模拟体外显示纵向几何形状的生物结构的发展:在经血浆处理、生长因子耦合的聚己内酯纤维上培养多能干细胞

Q1 Medicine Engineered regeneration Pub Date : 2023-12-21 DOI:10.1016/j.engreg.2023.12.003
Badwi B. Boumelhem , Stuart T. Fraser , Syamak Farajikhah , Rachel A. Shparberg , Michael B. Morris , Marcela M.M. Bilek , Anyu Zhang , Behnam Akhavan , Simon Fleming , Maryanne Large
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引用次数: 0

摘要

许多生物结构,如神经、血液和淋巴管以及肌肉纤维,都呈现纵向几何结构,不同的细胞类型沿着内部线性轴的长度和宽度延伸。在体外对这些三维结构进行建模具有挑战性:最明确的干细胞分化系统是使用多能干细胞的单层培养或器官组织。多能干细胞可根据接收到的信号分化为功能成熟的细胞,这为再生医学带来了巨大希望。然而,将体外分化的细胞类型整合到病变组织中仍是一项挑战。如果在支架中加入适当的信号系统,工程支架就能弥合这一差距。在这里,我们采用了一种生物模拟的方法在体外生成纵向结构。在这种方法中,小鼠胚胎干细胞被引导分化为聚己内酯(PCL)纤维表面上的特定细胞类型,这些纤维经过等离子浸泡离子植入处理,并共价固定了特定细胞系的分子。我们展示了这种方法的简便性和实用性,它能有效地从这些多能干细胞中产生高产量的以下细胞类型:神经元、血管内皮细胞、破骨细胞、脂肪细胞以及红系、髓系和淋巴系细胞。经血浆处理的支架上战略性地排列着已分化的细胞类型,最终可作为修复或治疗病变或受损组织的一种手段。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

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Modelling the development of biological structures displaying longitudinal geometries in vitro: culturing pluripotent stem cells on plasma-treated, growth factor-coupled polycaprolactone fibres

Many biological structures such as nerves, blood and lymphatic vessels, and muscle fibres exhibit longitudinal geometries with distinct cell types extending along both the length and width of internal linear axes. Modelling these three-dimensional structures in vitro is challenging: the best-defined stem-cell differentiation systems are monolayer cultures or organoids using pluripotent stem cells. Pluripotent stem cells can differentiate into functionally mature cells depending on the signals received, holding great promise for regenerative medicine. However, the integration of in vitro differentiated cell types into diseased tissue remains a challenge. Engineered scaffolds can bridge this gap if the appropriate signalling systems are incorporated into the scaffold. Here, we have taken a biomimicry approach to generate longitudinal structures in vitro. In this approach, mouse embryonic stem cells are directed to differentiate to specific cell types on the surface of polycaprolactone (PCL) fibres treated by plasma-immersion ion implantation and to which with lineage-specifying molecules have been covalently immobilised. We demonstrate the simplicity and utility of our method for efficiently generating high yields of the following cell types from these pluripotent stem cells: neurons, vascular endothelial cells, osteoclasts, adipocytes, and cells of the erythroid, myeloid, and lymphoid lineages. Strategically arranged plasma-treated scaffolds with differentiated cell types could ultimately serve as a means for the repair or treatment of diseased or damaged tissue.

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来源期刊
Engineered regeneration
Engineered regeneration Biomaterials, Medicine and Dentistry (General), Biotechnology, Biomedical Engineering
CiteScore
22.90
自引率
0.00%
发文量
0
审稿时长
33 days
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