Peng Yan, Xuan Min, Zou Jiping, Liu Hongwei, Zhuo Ziyuan, Wan Yu, Cheng Biao
1 Department of Plastic Surgery, Guangzhou General Hospital of Guangzhou Command , The Key Laboratory of Trauma Treatment & Tissue Repair of Tropical Area, PLA, Guangzhou, P.R. China .
Tissue Eng Part A. 2015 Mar;21(5-6):1036-46. doi: 10.1089/ten.TEA.2014.0102. Epub 2014 Dec 11.
The mesenchymal stem cell (MSC) supernatant is well known as a rich source of autologous cytokines and universally used for tissue regeneration in current clinical medicine. However, the limitation of conditioned medium used in open-wound repair compels the need to find a more sophisticated way to take advantage of the trophic factors of MSCs. We have now fabricated a three-dimensional membrane from freeze-dried bone marrow mesenchymal stem cells-conditioned medium (FBMSC-CM) using a simple freeze-dried protocol. Scanning electron microscopy images showed the microstructure of the FBMSC-CM membrane (FBMSC-CMM) resembling a mesh containing growth factors. ELISA was used to test the paracrine factors retained in the FBMSC-CMM, and the results indicated that FBMSC-CMM withheld over 80% of the paracrine factors. Live/dead assays were adopted to test the toxicity of the FBMSC-CMM on cultured rat dermal fibroblasts, and the results confirmed its biological safety with low toxicity. Moreover, the FBMSC-CMM could significantly accelerate wound healing and enhance the neovascularization as well as epithelialization through strengthening the trophic factors in the wound bed as determined by immunohistochemical staining. Thus, the ability to maintain paracrine factors and enhance the effectiveness of these growth factors in the wound as well as the simple procedure and economical materials required for production qualifies the FBMSC-CMM to be a candidate biomaterial for open-wound regeneration.
间充质干细胞(MSC)上清液是众所周知的自体细胞因子的丰富来源,在当前临床医学中普遍用于组织再生。然而,开放伤口修复中使用的条件培养基的局限性迫使人们需要找到一种更复杂的方法来利用间充质干细胞的营养因子。我们现在使用简单的冻干方案,从冻干的骨髓间充质干细胞条件培养基(FBMSC-CM)制备了一种三维膜。扫描电子显微镜图像显示FBMSC-CM膜(FBMSC-CMM)的微观结构类似于含有生长因子的网孔。采用酶联免疫吸附测定法检测保留在FBMSC-CMM中的旁分泌因子,结果表明FBMSC-CMM保留了超过80%的旁分泌因子。采用活/死检测法检测FBMSC-CMM对培养的大鼠真皮成纤维细胞的毒性,结果证实其生物安全性高、毒性低。此外,免疫组织化学染色显示,FBMSC-CMM可通过增强伤口床中的营养因子,显著加速伤口愈合,促进新血管形成和上皮形成。因此,FBMSC-CMM能够维持旁分泌因子并增强这些生长因子在伤口中的有效性,以及其生产过程简单、材料经济,使其有资格成为开放伤口再生的候选生物材料。