发展人类上、下、深肺气道模型:结合不同的支架和发展复杂的共培养。

IF 6.7 1区 工程技术 Q1 CELL & TISSUE ENGINEERING
Journal of Tissue Engineering Pub Date : 2025-01-30 eCollection Date: 2025-01-01 DOI:10.1177/20417314241299076
Rasika S Murkar, Cornelia Wiese-Rischke, Tobias Weigel, Sascha Kopp, Heike Walles
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引用次数: 0

摘要

先进的体外模型是研究人体气道生物学的关键。我们的目标是开发和优化三维体外模型,代表不同的气道区域,包括深肺泡区。这一举措旨在评估选择性支架材料对不同气道共培养模型的影响。PET膜(厚度为30µm)由于其硬度和相对较高的杨氏模量而不适合用于肺泡模型,但将Calu-3细胞和成纤维细胞植入胶原支架后,在气举培养的第1周至第4周,粘液产量增加。与此同时,标准电纺丝聚合物膜(50-60µm厚)具有相当低的弹性模量,具有更高的灵活性,并支持初级肺泡上皮细胞(huAEC)和内皮细胞(hEC)与肺活检来源的成纤维细胞共同培养,从而促进组织模型的成熟。正如所发表的,设计人类肺泡体外模型需要薄支架来模拟所需的超薄ECM,此外还要确保正确平衡的AT1/AT2比率以进行仿生表征。我们得出结论,原代/干细胞或细胞系共同培养对气道组织模型功能的影响高于使用支架。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Developing human upper, lower, and deep lung airway models: Combining different scaffolds and developing complex co-cultures.

Advanced in vitro models are crucial for studying human airway biology. Our objective was the development and optimization of 3D in vitro models representing diverse airway regions, including deep lung alveolar region. This initiative was aimed at assessing the influence of selective scaffold materials on distinct airway co-culture models. While PET membranes (30 µm thickness) were unsuitable for alveolar models due to their stiffness and relatively high Young's modulus, a combination of collagenous scaffolds seeded with Calu-3 cells and fibroblasts, showed increased mucus production going from week 1 to week 4 of air lift culture. Meanwhile standard electrospun polymer membrane (50-60 µm thick), which possesses a considerably low modulus of elasticity, offered higher flexibility and supported co-cultures of primary alveolar epithelial (huAEC) and endothelial cells (hEC) in concert with lung biopsy-derived fibroblasts which enhanced maturation of the tissue model. As published, designing human alveolar in vitro models require thin scaffold to mimic the required ultra-thin ECM, in addition to assuring right balanced AT1/AT2 ratio for biomimetic representation. We concluded that co-cultivation of primary/stem cells or cell lines has a higher influence on the function of the airway tissue models than the applied scaffolds.

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来源期刊
Journal of Tissue Engineering
Journal of Tissue Engineering Engineering-Biomedical Engineering
CiteScore
11.60
自引率
4.90%
发文量
52
审稿时长
12 weeks
期刊介绍: The Journal of Tissue Engineering (JTE) is a peer-reviewed, open-access journal dedicated to scientific research in the field of tissue engineering and its clinical applications. Our journal encompasses a wide range of interests, from the fundamental aspects of stem cells and progenitor cells, including their expansion to viable numbers, to an in-depth understanding of their differentiation processes. Join us in exploring the latest advancements in tissue engineering and its clinical translation.
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