Why the study?
Microgravity causes myocardial atrophy and dysfunction contributing to orthostatic intolerance, but underlying mechanisms are incompletely understood and preventive approaches are limited.
Does losartan prevent myocardial dysfunction and preserve cardiomyocyte size in a tail-suspended mouse model of microgravity?
Does losartan prevent myocardial dysfunction and preserve cardiomyocyte size in a tail-suspended mouse model of microgravity?
Losartan preserves cardiomyocyte size and prevents myocardial dysfunction in a mouse model of microgravity by inhibiting NADPH oxidase activation and MuRF1 expression.
Preclinical finding only; leaves open whether losartan prevents cardiac atrophy in human microgravity or bedrest.
Spaceflight or microgravity conditions cause myocardial atrophy and dysfunction, contributing to post-flight orthostatic intolerance. However, the underlying mechanisms remain incompletely understood and preventive approaches are limited. This study investigated whether and how losartan, a blocker of angiotensin-II receptor, preserved cardiomyocyte size and prevented myocardial dysfunction during microgravity. Adult male mice were suspended with their tails to simulate microgravity. Echocardiography was performed to assess myocardial function. Heart weight and cardiomyocyte size were measured. NADPH oxidase activation was determined by analyzing membrane translocation of its cytosolic subunits including p47 phox , p67 phox and Rac1. Heart tissues were also assayed for oxidative stress, p47 phox phosphorylation (Ser345), MuRF1 protein levels and angiotensin-II production. Tail-suspension for 28 days increased angiotensin-II production in hearts, decreased cardiomyocyte size and heart weight, and induced myocardial dysfunction. Administration of losartan preserved cardiomyocyte size and heart weight, and prevented myocardial dysfunction in tail-suspended mice. These cardioprotective effects of losartan were associated with inhibition of p47 phox phosphorylation (Ser345), NADPH oxidase and oxidative stress in tail-suspended mouse hearts. Additionally, the NADPH oxidase inhibitor, apocynin, also reduced oxidative stress, preserved cardiomyocyte size and heart weight, and improved myocardial function in tail-suspended mice. Furthermore, losartan but not apocynin attenuated tail-suspension-induced up-regulation of MuRF1 protein in mouse hearts. Administration of losartan preserves cardiomyocyte size and prevents myocardial dysfunction under microgravity by blocking p47 phox phosphorylation and NADPH oxidase activation, and by inhibiting MuRF1 expression. Thus, losartan may be a useful drug to prevent microgravity-induced myocardial abnormalities.
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Liang et al. (2019) studied this question.