Plasma and erythrocyte relationship of catecholamines in hemodialysis patients

Marcin Dziedzic1, Anna Bednarek-Skublewska2, Janusz Solski1

  • 1Department of Laboratory Diagnostic, Medical University of Lublin, Poland.

Insights

Erythrocytes accumulate catecholamines in kidney failure, with levels linked to urea. Red blood cell adrenaline changes predict mortality in hemodialysis patients, offering new insights into sympathetic nervous system function.

Area of Science:

  • Nephrology
  • Cardiovascular Physiology
  • Biochemistry

Background:

  • The autonomic nervous system's sympathetic and parasympathetic branches interact antagonistically.
  • Catecholamines (CA) are key sympathetic mediators affecting physiological processes, including renal hemodynamics.
  • Elevated plasma CA in chronic kidney disease (CKD) suggests increased sympathetic activity, but plasma levels are unreliable in uremia.

Purpose of the Study:

  • To investigate the relationship between plasma and erythrocyte catecholamines in hemodialysis patients.
  • To explore catecholamine accumulation in red blood cells (RBCs) during terminal renal failure.
  • To determine if RBC catecholamine levels correlate with uremic toxins and predict mortality.

Main Methods:

  • Studied 37 hemodialysis patients from the Lublin commune.
  • Measured plasma and intracellular catecholamine concentrations before and after hemodialysis.
  • Employed high-performance liquid chromatography with electrochemical detection for precise measurements.

Main Results:

  • Red blood cells (RBCs) accumulate catecholamines in terminal renal failure.
  • Adrenaline and dopamine levels within RBCs correlate with plasma urea accumulation.
  • Dynamic changes in RBC adrenaline concentration independently predict mortality in hemodialysis patients.

Conclusions:

  • RBCs serve as a reservoir for catecholamines in patients with end-stage renal disease.
  • RBC catecholamine levels, particularly adrenaline, offer a potentially valuable prognostic marker in hemodialysis.
  • This study highlights the complex interplay between the sympathetic nervous system, uremia, and clinical outcomes.

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