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A Modified Two Kidney One Clip Mouse Model of Renin Regulation in Renal Artery Stenosis
Published on: October 26, 2020
Strikingly conserved gene expression changes of polyamine regulating enzymes among various forms of acute and chronic
Tobias Sieckmann1, Gunnar Schley2, Neslihan Ögel1
1Institute of Translational Physiology, Charité-Universitätsmedizin Berlin, corporate member of Freie Universität Berlin, Humboldt-Universität zu Berlin, and Berlin Institute of Health, Berlin, Germany.
Abstract:
The polyamines spermidine and spermine and their common precursor molecule putrescine are involved in tissue injury and repair. Here, we test the hypothesis that impaired polyamine homeostasis contributes to various kidney pathologies in mice during experimental models of ischemia-reperfusion, transplantation, rhabdomyolysis, cyclosporine treatment, arterial hypertension, diabetes, unilateral ureteral obstruction, high oxalate feeding, and adenine-induced injuries. We found a remarkably similar pattern in most kidney pathologies with reduced expression of enzymes involved in polyamine synthesis together with increased expression of polyamine degrading enzymes. Transcript levels of amine oxidase copper-containing 1 (Aoc1), an enzyme which catalyzes the breakdown of putrescine, were barely detectable by in situ mRNA hybridization in healthy kidneys. Aoc1 was highly expressed upon various experimental kidney injuries resulting in a significant reduction of kidney putrescine content. Kidney levels of spermine were also significantly reduced, whereas spermidine was increased in response to ischemia-reperfusion injury. Increased Aoc1 expression in injured kidneys was mainly accounted for by an Aoc1 isoform that harbors 22 additional amino acids at its N-terminus and shows increased secretion. Mice with germline deletion of Aoc1 and injured kidneys showed no decrease of kidney putrescine content; although they displayed no overt phenotype, they had fewer tubular casts upon ischemia-reperfusion injury. Hyperosmotic stress stimulated AOC1 expression at the transcriptional and post-transcription levels in metanephric explants and kidney cell lines. AOC1 expression was also significantly enhanced after kidney transplantation in humans. These data demonstrate that the kidneys respond to various forms of injury with down-regulation of polyamine synthesis and activation of the polyamine breakdown pathway. Thus, an imbalance in kidney polyamines may contribute to various etiologies of kidney injury.
Insights
Kidney injury disrupts polyamine balance, decreasing synthesis and increasing breakdown via amine oxidase copper-containing 1 (AOC1). This polyamine imbalance contributes to kidney damage across various conditions.
Area of Science:
- Biochemistry
- Nephrology
- Molecular Biology
Background:
- Polyamines (spermidine, spermine, putrescine) are crucial for tissue repair.
- Their role in kidney injury pathogenesis is not fully understood.
Purpose of the Study:
- To investigate the hypothesis that impaired polyamine homeostasis contributes to diverse kidney pathologies.
- To examine the role of amine oxidase copper-containing 1 (AOC1) in kidney injury.
Main Methods:
- Utilized mouse models for various kidney injuries (ischemia-reperfusion, transplantation, etc.).
- Analyzed enzyme expression (synthesis and degradation) and polyamine levels.
- Employed in situ mRNA hybridization and germline deletion of AOC1.
- Studied hyperosmotic stress effects on AOC1 in kidney cells and human kidney transplant samples.
Main Results:
- Most kidney pathologies showed reduced polyamine synthesis enzymes and increased degradation enzymes.
- AOC1 expression significantly increased in injured kidneys, reducing putrescine levels.
- AOC1 deletion protected against tubular casts in ischemia-reperfusion injury.
- AOC1 expression was upregulated by hyperosmotic stress and in human kidney transplants.
Conclusions:
- Kidneys respond to injury by down-regulating polyamine synthesis and activating breakdown pathways.
- Imbalance in kidney polyamines, particularly via AOC1, contributes to kidney injury.
- Targeting polyamine metabolism may offer therapeutic strategies for kidney diseases.
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Acute Kidney Injury II: Pathophysiology
Acute Kidney Injury I: Introduction
Acute Kidney Injury IV: Diagnostic Studies and Prevention
Acute Kidney Injury III: Clinical Manifestations
Acute Kidney Injury V: Interprofessional Care
Chronic Kidney Disease III: Interprofessional Care

