A Biomimetic, Stem Cell‐Derived In Vitro Ocular Outflow Model
Author(s) -
Tian Yangzi Isabel,
Zhang Xulang,
Torrejon Karen,
Danias John,
Du Yiqin,
Xie Yubing
Publication year - 2020
Publication title -
advanced biosystems
Language(s) - English
Resource type - Journals
SCImago Journal Rank - 1.153
H-Index - 18
ISSN - 2366-7478
DOI - 10.1002/adbi.202000004
Subject(s) - trabecular meshwork , glaucoma , induced pluripotent stem cell , cell , intraocular pressure , extracellular matrix , microbiology and biotechnology , population , in vitro , stem cell , chemistry , biology , medicine , pharmacology , ophthalmology , embryonic stem cell , biochemistry , environmental health , gene
Age‐related human trabecular meshwork (HTM) cell loss is suggested to affect its ability to regulate aqueous humor outflow in the eye. In addition, disease‐related HTM cell loss is suggested to lead to elevated intraocular pressure in glaucoma. Induced pluripotent stem cell (iPSC)‐derived trabecular meshwork (TM) cells are promising autologous cell sources that can be used to restore the declining TM cell population and function. Previously, an in vitro HTM model is bioengineered for understanding HTM cell biology and screening of pharmacological or biological agents that affect trabecular outflow facility. In this study, it is demonstrated that human iPSC‐derived TM cells cultured on SU‐8 scaffolds exhibit HTM‐like cell morphology, extracellular matrix deposition, and drug responsiveness to dexamethasone treatment. These findings suggest that iPSC‐derived TM cells behave like primary HTM cells and can thus serve as reproducible and scalable cell sources when using this in vitro system for glaucoma drug screening and further understanding of outflow pathway physiology, leading to personalized medicine.
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