PulseExploreJournal ClubDebatesTrendingResearchersJournals
Instagram
HomeExploreJournal ClubTrending
Synapse
⌘+K
Synapse
October 17, 2014Insecta mundi107 citationsOpen Access

Aerobic Exercise Training Prevents Heart Failure-Induced Skeletal Muscle Atrophy by Anti-Catabolic, but Not Anabolic Actions

RSRodrigo Wagner Alves de SouzaWPWarlen Pereira PiedadeLSLuana Campos Soares

Structured PICO

Does aerobic exercise training prevent heart failure-induced skeletal muscle atrophy in a rat model of aortic stenosis?

P
Population
32 male Wistar rats (3-4 weeks old, 90-100 g at surgery). 16 underwent ascending aortic stenosis (AS) to induce heart failure, and 16 underwent sham surgery. At 18 weeks post-surgery, rats with cardiac dysfunction were randomized into 4 groups (n=8 each): Sham-UN, Sham-ET, AS-UN, and AS-ET.
I
Intervention
10 weeks of aerobic exercise training (ET) on a motor treadmill, 5 days/week, with progressively increasing duration (5 to 22 min) and intensity (running speed corresponding to the lactate threshold).
C
Comparator
Untrained (sedentary) groups (Sham-UN and AS-UN) that did not undergo the exercise training protocol.
O
Outcome
Skeletal muscle atrophy (soleus and plantaris muscles) and expression of anabolic and catabolic factors at 28 weeks post-surgery.surrogate

Aerobic exercise training initiated during the transition to heart failure prevents skeletal muscle atrophy through anti-catabolic mechanisms rather than anabolic pathways.

Abstract

BACKGROUND: Heart failure (HF) is associated with cachexia and consequent exercise intolerance. Given the beneficial effects of aerobic exercise training (ET) in HF, the aim of this study was to determine if the ET performed during the transition from cardiac dysfunction to HF would alter the expression of anabolic and catabolic factors, thus preventing skeletal muscle wasting. METHODS AND RESULTS: We employed ascending aortic stenosis (AS) inducing HF in Wistar male rats. Controls were sham-operated animals. At 18 weeks after surgery, rats with cardiac dysfunction were randomized to 10 weeks of aerobic ET (AS-ET) or to an untrained group (AS-UN). At 28 weeks, the AS-UN group presented HF signs in conjunction with high TNF-α serum levels; soleus and plantaris muscle atrophy; and an increase in the expression of TNF-α, NFκB (p65), MAFbx, MuRF1, FoxO1, and myostatin catabolic factors. However, in the AS-ET group, the deterioration of cardiac function was prevented, as well as muscle wasting, and the atrophy promoters were decreased. Interestingly, changes in anabolic factor expression (IGF-I, AKT, and mTOR) were not observed. Nevertheless, in the plantaris muscle, ET maintained high PGC1α levels. CONCLUSIONS: Thus, the ET capability to attenuate cardiac function during the transition from cardiac dysfunction to HF was accompanied by a prevention of skeletal muscle atrophy that did not occur via an increase in anabolic factors, but through anti-catabolic activity, presumably caused by PGC1α action. These findings indicate the therapeutic potential of aerobic ET to block HF-induced muscle atrophy by counteracting the increased catabolic state.

Ask AI
Helpful
Bookmark
Share
View Full Paper

Cite This Study

Souza et al. (2014) studied this question.

synapsesocial.com/papers/6a19611ec05413006f5841a6https://doi.org/10.1371/journal.pone.0110020
Ask AI
Helpful
Bookmark
Share
View Full Paper