» Articles » PMID: 38750853

Mineralization, Degradation and Osteogenic Property of Polylactide Multicomponent Porous Composites for Bone Repair: In Vitro and in Vivo Study

Overview
Publisher Elsevier
Date 2024 May 16
PMID 38750853
Authors
Affiliations
Soon will be listed here.
Abstract

Gelatin and hydroxyapatite were assembled into polylactide porous matrix to prepare multicomponent porous composites for bone repair (PLA-gH). PLA-gH possessed a superior ability of mineralization. During simulated body fluids (SBF), the spherical Ca-P depositions on surface of PLA-gH became bulk as Ca/P decreased, while they locally turned into the rod with different variation in Ca/P during SBF containing bovine serum albumin (SBF-BSA), indicating that the mineralization of PLA-gH could be regulated by BSA. Meanwhile, PLA-gH possessed good degradation behaviour, especially in SBF-BSA, the degradation of PLA porous matrix was higher than that in SBF after 14-day immersion, whose crystallinity (X) decreased to a slightly lower level. Gelatin and hydroxyapatite endowed PLA-gH with good osteogenic property, characterized by obvious osteogenic differentiation and bone regeneration. In terms of predicting the cytocompatibility, osteogenic differentiation and new bone mineralization of PLA-gH by in vitro methods, applying SBF-BSA may be more reliable than SBF.

Citing Articles

Cell-microsphere based living microhybrids for osteogenesis regulating to boosting biomineralization.

Hu Z, Zhang Y, Zhang J, Zheng R, Yang Y, Kong F Regen Biomater. 2024; 11:rbae125.

PMID: 39569077 PMC: 11578599. DOI: 10.1093/rb/rbae125.