Zhang Penghui, Liu Xizhe, Guo Peng, Li Xianlong, He Zhongyuan, Li Zhen, Stoddart Martin J, Grad Sibylle, Tian Wei, Chen Dafu, Zou Xuenong, Zhou Zhiyu, Liu Shaoyu
Innovation Platform of Regeneration and Repair of Spinal Cord and Nerve Injury, Department of Orthopaedic Surgery, The Seventh Affiliated Hospital, Sun Yat-sen University, Shenzhen, 518107, China.
Guangdong Provincial Key Laboratory of Orthopedics and Traumatology, Orthopaedic Research Institute /Department of Spinal Surgery, The First Affiliated Hospital of Sun Yat-sen University, Guangzhou, 510080, China.
Bioact Mater. 2021 Mar 9;6(10):3097-3108. doi: 10.1016/j.bioactmat.2021.02.024. eCollection 2021 Oct.
It has been proven that the mechanical microenvironment can impact the differentiation of mesenchymal stem cells (MSCs). However, the effect of mechanical stimuli in biofabricating hydroxyapatite scaffolds on the inflammatory response of MSCs remains unclear. This study aimed to investigate the effect of mechanical loading on the inflammatory response of MSCs seeded on scaffolds. Cyclic mechanical loading was applied to biofabricate the cell-scaffold composite for 15 min/day over 7, 14, or 21 days. At the predetermined time points, culture supernatant was collected for inflammatory mediator detection, and gene expression was analyzed by qRT-PCR. The results showed that the expression of inflammatory mediators ( and IL8) was downregulated ( < 0.05) and the expression of ( < 0.01) and ( < 0.05) was upregulated under mechanical loading. The cell-scaffold composites biofabricated with or without mechanical loading were freeze-dried to prepare extracellular matrix-based scaffolds (ECM-based scaffolds). Murine macrophages were seeded on the ECM-based scaffolds to evaluate their polarization. The ECM-based scaffolds that were biofabricated with mechanical loading before freeze-drying enhanced the expression of M2 polarization-related biomarkers ( and , < 0.05) of macrophages in vitro and increased bone volume/total volume ratio in vivo. Overall, these findings demonstrated that mechanical loading could dually modulate the inflammatory responses and osteogenic differentiation of MSCs. Besides, the ECM-based scaffolds that were biofabricated with mechanical loading before freeze-drying facilitated the M2 polarization of macrophages in vitro and bone regeneration in vivo. Mechanical loading may be a promising biofabrication strategy for bone biomaterials.
业已证明,机械微环境可影响间充质干细胞(MSCs)的分化。然而,在生物制造羟基磷灰石支架过程中,机械刺激对MSCs炎症反应的影响仍不清楚。本研究旨在探究机械加载对接种于支架上的MSCs炎症反应的影响。采用循环机械加载方式,在7天、14天或21天内,每天对细胞-支架复合材料进行15分钟的生物制造。在预定时间点,收集培养上清液用于炎症介质检测,并通过qRT-PCR分析基因表达。结果显示,在机械加载下,炎症介质(和IL8)的表达下调(<0.05),而(<0.01)和(<0.05)的表达上调。对有无机械加载生物制造的细胞-支架复合材料进行冻干处理,以制备基于细胞外基质的支架(ECM基支架)。将小鼠巨噬细胞接种于ECM基支架上,以评估其极化情况。冻干前经机械加载生物制造的ECM基支架,在体外增强了巨噬细胞M2极化相关生物标志物(和,<0.05)的表达,并在体内增加了骨体积/总体积比。总体而言,这些发现表明机械加载可双重调节MSCs的炎症反应和成骨分化。此外,冻干前经机械加载生物制造的ECM基支架在体外促进了巨噬细胞的M2极化,在体内促进了骨再生。机械加载可能是一种有前景的骨生物材料生物制造策略。