Intermittent hypoxia mimicking sleep apnea increases passive stiffness of myocardial extracellular matrix. A multiscale study

dc.contributor.author
Farré, Núria
dc.contributor.author
Otero Díaz, Jorge
dc.contributor.author
Falcones, Bryan
dc.contributor.author
Torres, Marta
dc.contributor.author
Jorba, Ignasi
dc.contributor.author
Gozal, David
dc.contributor.author
Almendros López, Isaac
dc.contributor.author
Farré Ventura, Ramon
dc.contributor.author
Navajas Navarro, Daniel
dc.date.issued
2019-12-10T15:10:17Z
dc.date.issued
2019-12-10T15:10:17Z
dc.date.issued
2018-08-15
dc.date.issued
2019-12-10T15:10:17Z
dc.identifier
1664-042X
dc.identifier
https://hdl.handle.net/2445/146384
dc.identifier
684223
dc.identifier
30158879
dc.description.abstract
Background: Tissue hypoxia-reoxygenation characterizes obstructive sleep apnea (OSA), a very prevalent respiratory disease associated with increased cardiovascular morbidity and mortality. Experimental studies indicate that intermittent hypoxia (IH) mimicking OSA induces oxidative stress and inflammation in heart tissue at the cell and molecular levels. However, it remains unclear whether IH modifies the passive stiffness of the cardiac tissue extracellular matrix (ECM). Aim: To investigate multiscale changes of stiffness induced by chronic IH in the ECM of left ventricular (LV) myocardium in a murine model of OSA. Methods: Two-month and 18-month old mice (N = 10 each) were subjected to IH (20% O2 40 s-6% O2 20 s) for 6 weeks (6 h/day). Corresponding control groups for each age were kept under normoxia. Fresh LV myocardial strips (∼7 mm × 1 mm × 1 mm) were prepared, and their ECM was obtained by decellularization. Myocardium ECM macroscale mechanics were measured by performing uniaxial stress-strain tensile tests. Strip macroscale stiffness was assessed as the stress value (σ) measured at 0.2 strain and Young's modulus (EM) computed at 0.2 strain by fitting Fung's constitutive model to the stress-strain relationship. ECM stiffness was characterized at the microscale as the Young's modulus (Em) measured in decellularized tissue slices (∼12 μm tick) by atomic force microscopy. Results: Intermittent hypoxia induced a ∼1.5-fold increase in σ (p < 0.001) and a ∼2.5-fold increase in EM (p < 0.001) of young mice as compared with normoxic controls. In contrast, no significant differences emerged in Em among IH-exposed and normoxic mice. Moreover, the mechanical effects of IH on myocardial ECM were similar in young and aged mice. Conclusion: The marked IH-induced increases in macroscale stiffness of LV myocardium ECM suggests that the ECM plays a role in the cardiac dysfunction induced by OSA. Furthermore, absence of any significant effects of IH on the microscale ECM stiffness suggests that the significant increases in macroscale stiffening are primarily mediated by 3D structural ECM remodeling.
dc.format
10 p.
dc.format
application/pdf
dc.language
eng
dc.publisher
Frontiers Media
dc.relation
Reproducció del document publicat a: https://doi.org/10.3389/fphys.2018.01143
dc.relation
Frontiers in Physiology, 2018, vol. 9, p. 1143
dc.relation
https://doi.org/10.3389/fphys.2018.01143
dc.rights
cc-by (c) Farré, Núria et al., 2018
dc.rights
http://creativecommons.org/licenses/by/3.0/es
dc.rights
info:eu-repo/semantics/openAccess
dc.source
Articles publicats en revistes (Biomedicina)
dc.subject
Síndromes d'apnea del son
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Malalties coronàries
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Ventricles cardíacs
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Sleep apnea syndromes
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Coronary diseases
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Ventricle of heart
dc.title
Intermittent hypoxia mimicking sleep apnea increases passive stiffness of myocardial extracellular matrix. A multiscale study
dc.type
info:eu-repo/semantics/article
dc.type
info:eu-repo/semantics/publishedVersion


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