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Updated: Feb 13, 2026

Measurement of Heart Contractility in Isolated Adult Human Primary Cardiomyocytes
Published on: August 9, 2022
Iron deficiency impairs contractility of human cardiomyocytes through decreased mitochondrial function
Martijn F Hoes1, Niels Grote Beverborg1, J David Kijlstra1
1Department of Cardiology, University Medical Center Groningen, University of Groningen, Groningen, The Netherlands.
Insights
Iron deficiency directly impairs human heart cell function by reducing mitochondrial respiration and contractility. Restoring iron levels can reverse these negative effects on cardiac cells.
Area of Science:
- Cardiology
- Cell Biology
- Biochemistry
Background:
- Iron deficiency is prevalent in heart failure patients, correlating with poor cardiac function and increased mortality.
- The precise cellular mechanisms by which iron deficiency impacts human cardiac function remain unclear.
Purpose of the Study:
- To investigate the direct effects of iron deficiency and subsequent iron repletion on human cardiomyocytes at a cellular level.
Main Methods:
- Human embryonic stem cell-derived cardiomyocytes were subjected to iron depletion using deferoxamine (DFO).
- Mitochondrial respiration was assessed via Seahorse Mito Stress test, and contractility was measured using video analysis (BASiC method).
- Activity of mitochondrial respiratory chain complexes was determined using spectrophotometric enzyme assays.
Main Results:
- Iron depletion significantly decreased ferritin levels and increased transferrin receptor 1 and divalent metal transporter 1 gene expression.
- Iron-deficient cardiomyocytes exhibited reduced mitochondrial function, specifically impaired ATP-linked respiration and respiratory reserve, due to decreased activity in iron-sulfur cluster-containing complexes I, II, and III.
- Cellular ATP levels dropped by 74%, contractile force decreased by 43%, and maximum systolic and diastolic velocities were significantly reduced.
Conclusions:
- Iron deficiency directly compromises human cardiomyocyte function, leading to impaired mitochondrial respiration, reduced contractility, and slower relaxation.
- Restoring intracellular iron levels effectively reverses these functional and morphological deficits in cardiomyocytes.
Aims:
Iron deficiency is common in patients with heart failure and associated with a poor cardiac function and higher mortality. How iron deficiency impairs cardiac function on a cellular level in the human setting is unknown. This study aims to determine the direct effects of iron deficiency and iron repletion on human cardiomyocytes.
Methods And Results:
Human embryonic stem cell-derived cardiomyocytes were depleted of iron by incubation with the iron chelator deferoxamine (DFO). Mitochondrial respiration was determined by Seahorse Mito Stress test, and contractility was directly quantified using video analyses according to the BASiC method. The activity of the mitochondrial respiratory chain complexes was examined using spectrophotometric enzyme assays. Four days of iron depletion resulted in an 84% decrease in ferritin (P < 0.0001) and significantly increased gene expression of transferrin receptor 1 and divalent metal transporter 1 (both P < 0.001). Mitochondrial function was reduced in iron-deficient cardiomyocytes, in particular ATP-linked respiration and respiratory reserve were impaired (both P < 0.0001). Iron depletion affected mitochondrial function through reduced activity of the iron-sulfur cluster containing complexes I, II and III, but not complexes IV and V. Iron deficiency reduced cellular ATP levels by 74% (P < 0.0001) and reduced contractile force by 43% (P < 0.05). The maximum velocities during both systole and diastole were reduced by 64% and 85%, respectively (both P < 0.001). Supplementation of transferrin-bound iron recovered functional and morphological abnormalities within 3 days.
Conclusion:
Iron deficiency directly affects human cardiomyocyte function, impairing mitochondrial respiration, and reducing contractility and relaxation. Restoration of intracellular iron levels can reverse these effects.
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