Hypoxic injury triggers maladaptive repair in human kidney organoids

急性肾损伤 肾脏疾病 类有机物 医学 生物 生物信息学 癌症研究 细胞生物学 内科学
作者
Ana B. Nunez-Nescolarde,Mehran Piran,Laura Perlaza-Jiménez,C. Barlow,Joel R. Steele,Deanna Deveson Lucas,Han-Chung Lee,Julie Moreau,Ralf B. Schittenhelm,David J. Nikolic‐Paterson,Alexander N. Combes
出处
期刊: [Cold Spring Harbor Laboratory]
被引量:3
标识
DOI:10.1101/2023.10.04.558359
摘要

ABSTRACT Acute kidney injury (AKI) is a common clinical disorder linked to high rates of illness and death. Ischemia is a leading cause of AKI, which can result in chronic kidney disease (CKD) through a maladaptive repair process characterised by failed epithelial regeneration, inflammation, and metabolic dysregulation. No targeted therapies exist to prevent the AKI to CKD transition and insight into ischemic AKI and maladaptive repair in humans remains limited. In this study, we report that human kidney organoids recapitulate select molecular and metabolic signatures of AKI and maladaptive repair in response to hypoxic injury. Transcriptional, proteomic, and metabolomic profiling revealed signatures of tubular injury, cell death, cell cycle arrest and altered metabolism in kidney organoids cultured in hypoxic conditions. After recovery in normoxic conditions, injured organoids displayed increased signatures associated with maladaptive repair like TNF, NF-κB, and JAK-STAT pathways, and S100A8/9. Single cell RNA sequencing localised biomarkers of AKI and maladaptive repair such as GDF15, MMP7, ICAM1, TGFB1, SPP1, C3 and CCN1 to injured proximal and distal tubules. Metabolic phenotypes linked to CKD were also evident including dysregulated glycolysis and gluconeogenesis, amino acid, bicarbonate and lipid metabolism, and elevated ceramide levels. Our multi-omic analysis provides compelling evidence for the use of kidney organoids as a model of human ischemic AKI and maladaptive repair, highlighting new and conserved biomarkers and mechanisms, and opportunities for drug screening. Summary Human kidney organoids recapitulate molecular and metabolic signatures of ischemic acute kidney injury and maladaptive repair, providing new insight into human disease mechanisms and opportunities for drug development.
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