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仿生体外细胞渗透皮肤支架模型用于基于生物材料的治疗方法的预筛选和测试。

Biomimetic In Vitro Model of Cell Infiltration into Skin Scaffolds for Pre-Screening and Testing of Biomaterial-Based Therapies.

机构信息

Regenerative Biomaterials Group, RAFT Institute, Mount Vernon Hospital, Northwood HA6 2RN, UK.

Biology Department, St. Francis Xavier University, Antigonish, NS B2G 2W5, Canada.

出版信息

Cells. 2019 Aug 17;8(8):917. doi: 10.3390/cells8080917.

Abstract

Due to great clinical need, research where different biomaterials are tested as 3D scaffolds for skin tissue engineering has increased. In vitro studies use a cell suspension that is simply pipetted onto the material and cultured until the cells migrate and proliferate within the 3D scaffold, which does not mimic the in vivo reality. Our aim was to engineer a novel biomimetic in vitro model that mimics the natural cell infiltration process occurring in wound healing, thus offering a realistic approach when pre-screening and testing new skin substitutes. Our model consists of porous membrane cell culture inserts coated with gelatin and seeded with human dermal fibroblasts, inside which two different commercially available dermal substitutes were placed. Several features relevant to the wound healing process (matrix contraction, cell infiltration and proliferation, integration of the biomaterial with the surrounding tissue, and secretion of exogenous cytokines and growth factors) were evaluated. Our results showed that cells spontaneously infiltrate the materials and that our engineered model is able to induce and detect subtle differences between different biomaterials. The model allows for room for improvements or "adds-on" and miniaturization and can contribute to the development of functional and efficient skin substitutes for burns and chronic wounds.

摘要

由于临床需求巨大,研究人员已经开始测试不同的生物材料作为皮肤组织工程的 3D 支架。体外研究使用细胞悬浮液,简单地将其吸到材料上,然后培养,直到细胞在 3D 支架内迁移和增殖,这并不能模拟体内的真实情况。我们的目标是设计一种新型的仿生体外模型,模拟伤口愈合过程中自然发生的细胞浸润过程,从而在筛选和测试新型皮肤替代物时提供一种现实的方法。我们的模型由涂有明胶的多孔膜细胞培养插入物组成,其中植入了人类真皮成纤维细胞,在其中放置了两种不同的市售真皮替代物。评估了与伤口愈合过程相关的几个特征(基质收缩、细胞浸润和增殖、生物材料与周围组织的整合以及外源性细胞因子和生长因子的分泌)。结果表明,细胞会自发地浸润材料,而且我们设计的模型能够诱导并检测不同生物材料之间的细微差异。该模型允许进行改进或“附加”以及小型化,并有助于开发用于烧伤和慢性伤口的功能性和高效皮肤替代物。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/b4d8/6721764/749abfc98af0/cells-08-00917-g001.jpg

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