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Published on: April 1, 2022
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.
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.
Aims:
High-flow arteriovenous fistula (AVF) for haemodialysis leads to profound haemodynamic changes and sometimes to heart failure (HF). Cardiac output (CO) is divided between the AVF and body tissues. The term effective CO (COef) represents the difference between CO and AVF flow volume (Qa) and better characterizes the altered haemodynamics that may result in organ hypoxia. We investigated the effects of Qa reduction on systemic haemodynamics and on brain oxygenation.
Methods And Results:
This is a single-centre interventional study. Twenty-six patients on chronic haemodialysis with high Qa (>1500 mL/min) were indicated for surgical Qa reduction for HF symptoms and/or signs of structural heart disease on echocardiography. The included patients underwent three sets of examinations: at 4 months and then 2 days prior and 6 weeks post-surgical procedure. Clinical status, echocardiographical haemodynamic assessment, Qa, and brain oximetry were recorded. All parameters remained stable from selection to inclusion. After the procedure, Qa decreased from 3.0 ± 1.4 to 1.3 ± 0.5 L/min, P < 0.00001, CO from 7.8 ± 1.9 to 6.6 ± 1.5 L/min, P = 0.0002, but COef increased from 4.6 ± 1.4 to 5.3 ± 1.4 L/min, P = 0.036. Brain tissue oxygen saturation increased from 56 ± 11% to 60 ± 9%, P = 0.001.
Conclusions:
Qa reduction led to increased COef. This was explained by a decreased proportion of CO running through the AVF in patients with Qa > 2.0 L/min. These observations were mirrored by higher brain oxygenation and might explain HF symptoms and improved haemodynamics even in asymptomatic high Qa patients.
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