameters, and sterilization, play important roles in the scaffold’s success by directly affecting its performance. Optimizing these factors can result in the fabrication of scaffolds with desirable properties. Poly-L-Lactic Acid (PLLA) is a biodegradable syn...
Muhammad Rasyad bin Mohamed Rafik, Mohd Reusmaazran bin Yusof, Nor Kamalia Binti Zahari· ASEAN Journal of Chemical En...· 0 citations
3D scaffolds based on Chitosan/Collagen/Poly(lactic-co-glycolic acid) (PLGA)/Hydroxyapatite (HAp) nanoparticles are presented as a promising approach to studying the migration of the 3T3 cell line and demonstrate promising effects on fibroblast migration in an in vitro scratch-assay model using NIH 3T3 cells.
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Hydroxyapatite is acknowledged as a valuable biomaterial for bone tissue engineering because of its outstanding biocompatibility and resemblance to natural bone. Nonetheless, attaining an ideal equilibrium between porosity and mechanical strength in porous HA scaffolds continues to be difficult. This research examines...
Baharudin Priwintoko, Sri Nugroho, R. Ismail et al.· E3S Web of Conferences· 0 citations
Incorporation of silk fibroin into polycaprolactone (PCL) matrices introduces significant alterations to the crystalline structure and surface morphology of blended polymeric materials, presenting opportunities for advanced biomaterial design. This study investigates fibroin‐PCL blends prepared either as films via so...
K. Kocourková, David Jaška, M. Mrlík et al.· Advanced Materials Interface...· 0 citations
This study provides a practical framework for creating intrafilamentary porosity into 3D-printed PCL scaffolds with improved surface-mediated biological performance.
Mikaela Kutrolli, Noah S Pereira, Delaram Ghanbariamin et al.· ACS Biomaterials Science & E...· 0 citations
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