Center for Biomaterials, Korea Institute of Science and Technology (KIST), Seoul 02792, Korea.
Division of Cardiology, Department of Internal Medicine, Severance Cardiovascular Hospital, Yonsei University College of Medicine, Seoul 03722, Korea.
Int J Mol Sci. 2021 Dec 9;22(24):13265. doi: 10.3390/ijms222413265.
Cell-derived matrix (CDM) has proven its therapeutic potential and been utilized as a promising resource in tissue regeneration. In this study, we prepared a human fibroblast-derived matrix (FDM) by decellularization of in vitro cultured cells and transformed the FDM into a nano-sized suspended formulation (sFDM) using ultrasonication. The sFDM was then homogeneously mixed with Pluronic F127 and hyaluronic acid (HA), to effectively administer sFDM into target sites. Both sFDM and sFDM containing hydrogel (PH/sFDM) were characterized via immunofluorescence, sol-gel transition, rheological analysis, and biochemical factors array. We found that PH/sFDM hydrogel has biocompatible, mechanically stable, injectable properties and can be easily administered into the external and internal target regions. sFDM itself holds diverse bioactive molecules. Interestingly, sFDM-containing serum-free media helped maintain the metabolic activity of endothelial cells significantly better than those in serum-free condition. PH/sFDM also promoted vascular endothelial growth factor (VEGF) secretion from monocytes in vitro. Moreover, when we evaluated therapeutic effects of PH/sFDM via the murine full-thickness skin wound model, regenerative potential of PH/sFDM was supported by epidermal thickness, significantly more neovessel formation, and enhanced mature collagen deposition. The hindlimb ischemia model also found some therapeutic improvements, as assessed by accelerated blood reperfusion and substantially diminished necrosis and fibrosis in the gastrocnemius and tibialis muscles. Together, based on sFDM holding a strong therapeutic potential, our engineered hydrogel (PH/sFDM) should be a promising candidate in tissue engineering and regenerative medicine.
细胞外基质 (CDM) 已被证明具有治疗潜力,并已作为组织再生的有前途的资源得到应用。在本研究中,我们通过体外培养细胞的去细胞化制备了人成纤维细胞衍生的基质 (FDM),并使用超声将 FDM 转化为纳米悬浮制剂 (sFDM)。然后,sFDM 与 Pluronic F127 和透明质酸 (HA) 均匀混合,将 sFDM 有效地施用于靶位。通过免疫荧光、溶胶-凝胶转变、流变分析和生化因子阵列对 sFDM 和含有水凝胶的 sFDM (PH/sFDM) 进行了表征。我们发现 PH/sFDM 水凝胶具有生物相容性、机械稳定、可注射的特性,并且可以很容易地施用于外部和内部靶区。sFDM 本身含有多种生物活性分子。有趣的是,含有 sFDM 的无血清培养基有助于显著更好地维持内皮细胞的代谢活性,优于无血清条件。PH/sFDM 还促进了单核细胞中血管内皮生长因子 (VEGF) 的分泌。此外,当我们通过小鼠全层皮肤伤口模型评估 PH/sFDM 的治疗效果时,PH/sFDM 的再生潜力得到了表皮厚度、明显更多的新血管形成和增强的成熟胶原蛋白沉积的支持。后肢缺血模型也发现了一些治疗改善,如血液再灌注加速和腓肠肌和胫骨肌肉中的坏死和纤维化明显减少。总之,基于 sFDM 具有强大的治疗潜力,我们设计的水凝胶 (PH/sFDM) 应该是组织工程和再生医学中有前途的候选物。