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Published on: July 17, 2016
Perinatal asphyxia leads to acute kidney damage and increased renal susceptibility in adulthood
Tamas Lakat1,2, Andrea Fekete1,2, Kornel Demeter3
1MTA-SE Lendület "Momentum" Diabetes Research Group, Budapest, Hungary.
Insights
Perinatal asphyxia causes subclinical kidney injury in rats, increasing future kidney damage risk. Machine learning accurately identified these changes, suggesting potential biomarkers for affected infants.
Area of Science:
- Neonatal medicine
- Nephrology
- Molecular biology
Background:
- Perinatal asphyxia (PA) significantly impacts infant organs, especially kidneys.
- Diagnosing and treating PA-related kidney injury is challenging, with limited long-term data.
- Understanding PA's renal effects is crucial for infant health.
Purpose of the Study:
- To investigate molecular pathways in the kidney following PA in neonatal rats.
- To assess if PA increases susceptibility to subsequent kidney injury in adult rats.
- To identify potential biomarkers for PA-induced kidney complications.
Main Methods:
- Neonatal Wistar rats exposed to PA via controlled hypoxia and hypercapnia.
- Adult rats with PA history subjected to renal ischemia-reperfusion (IR) injury.
- Analysis of gene expression for injury, hypoxia, inflammation, and fibrosis markers.
- Random forest machine learning model developed for PA classification.
Main Results:
- PA induced immediate gene expression of kidney injury, hypoxia, heat shock, inflammation, and fibrosis markers.
- A machine learning model achieved 95.5% accuracy in classifying PA.
- Adult rats with PA history exhibited worsened kidney function and injury after IR.
Conclusions:
- PA causes subclinical kidney injury, increasing long-term renal damage susceptibility.
- Identified molecular pathways offer potential therapeutic targets for PA.
- Random forest analysis provides a basis for developing PA biomarkers.
Abstract:
Perinatal asphyxia (PA) poses a significant threat to multiple organs, particularly the kidneys. Diagnosing PA-associated kidney injury remains challenging, and treatment options are inadequate. Furthermore, there is a lack of long-term follow-up data regarding the renal implications of PA. In this study, 7-day-old male Wistar rats were exposed to PA using a gas mixture (4% O2; 20% CO2 in N2 for 15 min) to investigate molecular pathways linked to renal tubular damage, hypoxia, angiogenesis, heat shock response, inflammation, and fibrosis in the kidney. In a second experiment, adult rats with a history of PA were subjected to moderate renal ischemia-reperfusion (IR) injury to test the hypothesis that PA exacerbates renal susceptibility. Our results revealed an increased gene expression of renal injury markers (kidney injury molecule-1 and neutrophil gelatinase-associated lipocalin), hypoxic and heat shock factors (hypoxia-inducible factor-1α, heat shock factor-1, and heat shock protein-27), proinflammatory cytokines (interleukin-1β, interleukin-6, tumor necrosis factor-α, and monocyte chemoattractant protein-1), and fibrotic markers (transforming growth factor-β, connective tissue growth factor, and fibronectin) promptly after PA. Moreover, a machine learning model was identified through random forest analysis, demonstrating an impressive classification accuracy (95.5%) for PA. Post-PA rats showed exacerbated functional decline and tubular injury and more intense hypoxic, heat shock, proinflammatory, and profibrotic response after renal IR injury compared with controls. In conclusion, PA leads to subclinical kidney injury, which may increase the susceptibility to subsequent renal damage later in life. In addition, the parameters identified through random forest analysis provide a robust foundation for future biomarker research in the context of PA.NEW & NOTEWORTHY This article demonstrates that perinatal asphyxia leads to subclinical kidney injury that permanently increases renal susceptibility to subsequent ischemic injury. We identified major molecular pathways involved in perinatal asphyxia-induced renal complications, highlighting potential targets of therapeutic approaches. In addition, random forest analysis revealed a model that classifies perinatal asphyxia with 95.5% accuracy that may provide a strong foundation for further biomarker research. These findings underscore the importance of multiorgan follow-up for perinatal asphyxia-affected patients.
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