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Updated: Mar 5, 2026

A Novel Stretching Platform for Applications in Cell and Tissue Mechanobiology
Published on: June 3, 2014
Cavin-1 deficiency modifies myocardial and coronary function, stretch responses and ischaemic tolerance: roles of NOS
Mika Kaakinen1,2, Melissa E Reichelt3, Zhibin Ma3
1Oulu Center for Cell-Matrix Research, Faculty of Biochemistry and Molecular Medicine, Biocenter Oulu, University of Oulu, Oulu, Finland.
Abstract:
Caveolae and associated cavin and caveolins may govern myocardial function, together with responses to mechanical and ischaemic stresses. Abnormalities in these proteins are also implicated in different cardiovascular disorders. However, specific roles of the cavin-1 protein in cardiac and coronary responses to mechanical/metabolic perturbation remain unclear. We characterised cardiovascular impacts of cavin-1 deficiency, comparing myocardial and coronary phenotypes and responses to stretch and ischaemia-reperfusion in hearts from cavin-1 +/+ and cavin-1 -/- mice. Caveolae and caveolins 1 and 3 were depleted in cavin-1 -/- hearts. Cardiac ejection properties in situ were modestly reduced in cavin-1 -/- mice. While peak contractile performance in ex vivo myocardium from cavin-1 -/- and cavin-1 +/+ mice was comparable, intrinsic beating rate, diastolic stiffness and Frank-Starling behaviour (stretch-dependent diastolic and systolic forces) were exaggerated in cavin-1 -/- hearts. Increases in stretch-dependent forces were countered by NOS inhibition (100 µM L-NAME), which exposed negative inotropy in cavin-1 -/- hearts, and were mimicked by 100 µM nitroprusside. In contrast, chronotropic differences appeared largely NOS-independent. Cavin-1 deletion also induced NOS-dependent coronary dilatation, ≥3-fold prolongation of reactive hyperaemic responses, and exaggerated pressure-dependence of coronary flow. Stretch-dependent efflux of lactate dehydrogenase and cardiac troponin I was increased and induction of brain natriuretic peptide and c-Fos inhibited in cavin-1 -/- hearts, while ERK1/2 phospho-activation was preserved. Post-ischaemic dysfunction and damage was also exaggerated in cavin-1 -/- hearts. Diverse effects of cavin-1 deletion reveal important roles in both NOS-dependent and -independent control of cardiac and coronary functions, together with governing sarcolemmal fragility and myocardial responses to stretch and ischaemia.
Insights
Cavin-1 deficiency impairs cardiac function and increases susceptibility to ischemia-reperfusion injury. This study reveals cavin-1
Area of Science:
- Cardiovascular Biology
- Cellular Biology
- Physiology
Background:
- Caveolae, formed by caveolins and cavins, are crucial for cellular signaling and membrane trafficking.
- Caveolinopathies, linked to cardiovascular disorders, highlight the importance of these structures.
- The specific role of cavin-1 in cardiac and coronary responses to stress is not well understood.
Purpose of the Study:
- To investigate the cardiovascular effects of cavin-1 deficiency.
- To compare myocardial and coronary responses to mechanical and ischemic stress in cavin-1 knockout mice.
- To elucidate the role of cavin-1 in regulating cardiac function and vascular responses.
Main Methods:
- Utilized cavin-1 knockout (cavin-1-/-) and wild-type (cavin-1+/+) mice.
- Assessed in situ cardiac ejection properties and ex vivo myocardial contractility.
- Measured responses to mechanical stretch, ischemia-reperfusion, and pharmacological interventions (NOS inhibition, nitroprusside).
Main Results:
- Cavin-1 deficiency led to reduced caveolae and caveolins 1 and 3 in the heart.
- Exaggerated Frank-Starling responses and increased diastolic stiffness were observed in cavin-1-/- hearts.
- NOS inhibition revealed negative inotropy in cavin-1-/- hearts, while coronary dilatation and prolonged reactive hyperemia were NOS-dependent.
- Increased cardiac troponin I and LDH release, alongside exaggerated post-ischemic dysfunction and damage, were noted in cavin-1-/- hearts.
Conclusions:
- Cavin-1 plays a significant role in both nitric oxide-dependent and -independent regulation of cardiac and coronary function.
- Cavin-1 deficiency compromises sarcolemmal integrity, leading to increased fragility and impaired response to mechanical stress and ischemia.
- These findings highlight cavin-1 as a critical regulator of myocardial and vascular homeostasis.
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