1Division of Nephrology, Department of Medicine, University of Washington, Seattle, WA 98195 USA.
2Division of Nephrology, Department of Medicine, Showa University, Yokohama, Japan.
Commun Biol. 2019 Sep 2;2:326. doi: 10.1038/s42003-019-0571-7. eCollection 2019.
The kidney's inherent complexity has made identifying cell-specific pathways challenging, particularly when temporally associating them with the dynamic pathophysiology of acute kidney injury (AKI). Here, we combine renal cell-specific luciferase reporter mice using a chemoselective luciferin to guide the acquisition of cell-specific transcriptional changes in C57BL/6 background mice. Hydrogen peroxide generation, a common mechanism of tissue damage, was tracked using a peroxy-caged-luciferin to identify optimum time points for immunoprecipitation of labeled ribosomes for RNA-sequencing. Together, these tools revealed a profound impact of AKI on mitochondrial pathways in the collecting duct. In fact, targeting the mitochondria with an antioxidant, ameliorated not only hydrogen peroxide generation, but also significantly reduced oxidative stress and the expression of the AKI biomarker, LCN2. This integrative approach of coupling physiological imaging with transcriptomics and drug testing revealed how the collecting duct responds to AKI and opens new venues for cell-specific predictive monitoring and treatment.
肾脏的固有复杂性使得确定细胞特异性途径具有挑战性,特别是当将它们与急性肾损伤 (AKI) 的动态病理生理学相关联时。在这里,我们使用化学选择性荧光素酶报告小鼠结合 C57BL/6 背景小鼠,指导细胞特异性转录变化的获取。过氧化氢的产生是组织损伤的常见机制,我们使用过氧笼化荧光素酶来追踪,以确定用于 RNA 测序的标记核糖体免疫沉淀的最佳时间点。这些工具共同揭示了 AKI 对集合管中线粒体途径的深远影响。事实上,用抗氧化剂靶向线粒体不仅可以改善过氧化氢的产生,而且还可以显著降低氧化应激和 AKI 生物标志物 LCN2 的表达。这种将生理学成像与转录组学和药物测试相结合的综合方法揭示了集合管对 AKI 的反应方式,并为细胞特异性预测监测和治疗开辟了新途径。