4.7 Article

Modeling oxidative injury response in human kidney organoids

期刊

STEM CELL RESEARCH & THERAPY
卷 13, 期 1, 页码 -

出版社

BMC
DOI: 10.1186/s13287-022-02752-z

关键词

Kidney organoids; iPSCs; Renal injury; ROS; Hemin; Mitochondria; Cytochrome C

资金

  1. National Institutes of Health [2R01DK069403, 2UC2DK126122, 1P30DK079307, T32DK061296]
  2. U.S. Department of Defense [W81XWH-17-1-0610]
  3. American Society of Nephrology Ben J. Lipps Award

向作者/读者索取更多资源

This study establishes a hemin-induced model of kidney organoid injury, providing a new tool to study the injury and repair response pathways in human kidney tissue and assist in the development of new therapeutics.
Background Hemolysis occurs in many injury settings and can trigger disease processes. In the kidney, extracellular hemoglobin can induce damage via several mechanisms. These include oxidative stress, mitochondrial dysfunction, and inflammation, which promote fibrosis and chronic kidney disease. Understanding the pathophysiology of these injury pathways offers opportunities to develop new therapeutic strategies. Methods To model hemolysis-induced kidney injury, human kidney organoids were treated with hemin, an iron-containing porphyrin, that generates reactive oxygen species. In addition, we developed an induced pluripotent stem cell line expressing the biosensor, CytochromeC-GFP (CytoC-GFP), which provides a real-time readout of mitochondrial morphology, health, and early apoptotic events. Results We found that hemin-treated kidney organoids show oxidative damage, increased expression of injury markers, impaired functionality of organic anion and cation transport and undergo fibrosis. Injury could be detected in live CytoC-GFP organoids by cytoplasmic localization of fluorescence. Finally, we show that 4-(phenylthio)butanoic acid, an HDAC inhibitor with anti-fibrotic effects in vivo, reduces hemin-induced human kidney organoid fibrosis. Conclusion This work establishes a hemin-induced model of kidney organoid injury. This platform provides a new tool to study the injury and repair response pathways in human kidney tissue and will assist in the development of new therapeutics.

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