Literature DB >> 25628059

Hybrid scaffolds based on PLGA and silk for bone tissue engineering.

Faheem A Sheikh1, Hyung Woo Ju1, Bo Mi Moon1, Ok Joo Lee1, Jung-Ho Kim1, Hyun Jung Park1, Dong Wook Kim1, Dong-Kyu Kim1,2, Ji Eun Jang3, Gilson Khang3, Chan Hum Park1,2.   

Abstract

Porous silk scaffolds, which are considered to be natural polymers, cannot be used alone because they have a long degradation rate, which makes it difficult for them to be replaced by the surrounding tissue. Scaffolds composed of synthetic polymers, such as PLGA, have a short degradation rate, lack hydrophilicity and their release of toxic by-products makes them difficult to use. The present investigations aimed to study hybrid scaffolds fabricated from PLGA, silk and hydroxyapatite nanoparticles (Hap NPs) for optimized bone tissue engineering. The results from variable-pressure field emission scanning electron microscopy (VP-FE-SEM), equipped with EDS, confirmed that the fabricated scaffolds had a porous architecture, and the location of each component present in the scaffolds was examined. Contact angle measurements confirmed that the introduction of silk and HAp NPs helped to change the hydrophobic nature of PLGA to hydrophilic, which is the main constraint for PLGA used as a biomaterial. Thermo-gravimetric analysis (TGA) and FT-IR spectroscopy confirmed thermal decomposition and different vibrations caused in functional groups of compounds used to fabricate the scaffolds, which reflected improvement in their mechanical properties. After culturing osteoblasts for 1, 7 and 14 days in the presence of scaffolds, their viability was checked by MTT assay. The fluorescent microscopy results revealed that the introduction of silk and HAp NPs had a favourable impact on the infiltration of osteoblasts. In vivo experiments were conducted by implanting scaffolds in rat calvariae for 4 weeks. Histological examinations and micro-CT scans from these experiments revealed beneficial attributes offered by silk fibroin and HAp NPs to PLGA-based scaffolds for bone induction.
Copyright © 2015 John Wiley & Sons, Ltd.

Entities:  

Keywords:  PLGA; cell viability; hard tissue; hydrophilic; osteoblasts; silk

Mesh:

Substances:

Year:  2015        PMID: 25628059     DOI: 10.1002/term.1989

Source DB:  PubMed          Journal:  J Tissue Eng Regen Med        ISSN: 1932-6254            Impact factor:   3.963


  15 in total

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