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全喷墨打印 3D 肺泡屏障模型,具有生理相关的微观结构。

All-Inkjet-Printed 3D Alveolar Barrier Model with Physiologically Relevant Microarchitecture.

机构信息

School of Interdisciplinary Bioscience and Bioengineering Pohang University of Science and Technology (POSTECH) 77 Cheongam-Ro, Nam-Gu Pohang 37673 Korea.

Department of Convergence IT Engineering Pohang University of Science and Technology (POSTECH) 77 Cheongam-Ro, Nam-Gu Pohang 37673 Korea.

出版信息

Adv Sci (Weinh). 2021 Mar 8;8(10):2004990. doi: 10.1002/advs.202004990. eCollection 2021 May.

Abstract

With the outbreak of new respiratory viruses and high mortality rates of pulmonary diseases, physiologically relevant models of human respiratory system are urgently needed to study disease pathogenesis, drug efficacy, and pharmaceutics. In this paper, a 3D alveolar barrier model fabricated by printing four human alveolar cell lines, namely, type I and II alveolar cells (NCI-H1703 and NCI-H441), lung fibroblasts (MRC5), and lung microvascular endothelial cells (HULEC-5a) is presented. Automated high-resolution deposition of alveolar cells by drop-on-demand inkjet printing enables to fabricate a three-layered alveolar barrier model with an unprecedented thickness of ≈10 µm. The results show that the 3D structured model better recapitulate the structure, morphologies, and functions of the lung tissue, compared not only to a conventional 2D cell culture model, as expected, but also a 3D non-structured model of a homogeneous mixture of the alveolar cells and collagen. Finally, it is demonstrated that this thin multilayered model reproduce practical tissue-level responses to influenza infection. Drop-on-demand inkjet-printing is an enabling technology for customization, scalable manufacturing, and standardization of their size and growth, and it is believed that this 3D alveolar barrier model can be used as an alternative to traditional test models for pathological and pharmaceutical applications.

摘要

随着新呼吸道病毒的爆发和肺部疾病的高死亡率,迫切需要具有生理相关性的人体呼吸系统模型来研究疾病发病机制、药物疗效和药剂学。本文提出了一种通过打印四种人肺泡细胞系(即 I 型和 II 型肺泡细胞(NCI-H1703 和 NCI-H441)、肺成纤维细胞(MRC5)和肺微血管内皮细胞(HULEC-5a)制造的 3D 肺泡屏障模型。通过按需喷墨打印自动进行高分辨率的肺泡细胞沉积,可制造出具有前所未有的 ≈10 µm 厚度的三层肺泡屏障模型。结果表明,与传统的 2D 细胞培养模型相比,3D 结构模型不仅更好地再现了肺组织的结构、形态和功能,而且还更好地再现了肺泡细胞和胶原蛋白均质混合物的 3D 非结构模型。最后,证明这种薄的多层模型可再现流感感染的实际组织水平反应。按需喷墨打印是定制、可扩展制造和标准化其大小和生长的使能技术,据信这种 3D 肺泡屏障模型可替代传统的病理和药物应用测试模型。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/f1fa/8132150/808d0d6eeecc/ADVS-8-2004990-g005.jpg

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