Contractile properties of EDL and soleus muscles of myostatin-deficient mice
- 1 September 2006
- journal article
- research article
- Published by American Physiological Society in Journal of Applied Physiology
- Vol. 101 (3) , 898-905
- https://doi.org/10.1152/japplphysiol.00126.2006
Abstract
Myostatin is a negative regulator of muscle mass. The impact of myostatin deficiency on the contractile properties of healthy muscles has not been determined. We hypothesized that myostatin deficiency would increase the maximum tetanic force (Po), but decrease the specific Po(sPo) of muscles and increase the susceptibility to contraction-induced injury. The in vitro contractile properties of extensor digitorum longus (EDL) and soleus muscles from wild-type ( MSTN+/+), heterozygous-null ( MSTN+/−), and homozygous-null ( MSTN−/−) adult male mice were determined. For EDL muscles, the Poof both MSTN+/−and MSTN−/−mice were greater than the Poof MSTN+/+mice. For soleus muscles, the Poof MSTN−/−mice was greater than that of MSTN+/+mice. The sPoof EDL muscles of MSTN−/−mice was less than that of MSTN+/+mice. For soleus muscles, however, no difference in sPowas observed. Following two lengthening contractions, EDL muscles from MSTN−/−mice had a greater force deficit than that of MSTN+/+or MSTN+/−mice, whereas no differences were observed for the force deficits of soleus muscles. Myostatin-deficient EDL muscles had less hydroxyproline, and myostatin directly increased type I collagen mRNA expression and protein content. The difference in the response of EDL and soleus muscles to myostatin may arise from differences in the levels of a myostatin receptor, activin type IIB. Compared with the soleus, the amount of activin type IIB receptor was approximately twofold greater in EDL muscles. The results support a significant role for myostatin not only in the mass of muscles but also in the contractility and the composition of the extracellular matrix of muscles.Keywords
This publication has 70 references indexed in Scilit:
- Skeletal muscle development in normal and double‐muscled cattleThe Anatomical Record Part A: Discoveries in Molecular, Cellular, and Evolutionary Biology, 2004
- Regulation of GDF-8 signaling by the p38 MAPKCellular Signalling, 2004
- Myostatin Mutation Associated with Gross Muscle Hypertrophy in a ChildNew England Journal of Medicine, 2004
- Effects of jump training on passive mechanical stress and stiffness in rabbit skeletal muscle: role of collagenActa Physiologica Scandinavica, 2003
- Pharmacological strategies for muscular dystrophyNature Reviews Drug Discovery, 2003
- Analysis of Relative Gene Expression Data Using Real-Time Quantitative PCR and the 2−ΔΔCT MethodMethods, 2001
- Muscular Force Transmission: A Unified, Dual or Multiple System? A Review and Some Explorative Experimental ResultsArchives of Physiology and Biochemistry, 1999
- A deletion in the bovine myostatin gene causes the double–muscled phenotype in cattleNature Genetics, 1997
- Ultrastructural and immunocytochemical study on normal human palmar aponeurosesThe Anatomical Record, 1994
- Biochemical studies on the collagen of the palmar aponeurosis affected with Dupuytren's disease.The Tohoku Journal of Experimental Medicine, 1984