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Published on: July 17, 2016
Drug toxicity in the proximal tubule: new models, methods and mechanisms
Andrew M Hall1,2, Francesco Trepiccione3,4, Robert J Unwin5
1Institute of Anatomy, University of Zurich, Winterthurerstrasse 190, 8057, Zurich, Switzerland. andrew.hall@uzh.ch.
Insights
Drug-induced kidney damage harms children, causing acute kidney injury (AKI) and Fanconi syndrome. New models and methods promise earlier detection and personalized treatments for proximal tubule (PT) toxicity.
Area of Science:
- Nephrology
- Toxicology
- Cell Biology
Background:
- The proximal tubule (PT) is crucial for reabsorbing filtrate and handling xenobiotics.
- Drug-induced nephrotoxicity affects 1 in 6 children with acute kidney injury (AKI).
- PT dysfunction causes solute wasting, leading to renal Fanconi syndrome (RFS) and systemic complications.
Purpose of the Study:
- To address the lack of standardized definitions for clinically significant PT toxicity.
- To improve the identification of patients at risk for progressive kidney function loss.
- To advance understanding of cellular mechanisms underlying drug-induced nephrotoxicity.
Main Methods:
- Utilizing advanced in vitro models of the proximal tubule.
- Applying high-content analytical methods for clinically relevant readouts.
- Investigating urinary markers, including low molecular weight proteins (LMWP).
Main Results:
- Current diagnostic methods for PT defects exist but lack standardized toxicity definitions.
- Identifying patients who will develop progressive kidney loss remains challenging.
- Understanding of cellular drug toxicity mechanisms is limited by current models.
Conclusions:
- Sophisticated in vitro PT models and high-content analysis are improving nephrotoxicity research.
- Technical advancements are expected to yield new biomarkers for early detection and prediction of long-term consequences.
- Progress heralds a new era of personalized medicine for managing drug-induced kidney injury.
Abstract:
The proximal tubule (PT) reabsorbs most of the glomerular filtrate and plays an important role in the uptake, metabolism and excretion of xenobiotics. Some therapeutic drugs are harmful to the PT, and resulting nephrotoxicity is thought to be responsible for approximately 1 in 6 of cases of children hospitalized with acute kidney injury (AKI). Clinically, PT dysfunction leads to urinary wasting of important solutes normally reabsorbed by this nephron segment, leading to systemic complications such as bone demineralization and a clinical scenario known as the renal Fanconi syndrome (RFS). While PT defects can be diagnosed using a combination of blood and urine markers, including urinary excretion of low molecular weight proteins (LMWP), standardized definitions of what constitutes clinically significant toxicity are lacking, and identifying which patients will go on to develop progressive loss of kidney function remains a major challenge. In addition, much of our understanding of cellular mechanisms of drug toxicity is still limited, partly due to the constraints of available cell and animal models. However, advances in new and more sophisticated in vitro models of the PT, along with the application of high-content analytical methods that can provide readouts more relevant to the clinical manifestations of nephrotoxicity, are beginning to extend our knowledge. Such technical progress should help in discovering new biomarkers that can better detect nephrotoxicity earlier and predict its long-term consequences, and herald a new era of more personalized medicine.
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