Disposition and clinical implications of protein-bound uremic toxins

Jitske Jansen1, Joachim Jankowski2,3, Prathibha R Gajjala2,3

  • 1Division of Pharmacology, Utrecht Institute for Pharmaceutical Sciences, Utrecht University, Utrecht, The Netherlands.

Insights

Chronic kidney disease (CKD) impairs toxin removal, affecting drug interactions. New therapies are needed to manage protein-bound uremic toxins and improve patient outcomes.

Area of Science:

  • Nephrology
  • Pharmacology
  • Toxicology

Background:

  • Chronic kidney disease (CKD) compromises renal clearance, leading to the accumulation of uremic solutes (uremic toxins).
  • Many uremic toxins are protein-bound and too large for glomerular filtration, necessitating active tubular secretion for removal.
  • Renal transporters involved in drug disposition are crucial for the tubular secretion of these protein-bound uremic toxins.

Purpose of the Study:

  • To review the formation, disposition, and removal of protein-bound uremic toxins in CKD.
  • To discuss the implications of drug treatment and drug-drug interactions in kidney failure.
  • To explore innovative renal replacement therapies targeting protein-bound uremic toxins.

Main Methods:

  • Literature review of current knowledge on uremic toxin transport and drug disposition in CKD.
  • Analysis of the role of renal transporters in uremic toxin handling.
  • Discussion of clinical implications and future therapeutic strategies.

Main Results:

  • Uremic toxins significantly impact drug disposition and can lead to drug-drug interactions in CKD patients.
  • Renal transporters play a critical role in the elimination of protein-bound uremic toxins.
  • Current renal replacement therapies may not effectively remove all protein-bound uremic toxins.

Conclusions:

  • CKD presents complex challenges in toxin management and drug therapy, requiring a transdisciplinary approach.
  • Understanding drug-uremic toxin interactions is essential for optimizing pharmacotherapy in kidney disease.
  • Targeting protein-bound uremic toxins with novel therapies and improved renal replacement strategies holds promise for better patient outcomes.

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