National Nanotechnology Center (NANOTEC), National Science and Technology Development Agency (NSTDA), 111 Thailand Science Park, Phahonyothin Road, Khlong Nueng, Khlong Luang, Pathum Thani 12120, Thailand.
National Nanotechnology Center (NANOTEC), National Science and Technology Development Agency (NSTDA), 111 Thailand Science Park, Phahonyothin Road, Khlong Nueng, Khlong Luang, Pathum Thani 12120, Thailand; Department of Environmental Engineering, Faculty of Engineering, Chulalongkorn University, Bangkok 10330, Thailand; Thailand Network Center on Air Quality Management: TAQM, Chulalongkorn University, Bangkok 10330, Thailand.
Life Sci. 2023 Dec 1;334:122208. doi: 10.1016/j.lfs.2023.122208. Epub 2023 Oct 24.
The lungs are important organs that play a critical role in the development of specific diseases, as well as responding to the effects of drugs, chemicals, and environmental pollutants. Due to the ethical concerns around animal testing, alternative methods have been sought which are more time-effective, do not pose ethical issues for animals, do not involve species differences, and provide easy investigation of the pathobiology of lung diseases. Several national and international organizations are working to accelerate the development and implementation of structurally and functionally complex tissue models as alternatives to animal testing, particularly for the lung. Unfortunately, to date, there is no lung tissue model that has been accepted by regulatory agencies for use in inhalation toxicology. This review discusses the challenges involved in developing a relevant lung tissue model derived from human cells such as cell lines, primary cells, and pluripotent stem cells. It also introduces examples of two-dimensional (2D) air-liquid interface and monocultured and co-cultured three-dimensional (3D) culture techniques, particularly organoid culture and 3D bioprinting. Furthermore, it reviews development of the lung-on-a-chip model to mimic the microenvironment and physiological performance. The applications of lung tissue models in various studies, especially disease modeling, viral respiratory infection, and environmental toxicology will be also introduced. The development of a relevant lung tissue model is extremely important for standardizing and validation the in vitro models for inhalation toxicity and other studies in the future.
肺是重要的器官,在特定疾病的发展以及对药物、化学物质和环境污染物的反应中起着关键作用。由于动物试验存在伦理问题,因此人们一直在寻求替代方法,这些方法更有效率,不会对动物造成伦理问题,不会涉及物种差异,并能方便地研究肺部疾病的病理生物学。一些国家和国际组织正在努力加速开发和实施结构和功能复杂的组织模型,作为动物试验的替代方法,特别是用于肺部。不幸的是,迄今为止,还没有一种肺组织模型被监管机构接受用于吸入毒理学。本文讨论了从人类细胞(如细胞系、原代细胞和多能干细胞)中开发相关肺组织模型所涉及的挑战。本文还介绍了二维(2D)气液界面和单培养及共培养三维(3D)培养技术的实例,特别是类器官培养和 3D 生物打印。此外,本文还回顾了模拟微环境和生理性能的肺芯片模型的发展。本文还将介绍肺组织模型在各种研究中的应用,特别是疾病建模、病毒呼吸道感染和环境毒理学。开发相关的肺组织模型对于未来标准化和验证吸入毒性的体外模型以及其他研究非常重要。