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From Acute to Chronic: Unraveling the Pathophysiological Mechanisms of the Progression from Acute Kidney Injury to Acute Kidney Disease to Chronic Kidney Disease

Overview
Journal Int J Mol Sci
Publisher MDPI
Date 2024 Feb 10
PMID 38339031
Authors
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Abstract

This article provides a thorough overview of the biomarkers, pathophysiology, and molecular pathways involved in the transition from acute kidney injury (AKI) and acute kidney disease (AKD) to chronic kidney disease (CKD). It categorizes the biomarkers of AKI into stress, damage, and functional markers, highlighting their importance in early detection, prognosis, and clinical applications. This review also highlights the links between renal injury and the pathophysiological mechanisms underlying AKI and AKD, including renal hypoperfusion, sepsis, nephrotoxicity, and immune responses. In addition, various molecules play pivotal roles in inflammation and hypoxia, triggering maladaptive repair, mitochondrial dysfunction, immune system reactions, and the cellular senescence of renal cells. Key signaling pathways, such as Wnt/β-catenin, TGF-β/SMAD, and Hippo/YAP/TAZ, promote fibrosis and impact renal function. The renin-angiotensin-aldosterone system (RAAS) triggers a cascade leading to renal fibrosis, with aldosterone exacerbating the oxidative stress and cellular changes that promote fibrosis. The clinical evidence suggests that RAS inhibitors may protect against CKD progression, especially post-AKI, though more extensive trials are needed to confirm their full impact.

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References
1.
Meng X, Tang P, Li J, Lan H . TGF-β/Smad signaling in renal fibrosis. Front Physiol. 2015; 6:82. PMC: 4365692. DOI: 10.3389/fphys.2015.00082. View

2.
Honda T, Hirakawa Y, Nangaku M . The role of oxidative stress and hypoxia in renal disease. Kidney Res Clin Pract. 2019; 38(4):414-426. PMC: 6913586. DOI: 10.23876/j.krcp.19.063. View

3.
Kane-Gill S, Meersch M, Bell M . Biomarker-guided management of acute kidney injury. Curr Opin Crit Care. 2020; 26(6):556-562. DOI: 10.1097/MCC.0000000000000777. View

4.
Praga M, Gonzalez E . Acute interstitial nephritis. Kidney Int. 2010; 77(11):956-61. DOI: 10.1038/ki.2010.89. View

5.
Medic B, Rovcanin B, Jovanovic G, Radojevic-Skodric S, Prostran M . Kidney Injury Molecule-1 and Cardiovascular Diseases: From Basic Science to Clinical Practice. Biomed Res Int. 2015; 2015:854070. PMC: 4677159. DOI: 10.1155/2015/854070. View