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Published on: October 2, 2020
Sodium, volume and pressure control in haemodialysis patients for improved cardiovascular outcomes
Jule Pinter1, Charles Chazot2, Stefano Stuard3
1Renal Division, University Hospital of Würzburg, Würzburg, Germany.
Insights
Fluid overload in hemodialysis patients significantly increases cardiovascular death risk. Objective assessments like bioimpedance spectroscopy are crucial for managing fluid overload and improving patient outcomes.
Area of Science:
- Nephrology
- Cardiology
- Physiology
Background:
- Chronic volume overload is a major risk factor for cardiovascular death in hemodialysis patients.
- Understanding sodium metabolism and its role in hypertension and end-stage kidney disease is critical.
- Accurate assessment of fluid overload is challenging due to limitations of traditional clinical signs.
Purpose of the Study:
- To highlight the significance of fluid overload in hemodialysis patients.
- To emphasize the need for improved methods in assessing and managing fluid overload.
- To explore the link between fluid overload, blood pressure, and mortality risk.
Main Methods:
- Review of current understanding of sodium metabolism and fluid overload.
- Analysis of mortality risk associated with different fluid overload and blood pressure states.
- Discussion of objective assessment tools like bioimpedance spectroscopy.
- Mention of 23Na-magnetic resonance imaging for sodium quantification.
- Reference to ongoing cluster-randomization trials on sodium removal.
Main Results:
- Highest mortality risk observed in patients with high fluid overload and low pre-dialysis blood pressure.
- Significant mortality risk also associated with high blood pressure and fluid overload.
- High blood pressure with normal fluid overload presents a moderate risk.
Conclusions:
- Optimizing fluid overload management requires integrating clinical evaluation with objective measurements.
- The concept of time-averaged fluid overload and adjusting post-dialysis weight is important.
- Further research and clinical trials are needed to refine cardioprotective hemodialysis strategies.
Abstract:
Chronic volume overload is pervasive in patients on chronic haemodialysis and substantially increases the risk of cardiovascular death. The rediscovery of the three-compartment model in sodium metabolism revolutionizes our understanding of sodium (patho-)physiology and is an effect modifier that still needs to be understood in the context of hypertension and end-stage kidney disease. Assessment of fluid overload in haemodialysis patients is central yet difficult to achieve, because traditional clinical signs of volume overload lack sensitivity and specificity. The highest all-cause mortality risk may be found in haemodialysis patients presenting with high fluid overload but low blood pressure before haemodialysis treatment. The second highest risk may be found in patients with both high blood pressure and fluid overload, while high blood pressure but normal fluid overload may only relate to moderate risk. Optimization of fluid overload in haemodialysis patients should be guided by combining the traditional clinical evaluation with objective measurements such as bioimpedance spectroscopy in assessing the risk of fluid overload. To overcome the tide of extracellular fluid, the concept of time-averaged fluid overload during the interdialytic period has been established and requires possible readjustment of a negative target post-dialysis weight. 23Na-magnetic resonance imaging studies will help to quantitate sodium accumulation and keep prescribed haemodialytic sodium mass balance on the radar. Cluster-randomization trials (e.g. on sodium removal) are underway to improve our therapeutic approach to cardioprotective haemodialysis management.
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