Deng Moyuan, Tan Jiulin, Dai Qijie, Luo Fei, Xu Jianzhong
Department of Orthopaedics, Southwest Hospital, Army Medical University, Chongqing, China.
Front Cell Dev Biol. 2021 Sep 21;9:714011. doi: 10.3389/fcell.2021.714011. eCollection 2021.
The positive role of macrophages in the osteogenesis of mesenchymal stem cells (MSCs) has been a recent research focus. On the other hand, MSCs could carefully regulate the paracrine molecules derived from macrophages. Human umbilical cord mesenchymal stem cells (hucMSCs) can reduce the secretion of inflammatory factors from macrophages to improve injury healing. hucMSC-derived extracellular matrix (hucMSC-ECM) has the similar effect to hucMSCs, which could combat the inflammatory response of macrophages. Additionally, MSC-derived extracellular matrix also enhanced bone regeneration by inhibiting osteoclastic differentiation of monocyte/macrophage lineage. However, whether hucMSC-ECM could improve bone formation by guiding macrophage-induced osteogenic differentiation of MSCs is unknown. Here, we present decalcified bone scaffolds modified by hucMSC-derived extracellular matrix (), which maintained multiple soluble cytokines from hucMSCs, including macrophage migration inhibitory factor (MIF). Compared with DBM, the scaffolds induced bone formation in an improved heterotopic ossification model of severe combined immunodeficiency (SCID) mice in a macrophage-dependent manner. Macrophages cocultured with expressed four osteoinductive cytokines (BMP2, FGF2, TGFβ3 and OSM), which were screened out by RNA sequencing and measured by qPCR and western blot. The conditioned medium from macrophages cocultured with improved the osteogenic differentiation of hBMSCs. Furthermore, activated CD74/CD44 (the typical MIF receptors) signal transduction in macrophages, including phosphorylation of P38 and dephosphorylation of c-jun. On the other side, the inhibitory effects of the scaffolds with a deficient of MIF on osteogenesis and revealed that macrophage-mediated osteogenesis depended on MIF/CD74 signal transduction. The results of this study indicate that the coordinated crosstalk of macrophages and MSCs plays a key role on bone regeneration, with an emphasis on hucMSC-ECM constructing a macrophage-derived osteoinductive microenvironment.
巨噬细胞在间充质干细胞(MSCs)成骨过程中的积极作用是近期的研究热点。另一方面,MSCs能够精细调节源自巨噬细胞的旁分泌分子。人脐带间充质干细胞(hucMSCs)可减少巨噬细胞炎性因子的分泌,从而促进损伤愈合。hucMSC来源的细胞外基质(hucMSC-ECM)具有与hucMSCs相似的作用,能够对抗巨噬细胞的炎症反应。此外,MSC来源的细胞外基质还通过抑制单核细胞/巨噬细胞谱系的破骨细胞分化来增强骨再生。然而,hucMSC-ECM是否能通过引导巨噬细胞诱导的MSCs成骨分化来改善骨形成尚不清楚。在此,我们展示了经hucMSC来源的细胞外基质修饰的脱钙骨支架(),其保留了来自hucMSCs的多种可溶性细胞因子,包括巨噬细胞迁移抑制因子(MIF)。与脱钙骨基质(DBM)相比,该支架在严重联合免疫缺陷(SCID)小鼠的改良异位骨化模型中以巨噬细胞依赖的方式诱导骨形成。与该支架共培养的巨噬细胞表达四种骨诱导细胞因子(BMP2、FGF2、TGFβ3和OSM),这些细胞因子通过RNA测序筛选,并通过qPCR和蛋白质免疫印迹法进行检测。与该支架共培养的巨噬细胞的条件培养基改善了人骨髓间充质干细胞(hBMSCs)的成骨分化。此外,该支架激活了巨噬细胞中的CD74/CD44(典型的MIF受体)信号转导,包括P38的磷酸化和c-jun的去磷酸化。另一方面,缺乏MIF的该支架对成骨作用的抑制作用表明,巨噬细胞介导的成骨作用依赖于MIF/CD74信号转导。本研究结果表明,巨噬细胞与MSCs之间的协同串扰在骨再生中起关键作用,重点在于hucMSC-ECM构建了巨噬细胞来源的骨诱导微环境。