Key result
Acute swimming alters ~2% of cardiac genes, with greatest expression shifts in sedentary rats.
Why the study?
Regular physical activity may cause changes in cardiac gene expression that affect health-related phenotypes, but the acute effects of physical activity on cardiac gene expression in inactive versus active subjects are not well understood.
p-value: p=<0.05
Activity history blunts acute cardiac transcriptional responses in rats; hypothesis-generating for human cardiac adaptation.
Regular bouts of physical activity may cause changes in gene expression that accumulate over time and ultimately affect phenotypes, such as body weight, blood lipid profile and tumour development. Furthermore, acute activity may affect gene expression and phenotypes differently depending on whether the individual is regularly inactive or active. One-month-old male Sprague-Dawley rats (n = 72) were equally divided into SED (standard laboratory cage, n = 24), PA (large activity box, n = 24) and EX groups (exercise wheel inside standard cage, n = 24). At 3 months of age, half the animals from each group were killed at rest and the other half following 30 min of physical activity. The RNA was extracted from cardiac tissue, and microarray analysis was performed on 27,000 genes. Select gene results were validated using quantitative PCR. No gene expression differences occurred when comparing all 3-month-old groups at rest. A relatively small percentage of genes (1.9%) were differentially expressed (P < 0.05) following acute swimming activity in all groups, but only 37 unique and identifiable genes reached or exceeded twofold differences in expression. The genes Atf3, Fos, Apold1 and Pxdn were expressed differently among SED, PA and EX following acute activity, with a clear separation of the magnitude in gene expression with SED > PA > EX. Differences in gene expression levels in young physically inactive and active animals following acute activity have different regulatory roles in gene networks that affect health-related phenotypes.
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Simonsen et al. (2010) studied Healthy (animal model) (n=72). Acute swimming after varying chronic physical activity levels (SED, PA, EX) vs. Rest (no acute swimming) was evaluated on Differential cardiac gene expression (p=<0.05). Acute swimming induced differential expression in 1.9% of cardiac genes, with the magnitude of expression changes for specific genes (Atf3, Fos, Apold1, Pxdn) following a trend of sedentary > physically active > exercised rats.
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