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人肺成纤维细胞来源的基质促进 3D 环境中的血管形态发生,并增强皮肤伤口愈合。

Human lung fibroblast-derived matrix facilitates vascular morphogenesis in 3D environment and enhances skin wound healing.

机构信息

Center for Biomaterials, Korea Institute of Science and Technology (KIST), Seoul 02792, Republic of Korea.

Center for Biomaterials, Korea Institute of Science and Technology (KIST), Seoul 02792, Republic of Korea; Dept. of Biomedical Engineering, Korea University of Science and Technology (UST), Daejeon 34113, Republic of Korea.

出版信息

Acta Biomater. 2017 May;54:333-344. doi: 10.1016/j.actbio.2017.03.035. Epub 2017 Mar 27.

Abstract

UNLABELLED

Extracellular matrix (ECM) is crucial to many aspects of vascular morphogenesis and maintenance of vasculature function. Currently the recapitulation of angiogenic ECM microenvironment is still challenging, due mainly to its diverse components and complex organization. Here we investigate the angiogenic potential of human lung fibroblast-derived matrix (hFDM) in creating a three-dimensional (3D) vascular construct. hFDM was obtained via decellularization of in vitro cultured human lung fibroblasts and analyzed via immunofluorescence staining and ELISA, which detect multiple ECM macromolecules and angiogenic growth factors (GFs). Human umbilical vein endothelial cells (HUVECs) morphology was more elongated and better proliferative on hFDM than on gelatin-coated substrate. To prepare 3D construct, hFDM is collected, quantitatively analyzed, and incorporated in collagen hydrogel (Col) with HUVECs. Capillary-like structure (CLS) formation at 7day was significantly better with the groups containing higher doses of hFDM compared to the Col group (control). Moreover, the group (Col/hFDM/GFs) with both hFDM and angiogenic GFs (VEGF, bFGF, SDF-1) showed the synergistic activity on CLS formation and found much larger capillary lumen diameters with time. Further analysis of hFDM via angiogenesis antibody array kit reveals abundant biochemical cues, such as angiogenesis-related cytokines, GFs, and proteolytic enzymes. Significantly up-regulated expression of VE-cadherin and ECM-specific integrin subunits was also noticed in Col/hFDM/GFs. In addition, transplantation of Col/hFMD/GFs with HUVECs in skin wound model presents more effective re-epithelialization, many regenerated hair follicles, better transplanted cells viability, and advanced neovascularization. We believe that current system is a very promising platform for 3D vasculature construction in vitro and for cell delivery toward therapeutic applications in vivo.

STATEMENT OF SIGNIFICANCE

Functional 3D vasculature construction in vitro is still challenging due to the difficulty of recapitulating the complex angiogenic extracellular matrix (ECM) environment. Herein, we present a simple and practical method to create an angiogenic 3D environment via incorporation of human lung fibroblast-derived matrix (hFDM) into collagen hydrogel. We found that hFDM offers a significantly improved angiogenic microenvironment for HUVECs on 2D substrates and in 3D construct. A synergistic effect of hFDM and angiogenic growth factors has been well confirmed in 3D condition. The prevascularized 3D collagen constructs also facilitate skin wound healing. We believe that current system should be a convenient and powerful platform in engineering 3D vasculature in vitro, and in delivering cells for therapeutic purposes in vivo.

摘要

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细胞外基质(ECM)对血管形态发生和维持血管功能的许多方面都至关重要。目前,由于其成分多样且组织复杂,仍然难以重现血管生成 ECM 微环境。在这里,我们研究了人肺成纤维细胞衍生基质(hFDM)在创建三维(3D)血管结构中的血管生成潜力。hFDM 通过体外培养的人肺成纤维细胞的脱细胞化获得,并通过免疫荧光染色和 ELISA 进行分析,ELISA 可检测多种 ECM 大分子和血管生成生长因子(GF)。人脐静脉内皮细胞(HUVEC)在 hFDM 上的形态比在明胶包被的基质上更细长,增殖更好。为了制备 3D 结构,收集 hFDM,进行定量分析,并与 HUVEC 一起掺入胶原水凝胶(Col)中。与 Col 组(对照)相比,含有更高剂量 hFDM 的组在第 7 天形成毛细血管样结构(CLS)的效果明显更好。此外,同时含有 hFDM 和血管生成 GFs(VEGF、bFGF、SDF-1)的 Col/hFDM/GFs 组在 CLS 形成上表现出协同活性,并且随着时间的推移发现毛细血管腔直径更大。通过血管生成抗体阵列试剂盒对 hFDM 进行进一步分析,揭示了丰富的生化线索,例如与血管生成相关的细胞因子、GF 和蛋白水解酶。还注意到 Col/hFDM/GFs 中 VE-钙粘蛋白和 ECM 特异性整联蛋白亚基的表达显著上调。此外,将含有 HUVEC 的 Col/hFMD/GFs 移植到皮肤创面模型中,可实现更有效的上皮再形成、更多再生的毛囊、更好的移植细胞活力和更先进的新血管生成。我们相信,目前的系统是体外构建功能性 3D 血管和体内细胞输送治疗应用的非常有前景的平台。

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