A tailored bioactive 3D porous poly(lactic-acid)-exosome scaffold with osteo-immunomodulatory and osteogenic differentiation properties

被引:0
作者
Yi Zhang
Mengjie Huo
Yi Wang
Lan Xiao
Jianmei Wu
Yaping Ma
Dingmei Zhang
Xuemei Lang
Xin Wang
机构
[1] Zunyi Medical University,Department of Hygiene Toxicology
[2] Affiliated Hospital of Zunyi Medical University,Department of Orthopaedic Surgery
[3] Queensland University of Technology (QUT),School of Mechanical, Medical & Process Engineering, Centre for Biomedical Technologies
[4] Australia China Centre for Tissue Engineering and Regenerative Medicine,Department of Pre
[5] Central Hospital of Chongqing University / Chongqing Emergency Medical Center,hospital Emergency
来源
Journal of Biological Engineering | / 16卷
关键词
MSC-Exo; Bioactive 3D PLA scaffold; Macrophages; Immunoregulation; Osteogenesis;
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摘要
Polylactic acid (PLA) is a versatile and biodegradable scaffold widely used in biomedical fields to repair tissue defects. Exosomes derived from mesenchymal stem cells (MSCs) are nano-sized extracellular vesicles, which play an important role in tissue engineering in recent years. The primary focus of this study was to develop a bioactive 3D PLA scaffold using exosome-based strategy to improve its osteogenic and immunoregulatory potential. We firstly successfully isolated MSC-derived exosomes (MSC-Exo). Morphological analysis revealed that MSC-Exo exhibits a typical cup-shaped morphology with high expression of exosomal marker CD63. MSC-Exo internalization into recipient cells were also investigated using flow cytometry and confocal laser scanning microscopy. Porous 3D PLA scaffold coated MSC-Exo were used for immunoregulatory and osteogenic testing. Exosomes released from 3D PLA scaffold were validated in RAW264.7 and hBMSCs. The cell proliferation and live/dead assay indicated high biocompatibility for PLA-Exo scaffold. Additionally, PLA-Exo scaffold could reduce the pro-inflammatory marker expression and reactive oxygen species (ROS) production, indicating potential immunoregulatory potential. It is also confirmed that PLA-Exo scaffold could potentiate osteogenic differentiation in the osteogenesis assay. In conclusion, our results demonstrate this bioactive 3D-printed PLA scaffolds with MSC-Exo modification holds immunoregulatory potential and favor osteogenic differentiation, thus having potential applications in bone tissue regeneration.
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