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Published on: November 10, 2021
Targeting protein-bound uremic toxins in chronic kidney disease
1Nagoya University Graduate School of Medicine, Department of Advanced Medicine for Uremia , 65 Tsurumai-cho, Showa-ku, Nagoya 466-8550 , Japan +81 52 744 1980 ; +81 52 744 1954 ; tniwa@med.nagoya-u.ac.jp.
Introduction:
Protein-bound uremic toxins such as indoxyl sulfate cannot be removed efficiently by hemodialysis. These protein-bound uremic toxins have emerged as important risk factors for the progression of chronic kidney disease (CKD) as well as cardiovascular disease (CVD).
Areas Covered:
Indoxyl sulfate shows toxic effects on a variety of cells such as renal proximal tubular cells, glomerular mesangial cells, vascular smooth muscle cells, vascular endothelial cells, cardiomyocytes, cardiac fibroblasts, monocytes, osteoblasts and osteoclasts. This review overviews the cellular toxicity of indoxyl sulfate, its molecular mechanism and its role in the progression of CKD and CVD. Further, this review summarizes the clinical effects of AST-120 and the other strategies to reduce serum levels of indoxyl sulfate.
Expert Opinion:
Protein-bound uremic toxins such as indoxyl sulfate have emerged as target molecules for therapeutic intervention of not only CKD but also CVD. An oral sorbent AST-120 reduces serum level of indoxyl sulfate by adsorbing indole in the intestine. The modulation of intestinal bacteria by prebiotics/probiotics might be effective in reducing the production of indole in the intestine followed by reduced serum levels of indoxyl sulfate. An alternative approach might be antagonist which can counteract indoxyl sulfate-induced cellular effects and signaling pathways.
Insights
Indoxyl sulfate, a protein-bound uremic toxin, drives chronic kidney disease (CKD) and cardiovascular disease (CVD) progression. Strategies like AST-120 and gut microbiome modulation can reduce its levels, offering therapeutic potential.
Area of Science:
- Nephrology
- Cardiology
- Toxicology
Background:
- Protein-bound uremic toxins, like indoxyl sulfate, are poorly removed by hemodialysis.
- These toxins are significant risk factors for chronic kidney disease (CKD) and cardiovascular disease (CVD) progression.
Purpose of the Study:
- To review the cellular toxicity of indoxyl sulfate.
- To elucidate its molecular mechanisms and role in CKD and CVD progression.
- To summarize therapeutic strategies for reducing indoxyl sulfate levels.
Main Methods:
- Literature review of cellular toxicity studies.
- Analysis of molecular mechanisms underlying indoxyl sulfate's effects.
- Summary of clinical data on AST-120 and other interventions.
Main Results:
- Indoxyl sulfate exhibits toxicity across various cell types, including renal, vascular, and cardiac cells.
- It plays a crucial role in the pathogenesis of CKD and CVD.
- AST-120 effectively reduces serum indoxyl sulfate by adsorbing indole.
Conclusions:
- Indoxyl sulfate is a key therapeutic target for both CKD and CVD.
- Reducing intestinal indole production via AST-120, prebiotics, or probiotics is a promising strategy.
- Antagonists targeting indoxyl sulfate signaling pathways offer an alternative therapeutic approach.
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Chronic Kidney Disease I: Introduction
Chronic Kidney Disease III: Interprofessional Care
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Acute Kidney Injury V: Interprofessional Care

