The effect of high-flow arteriovenous fistulas on systemic haemodynamics and brain oxygenation

Jan Malik1, Anna Valerianova1, Vladimir Tuka1

  • 1Third Department of Internal Medicine, General University Hospital, First Faculty of Medicine, Charles University, U Nemocnice 1, Prague, 128 08, Czech Republic.

ESC Heart Failure
|March 23, 2021
PubMed

Insights

Reducing high-flow arteriovenous fistula (AVF) flow in hemodialysis patients significantly increases effective cardiac output (COef) and improves brain oxygenation, potentially alleviating heart failure symptoms.

Area of Science:

  • Nephrology
  • Cardiology
  • Vascular Surgery

Background:

  • High-flow arteriovenous fistulas (AVFs) for hemodialysis can cause significant hemodynamic changes, potentially leading to heart failure (HF).
  • Effective cardiac output (COef), calculated as cardiac output (CO) minus AVF flow (Qa), is a better indicator of altered hemodynamics and potential organ hypoxia.

Purpose of the Study:

  • To investigate the effects of reducing high AVF flow (Qa) on systemic hemodynamics and brain oxygenation in hemodialysis patients.
  • To evaluate if surgical Qa reduction improves COef and brain oxygenation in patients with high Qa and HF symptoms.

Main Methods:

  • A single-center interventional study involving 26 chronic hemodialysis patients with high Qa (>1500 mL/min) and HF symptoms or structural heart disease.
  • Measurements of clinical status, echocardiographic hemodynamics, Qa, and brain oximetry were taken before and 6 weeks after surgical Qa reduction.

Main Results:

  • Surgical reduction significantly decreased Qa (3.0 to 1.3 L/min) and CO (7.8 to 6.6 L/min).
  • Effective CO (COef) significantly increased (4.6 to 5.3 L/min), and brain tissue oxygen saturation improved (56% to 60%).

Conclusions:

  • Reducing high AVF flow (Qa) effectively increases COef, suggesting improved systemic circulation.
  • The observed increase in brain oxygenation supports the hypothesis that Qa reduction can alleviate HF symptoms and improve hemodynamics in high-flow AVF patients.
Abstract

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