A novel three‐dimensional model system for keloid study: Organotypic multicellular scar model

瘢痕疙瘩 纤维连接蛋白 离体 弹性蛋白 体内 伤口愈合 病理 细胞外基质 Tenascin公司 化学 球体 免疫组织化学 医学 生物 体外 免疫学 生物化学 生物技术
作者
Won Jai Lee,Il‐Kyu Choi,Ju Hee Lee,Yong Oock Kim,Chae‐Ok Yun
出处
期刊:Wound Repair and Regeneration [Wiley]
卷期号:21 (1): 155-165 被引量:36
标识
DOI:10.1111/j.1524-475x.2012.00869.x
摘要

We developed a three-dimensional organotypic multicellular spheroid scar model to mimic the microenvironment of human keloid tissues. Keloid tissues were cultured for 7 days. Changes in total cellularity and apoptotic index in the primary keloid spheroid cultures were evaluated histologically and with a TUNEL assay, respectively. The expression profiles of transforming growth factor-β (TGF-β), collagen I, collagen III, elastin, fibronectin, matrix metalloproteinase-2, and matrix metalloproteinase-9 were examined with immunohistochemistry. In addition, these expression profiles were investigated after treating primary keloid spheroids with triamcinolone acetonide. Cell viability and morphology of ex vivo cultured keloid spheroids were maintained, and the apoptotic index did not increase for up to 1 week in culture. Keloid spheroids cultivated ex vivo retained the major characteristics of keloids, such as high levels of collagen I and TGF-β expression for up to 7 days. The biological activity of keloids responding to TGF-β was also maintained during ex vivo culture. Moreover, ex vivo triamcinolone acetonide treatment of cultivated keloid spheroids significantly reduced collagen I, collagen III, elastin, and fibronectin expression levels, in accordance with clinical observations. The three-dimensional organotypic multicellular spheroid keloid culture will allow investigators to study keloid pathogenesis and test potential keloid therapeutic agents.
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