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Divergent effects of AKI to CKD models on inflammation and fibrosis
L M Black1, J M Lever1, A M Traylor1
1Nephrology Research and Training Center, Division of Nephrology, Department of Medicine, University of Alabama at Birmingham , Birmingham, Alabama.
Abstract:
Chronic kidney disease (CKD) is a condition with significant morbidity and mortality that affects 15% of adults in the United States. One cause of CKD is acute kidney injury (AKI), which commonly occurs secondary to sepsis, ischemic events, and drug-induced nephrotoxicity. Unilateral ischemia-reperfusion injury (UIRI) without contralateral nephrectomy (CLN) and repeated low-dose cisplatin (RLDC) models of AKI to CKD demonstrate responses characteristic of the transition; however, previous studies have not effectively compared the pathogenesis. We demonstrate both models instigate renal dysfunction, inflammatory cytokine responses, and fibrosis. However, the models exhibit differences in urinary excretory function, inflammatory cell infiltration, and degree of fibrotic response. UIRI without CLN demonstrated worsening perfusion and function, measured with 99mTc-mercaptoacetyltriglycine-3 imaging, and physiologic compensation in the contralateral kidney. Furthermore, UIRI without CLN elicited a robust inflammatory response that was characterized by a prolonged polymorphonuclear cell and natural killer cell infiltrate and an early expansion of kidney resident macrophages, followed by T-cell infiltration. Symmetrical diminished function occurred in RLDC kidneys and progressively worsened until day 17 of the study. Surprisingly, RLDC mice demonstrated a decrease in inflammatory cell numbers relative to controls. However, RLDC kidneys expressed increased levels of kidney injury molecule-1 (KIM-1), high mobility group box-1 ( HMGB1), and colony stimulating factor-1 ( CSF-1), which likely recruits inflammatory cells in response to injury. These data emphasize how the divergent etiologies of AKI to CKD models affect the kidney microenvironment and outcomes. This study provides support for subtyping AKI by etiology in human studies, aiding in the elucidation of injury-specific pathophysiologic mechanisms of the AKI to CKD transition.
Insights
This study compares two models of acute kidney injury (AKI) progressing to chronic kidney disease (CKD). Different injury types cause distinct kidney damage, inflammation, and fibrosis, suggesting AKI subtyping for human studies.
Area of Science:
- Nephrology
- Pathophysiology
- Translational Research
Background:
- Chronic kidney disease (CKD) affects 15% of US adults, with acute kidney injury (AKI) being a common precursor.
- AKI can result from sepsis, ischemia, or drug toxicity, leading to CKD.
- Existing AKI to CKD models lack comparative analysis of their distinct pathogenetic mechanisms.
Purpose of the Study:
- To compare the pathogenesis of two AKI to CKD models: unilateral ischemia-reperfusion injury (UIRI) without contralateral nephrectomy (CLN) and repeated low-dose cisplatin (RLDC).
- To elucidate how divergent AKI etiologies influence the kidney microenvironment and outcomes.
- To provide evidence for subtyping human AKI studies based on etiology.
Main Methods:
- Utilized UIRI without CLN and RLDC mouse models to study AKI to CKD transition.
- Assessed renal dysfunction, inflammatory cytokine responses, and fibrosis.
- Employed 99mTc-mercaptoacetyltriglycine-3 imaging to measure kidney perfusion and function.
- Analyzed inflammatory cell infiltration and expression of kidney injury markers (KIM-1, HMGB1, CSF-1).
Main Results:
- Both models induced renal dysfunction, inflammation, and fibrosis, but with distinct characteristics.
- UIRI without CLN showed worsening perfusion/function and compensatory contralateral kidney responses, with robust, prolonged inflammatory cell infiltration.
- RLDC model exhibited symmetrical functional decline and reduced inflammatory cell numbers, yet increased expression of KIM-1, HMGB1, and CSF-1.
Conclusions:
- Divergent AKI etiologies (UIRI vs. RLDC) significantly impact kidney microenvironment and disease progression.
- The study supports subtyping AKI by etiology in human research to better understand injury-specific mechanisms.
- Understanding these differences is crucial for developing targeted therapies for AKI to CKD transition.
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