脚手架
PLGA公司
组织工程
软骨发生
细胞外基质
生物医学工程
弯月面
生物相容性
粘附
材料科学
再生(生物学)
化学
间充质干细胞
纳米技术
细胞
细胞生物学
复合材料
生物化学
物理
纳米颗粒
入射(几何)
光学
冶金
生物
医学
作者
Hao Li,Zhiyao Liao,Zhen Yang,Cangjian Gao,Liwei Fu,Pinxue Li,Tianyuan Zhao,Fuyang Cao,Wei Chen,Zhiguo Yuan,Xiang Sui,Shuyun Liu,Quanyi Guo
标识
DOI:10.3389/fbioe.2021.662381
摘要
Meniscus tissue engineering (MTE) aims to fabricate ideal scaffolds to stimulate the microenvironment for recreating the damaged meniscal tissue. Indeed, favorable mechanical properties, suitable biocompatibility, and inherent chondrogenic capability are crucial in MTE. In this study, we present a composite scaffold by 3D printing a poly(ε-caprolactone) (PCL) scaffold as backbone, followed by injection with the meniscus extracellular matrix (MECM), and modification with kartogenin (KGN)-loaded poly(lactic-co-glycolic) acid (PLGA) microsphere (μS), which serves as a drug delivery system. Therefore, we propose a plan to improve meniscus regeneration via KGN released from the 3D porous PCL/MECM scaffold. The final results showed that the hydrophilicity and bioactivity of the resulting PCL/MECM scaffold were remarkably enhanced. In vitro synovium-derived mesenchymal stem cells (SMSCs) experiments suggested that introducing MECM components helped cell adhesion and proliferation and maintained promising ability to induce cell migration. Moreover, KGN-incorporating PLGA microspheres, which were loaded on scaffolds, showed a prolonged release profile and improved the chondrogenic differentiation of SMSCs during the 14-day culture. Particularly, the PCL/MECM-KGN μS seeded by SMSCs showed the highest secretion of total collagen and aggrecan. More importantly, the synergistic effect of the MECM and sustained release of KGN can endow the PCL/MECM-KGN μS scaffolds with not only excellent cell affinity and cell vitality preservation but also chondrogenic activity. Thus, the PCL/MECM-KGN μS scaffolds are expected to have good application prospects in the field of MTE.
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