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Updated: Jan 30, 2026

Cutoff Value of Phase Angle by Bioelectrical Impedance Analysis at Admission as a Prognostic Factor in Patients with Acute Heart Failure
Published on: June 10, 2025
Release of mitochondrial DNA is associated with mortality in severe acute heart failure
Konstantin A Krychtiuk1, Raphael Wurm1, Sarah Ruhittel1
1Department of Internal Medicine II, Medical University of Vienna, Austria.
Background:
Inflammation is regarded as an important trigger for disease progression in heart failure. Particularly in severe acute heart failure, tissue hypoxia may lead to cellular damage and the release of intracellular mitochondrial DNA, which acts as an activator of the immune system due to its resemblance to bacterial DNA. It may therefore serve as a mediator of disease progression. The aim of this study was to determine circulating levels of mitochondrial DNA and its association with mortality in patients with heart failure in different presentations.
Methods:
Plasma levels of circulating mitochondrial DNA were measured in 90 consecutive patients with severe acute heart failure admitted to our medical intensive care unit as well as 109 consecutive chronic heart failure patients.
Results:
In patients admitted to our medical intensive care unit (median age 64 (49-74) years, median NT-pro-brain natriuretic peptide 4986 (1525-23,842) pg/mL, 30-day survival 64.4%), mitochondrial DNA levels were significantly higher in patients who died within 30 days after intensive care unit admission, and patients with plasma levels of mitochondrial DNA in the highest quartile had a 3.4-fold increased risk (P=0.002) of dying independent of renal function, vasopressor use and NT-pro-brain natriuretic peptide, troponin T, lactate levels or CardShock and acute physiology and chronic health evaluation II score. However, mitochondrial DNA did not provide incremental prognostic accuracy on top of the current gold standard acute physiology and chronic health evaluation II. Patients with severe acute heart failure showed significantly higher mitochondrial DNA levels (P<0.005) as compared to patients with chronic heart failure. In these patients, mitochondrial DNA levels were associated with the New York Heart Association functional class but were not associated with outcome.
Conclusions:
The release of mitochondrial DNA into the circulation is associated with mortality in patients with severe acute heart failure but not in patients with chronic heart failure. The release of mitochondrial DNA may therefore play a role within the pathophysiology of acute heart failure, which warrants further research. However, the use of mitochondrial DNA as a biomarker for risk stratification in these patients is of limited utility.
Insights
Circulating mitochondrial DNA is linked to mortality in severe acute heart failure patients. While it may play a role in acute heart failure, it has limited utility as a prognostic biomarker.
Area of Science:
- Cardiology
- Immunology
- Molecular Biology
Background:
- Inflammation is a key driver of heart failure progression.
- Tissue hypoxia in severe acute heart failure can release mitochondrial DNA, activating the immune system.
- This released mitochondrial DNA may mediate disease progression in heart failure.
Purpose of the Study:
- To investigate circulating mitochondrial DNA levels in patients with heart failure.
- To determine the association between mitochondrial DNA levels and mortality in different heart failure presentations.
Main Methods:
- Plasma mitochondrial DNA levels were measured in 90 severe acute heart failure patients and 109 chronic heart failure patients.
- Association with mortality, renal function, vasopressor use, and other clinical scores was analyzed.
Main Results:
- Higher mitochondrial DNA levels were observed in severe acute heart failure patients who died within 30 days.
- The highest quartile of mitochondrial DNA levels indicated a 3.4-fold increased mortality risk in severe acute heart failure, independent of other factors.
- Mitochondrial DNA levels were higher in severe acute heart failure compared to chronic heart failure but did not improve prognostic accuracy over existing scores.
Conclusions:
- Circulating mitochondrial DNA is associated with mortality in severe acute heart failure, suggesting a role in its pathophysiology.
- Mitochondrial DNA levels are not associated with outcome in chronic heart failure patients.
- Mitochondrial DNA has limited utility as a biomarker for risk stratification in acute heart failure.
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