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Effects of myostatin deletion in aging mice
Michael R Morissette1, Janelle C Stricker, Michael A Rosenberg
1Cardiovascular Institute, Beth Israel Deaconess Medical Center and Harvard Medical School, Boston, MA 02215, USA.
Abstract:
Inhibitors of myostatin, a negative regulator of skeletal muscle mass, are being developed to mitigate aging-related muscle loss. Knock-out (KO) mouse studies suggest myostatin also affects adiposity, glucose handling and cardiac growth. However, the cardiac consequences of inhibiting myostatin remain unclear. Myostatin inhibition can potentiate cardiac growth in specific settings (Morissette et al., 2006), a concern because of cardiac hypertrophy is associated with adverse clinical outcomes. Therefore, we examined the systemic and cardiac effects of myostatin deletion in aged mice (27-30 months old). Heart mass increased comparably in both wild-type (WT) and KO mice. Aged KO mice maintained twice as much quadriceps mass as aged WT; however, both groups lost the same percentage (36%) of adult muscle mass. Dual-energy X-ray absorptiometry revealed increased bone density, mineral content, and area in aged KO vs. aged WT mice. Serum insulin and glucose levels were lower in KO mice. Echocardiography showed preserved cardiac function with better fractional shortening (58.1% vs. 49.4%, P = 0.002) and smaller left ventricular diastolic diameters (3.41 vs. 2.71, P = 0.012) in KO vs. WT mice. Phospholamban phosphorylation was increased 3.3-fold in KO hearts (P < 0.05), without changes in total phospholamban, sarco(endo)plasmic reticulum calcium ATPase 2a or calsequestrin. Aged KO hearts showed less fibrosis by Masson's Trichrome staining. Thus, myostatin deletion does not affect aging-related increases in cardiac mass and appears beneficial for bone density, insulin sensitivity and heart function in senescent mice. These results suggest that clinical interventions designed to inhibit skeletal muscle mass loss with aging could have beneficial effects on other organ systems as well.
Insights
Myostatin deletion in aged mice improved bone density, insulin sensitivity, and cardiac function without increasing heart mass. This suggests inhibiting myostatin for muscle loss may benefit other organs in aging.
Area of Science:
- Gerontology
- Cardiovascular Biology
- Metabolic Research
Background:
- Myostatin inhibitors are developed to combat age-related muscle loss.
- Myostatin's role in adiposity, glucose metabolism, and cardiac growth is known, but cardiac effects of inhibition are unclear.
- Cardiac hypertrophy from myostatin inhibition is a concern due to adverse outcomes.
Purpose of the Study:
- To investigate the systemic and cardiac effects of myostatin deletion in aged mice.
- To determine if myostatin inhibition impacts aging-related cardiac mass changes.
- To assess the impact of myostatin deletion on bone density, glucose metabolism, and cardiac function in senescent mice.
Main Methods:
- Studied aged wild-type (WT) and myostatin knockout (KO) mice (27-30 months old).
- Assessed quadriceps muscle mass, bone parameters (DXA), serum insulin and glucose levels.
- Utilized echocardiography for cardiac function assessment and Masson's Trichrome staining for cardiac fibrosis.
Main Results:
- Myostatin deletion did not alter aging-related increases in heart mass.
- Aged KO mice showed preserved cardiac function, improved fractional shortening, and smaller left ventricular diastolic diameters compared to WT.
- KO mice exhibited increased bone density, lower insulin/glucose levels, and reduced cardiac fibrosis.
Conclusions:
- Myostatin deletion in aged mice benefits bone density, insulin sensitivity, and cardiac function without increasing cardiac mass.
- These findings suggest potential benefits of myostatin inhibition for multiple organ systems during aging.
- Myostatin inhibition may offer a therapeutic strategy beyond skeletal muscle for age-related decline.

