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Updated: Apr 7, 2026

Ex Vivo Assessment of Contractility, Fatigability and Alternans in Isolated Skeletal Muscles
Published on: November 1, 2012
NOS1 induces NADPH oxidases and impairs contraction kinetics in aged murine ventricular myocytes
Marten Villmow1, Udo Klöckner, Christophe Heymes
1Julius Bernstein Institute of Physiology, Martin Luther University Halle-Wittenberg, Magdeburger Strasse 6, 06112, Halle (Saale), Germany.
Abstract:
Nitric oxide (NO) modulates calcium transients and contraction of cardiomyocytes. However, it is largely unknown whether NO contributes also to alterations in the contractile function of cardiomyocytes during aging. Therefore, we analyzed the putative role of nitric oxide synthases and NO for the age-related alterations of cardiomyocyte contraction. We used C57BL/6 mice, nitric oxide synthase 1 (NOS1)-deficient mice (NOS1(-/-)) and mice with cardiomyocyte-specific NOS1-overexpression to analyze contractions, calcium transients (Indo-1 fluorescence), acto-myosin ATPase activity (malachite green assay), NADPH oxidase activity (lucigenin chemiluminescence) of isolated ventricular myocytes and cardiac gene expression (Western blots, qPCR). In C57BL/6 mice, cardiac expression of NOS1 was upregulated by aging. Since we found a negative regulation of NOS1 expression by cAMP in isolated cardiomyocytes, we suggest that reduced efficacy of β-adrenergic signaling that is evident in aged hearts promotes upregulation of NOS1. Shortening and relengthening of cardiomyocytes from aged C57BL/6 mice were decelerated, but were normalized by pharmacological inhibition of NOS1/NO. Cardiomyocytes from NOS1(-/-) mice displayed no age-related changes in contraction, calcium transients or acto-myosin ATPase activity. Aging increased cardiac expression of NADPH oxidase subunits NOX2 and NOX4 in C57BL/6 mice, but not in NOS1(-/-) mice. Similarly, cardiac expression of NOX2 and NOX4 was upregulated in a murine model with cardiomyocyte-specific overexpression of NOS1. We conclude that age-dependently upregulated NOS1, putatively via reduced efficacy of β-adrenergic signaling, induces NADPH oxidases. By increasing nitrosative and oxidative stress, both enzyme systems act synergistically to decelerate contraction of aged cardiomyocytes.
Insights
Aging upregulates nitric oxide synthase 1 (NOS1) in heart cells, leading to slower contractions. This age-related decline in cardiomyocyte function is linked to increased nitrosative and oxidative stress.
Area of Science:
- Cardiology
- Molecular Biology
- Aging Research
Background:
- Nitric oxide (NO) influences cardiomyocyte contraction, but its role in age-related contractile dysfunction is unclear.
- Aging hearts exhibit altered signaling pathways, potentially affecting nitric oxide production.
Purpose of the Study:
- To investigate the role of nitric oxide synthases (NOS) and NO in age-related changes in cardiomyocyte contractile function.
- To elucidate the molecular mechanisms linking aging, NOS1, and oxidative stress in the heart.
Main Methods:
- Utilized C57BL/6 mice, NOS1-deficient mice, and cardiomyocyte-specific NOS1-overexpressing mice.
- Assessed cardiomyocyte contraction, calcium transients, ATPase activity, NADPH oxidase activity, and cardiac gene expression.
- Employed techniques including Indo-1 fluorescence, malachite green assay, lucigenin chemiluminescence, Western blots, and qPCR.
Main Results:
- Aging upregulated cardiac NOS1 expression, potentially due to reduced cAMP-mediated signaling.
- Pharmacological NOS1/NO inhibition normalized decelerated cardiomyocyte contraction in aged mice.
- NOS1 deficiency prevented age-related alterations in contraction, calcium transients, and ATPase activity.
- Aging increased NADPH oxidase subunits (NOX2, NOX4) in wild-type mice but not in NOS1-deficient mice.
Conclusions:
- Age-dependently upregulated NOS1 induces NADPH oxidases, increasing nitrosative and oxidative stress.
- This synergistic action of NOS1 and NADPH oxidases decelerates aged cardiomyocyte contraction.
- Findings highlight NOS1 as a key mediator of age-related cardiac contractile dysfunction.

