Department of Orthopedic Surgery, College of Medicine, Catholic Kwandong University, International St. Mary's Hospital, Incheon 22711, Republic of Korea.
Department of Neurology, College of Medicine, Catholic Kwandong University, International St. Mary's Hospital, Incheon 22711, Republic of Korea.
Int J Mol Sci. 2023 Sep 27;24(19):14620. doi: 10.3390/ijms241914620.
Three-dimensional (3D) culture systems have been widely used to promote the viability and metabolic activity of mesenchymal stem cells (MSCs). The aim of this study was to explore the synergistic benefits of using dual 3D MSC culture systems to promote vascular regeneration and enhance therapeutic potential. We used various experimental assays, including dual 3D cultures of human adipose MSCs (hASCs), quantitative reverse transcription polymerase chain reaction (qRT-PCR), in vitro cell migration, Matrigel tube network formation, Matrigel plug assay, therapeutic assays using an ischemic hind limb mouse model, and immunohistochemical analysis. Our qRT-PCR results revealed that fibroblast growth factor 2 (FGF-2), granulocyte chemotactic protein-2 (GCP-2), and vascular endothelial growth factor-A (VEGF-A) were highly upregulated in conventional 3D-cultured hASCs (ASC-3D) than in two-dimensional (2D)-cultured hASCs. Hepatocyte growth factor (HGF), insulin-like growth factor-1 (IGF-1), and stromal-cell-derived factor-1 (SDF-1) showed higher expression levels in cytokine-cocktail-based, 3D-cultured hASCs (ASC-3Dc). A conditioned medium (CM) mixture of dual 3D ASCs (D-3D; ASC-3D + ASC-3Dc) resulted in higher migration and Matrigel tube formation than the CM of single 3D ASCs (S-3D; ASC-3D). Matrigel plugs containing D-3D contained more red blood cells than those containing S-3D. D-3D transplantation into ischemic mouse hind limbs prevented limb loss and augmented blood perfusion when compared to S-3D transplantation. Transplanted D-3D also revealed a high capillary density and angiogenic cytokine levels and transdifferentiated into endothelial-like cells in the hind limb muscle. These findings highlight the benefits of using the dual 3D culture system to optimize stem-cell-based therapeutic strategies, thereby advancing the therapeutic strategy for ischemic vascular disease and tissue regeneration.
三维(3D)培养系统已广泛用于促进间充质干细胞(MSCs)的存活和代谢活性。本研究旨在探讨使用双重 3D MSC 培养系统促进血管再生和增强治疗潜力的协同益处。我们使用了各种实验检测方法,包括人脂肪间充质干细胞(hASCs)的双重 3D 培养、定量逆转录聚合酶链反应(qRT-PCR)、体外细胞迁移、Matrigel 管网络形成、Matrigel plugs 检测、缺血性后肢小鼠模型的治疗检测以及免疫组织化学分析。我们的 qRT-PCR 结果表明,成纤维细胞生长因子 2(FGF-2)、粒细胞趋化蛋白-2(GCP-2)和血管内皮生长因子-A(VEGF-A)在常规 3D 培养的 hASCs(ASC-3D)中的表达水平明显高于二维(2D)培养的 hASCs。细胞因子鸡尾酒 3D 培养的 hASCs(ASC-3Dc)中,肝细胞生长因子(HGF)、胰岛素样生长因子-1(IGF-1)和基质细胞衍生因子-1(SDF-1)的表达水平更高。双重 3D ASC(D-3D;ASC-3D + ASC-3Dc)的条件培养基(CM)混合物的迁移和 Matrigel 管形成能力均高于单一 3D ASC(S-3D;ASC-3D)的 CM。含有 D-3D 的 Matrigel plugs 比含有 S-3D 的 Matrigel plugs 含有更多的红细胞。与 S-3D 移植相比,D-3D 移植到缺血性小鼠后肢可预防肢体丧失并增加血液灌注。移植的 D-3D 还在下肢肌肉中显示出较高的毛细血管密度和血管生成细胞因子水平,并向内皮样细胞转化。这些发现强调了使用双重 3D 培养系统优化基于干细胞的治疗策略的益处,从而推进了缺血性血管疾病和组织再生的治疗策略。