Engineered In Vitro Disease Models

诱导多能干细胞 疾病 生物 神经科学 免疫系统 计算生物学 生物信息学 医学 免疫学 胚胎干细胞 病理 生物化学 基因
作者
Kambez H. Benam,Stephanie Dauth,Bryan Hassell,Anna Herland,Abhishek Jain,Kyung‐Jin Jang,Katia Karalis,Hyun Jung Kim,Luke A. MacQueen,Roza Mahmoodian,Samira Musah,Yu‐suke Torisawa,Andries D. van der Meer,Rémi Villenave,Moran Yadid,Kevin Kit Parker,Donald E. Ingber
出处
期刊:Annual Review of Pathology-mechanisms of Disease [Annual Reviews]
卷期号:10 (1): 195-262 被引量:521
标识
DOI:10.1146/annurev-pathol-012414-040418
摘要

The ultimate goal of most biomedical research is to gain greater insight into mechanisms of human disease or to develop new and improved therapies or diagnostics. Although great advances have been made in terms of developing disease models in animals, such as transgenic mice, many of these models fail to faithfully recapitulate the human condition. In addition, it is difficult to identify critical cellular and molecular contributors to disease or to vary them independently in whole-animal models. This challenge has attracted the interest of engineers, who have begun to collaborate with biologists to leverage recent advances in tissue engineering and microfabrication to develop novel in vitro models of disease. As these models are synthetic systems, specific molecular factors and individual cell types, including parenchymal cells, vascular cells, and immune cells, can be varied independently while simultaneously measuring system-level responses in real time. In this article, we provide some examples of these efforts, including engineered models of diseases of the heart, lung, intestine, liver, kidney, cartilage, skin and vascular, endocrine, musculoskeletal, and nervous systems, as well as models of infectious diseases and cancer. We also describe how engineered in vitro models can be combined with human inducible pluripotent stem cells to enable new insights into a broad variety of disease mechanisms, as well as provide a test bed for screening new therapies.
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