Role of myostatin in metabolism

被引:65
作者
Gonzalez-Cadavid, NF [1 ]
Bhasin, S [1 ]
机构
[1] Charles R Drew Univ, Dept Internal Med, Div Endocrinol, Los Angeles, CA USA
关键词
transforming growth factor beta; skeletal muscle; myogenesis; follistatin; Smad; satellite cells; glucorticoids;
D O I
10.1097/01.mco.0000134365.99523.7f
中图分类号
R5 [内科学];
学科分类号
1002 ; 100201 ;
摘要
Purpose of review To review papers on myostatin published in 2003 and early 2004. Myostatin is a negative regulator of skeletal muscle mass produced in this tissue. Inactivating mutations of the myostatin gene or interaction of myostatin protein with follistatin and other inhibitory proteins induce a hypermuscular phenotype in cattle and mice; this is assumed to result from inhibition of muscle cell proliferation and DNA and protein synthesis (antianabolic effects). Myostatin also controls muscle mass in other animals, and appears to affect adipose tissue mass. Recent findings New protein interactions inhibiting myostatin that lead to double muscling, as well as the induction of hypermuscularity with myostatin antibodies, or the generation of a myostatin conditional knockout mouse, have been reported. Conversely, a transgenic mouse over-expressing myostatin and exhibiting reduced muscle mass in a gender-specific process has been obtained. In addition, novel inactivating mutations in the myostatin gene and genetic loci regulating myostatin effects, and the characterization of the myostatin gene and its effects on metabolism in fish and chicken have been described. Finally, the regulation of myostatin levels by growth hormone, glucorticoids, anabolic agents, nutritional status and exercise, the characterization of myostatin signaling pathways, and the clarification of myostatin effects on cell replication and differentiation, are other important recent findings. Summary These studies suggest that proteins and drugs that inactivate myostatin, or interfere with its binding to its receptor, may be useful for the therapy of wasting and degenerative muscle diseases and for the food industry. Other promising approaches may derive from new insights into the biochemical cascade that mediates myostatin effects, and into the role of myostatin in the regulation of fat metabolism and of heart and muscle regeneration after injury.
引用
收藏
页码:451 / 457
页数:7
相关论文
共 74 条
[1]   Expression and neural control of follistatin versus myostatin genes during regeneration of mouse soleus [J].
Armand, AS ;
Della Gaspera, B ;
Launay, T ;
Charbonnier, F ;
Gallien, CL ;
Chanoine, C .
DEVELOPMENTAL DYNAMICS, 2003, 227 (02) :256-265
[2]   Endogenous expression and localization of myostatin and its relation to myosin heavy chain distribution in C2C12 skeletal muscle cells [J].
Artaza, JN ;
Bhasin, S ;
Mallidis, C ;
Taylor, W ;
Ma, K ;
Gonzalez-Cadavid, NF .
JOURNAL OF CELLULAR PHYSIOLOGY, 2002, 190 (02) :170-179
[3]   The influence of undernutrition during gestation on skeletal muscle cellularity and on the expression of genes that control muscle growth [J].
Bayol, S ;
Jones, D ;
Goldspink, G ;
Stickland, NC .
BRITISH JOURNAL OF NUTRITION, 2004, 91 (03) :331-339
[4]   Functional improvement of dystrophic muscle by myostatin blockade [J].
Bogdanovich, S ;
Krag, TOB ;
Barton, ER ;
Morris, LD ;
Whittemore, LA ;
Ahima, RS ;
Khurana, TS .
NATURE, 2002, 420 (6914) :418-421
[5]   Single and combined effects of growth hormone and testosterone administration on measures of body composition, physical performance, mood, sexual function, bone turnover, and muscle gene expression in healthy older men [J].
Brill, KT ;
Weltman, AL ;
Gentili, A ;
Patrie, JT ;
Fryburg, DA ;
Hanks, JB ;
Urban, RJ ;
Veldhuis, JD .
JOURNAL OF CLINICAL ENDOCRINOLOGY & METABOLISM, 2002, 87 (12) :5649-5657
[6]   Effect of refeeding on IGFI, IGFII, IGF receptors, FGF2, FGF6, and myostatin mRNA expression in rainbow trout myotomal muscle [J].
Chauvigné, F ;
Gabillard, JC ;
Weil, C ;
Rescan, PY .
GENERAL AND COMPARATIVE ENDOCRINOLOGY, 2003, 132 (02) :209-215
[7]   Haplotype diversity of the myostatin gene among beef cattle breeds [J].
Dunner, S ;
Miranda, ME ;
Amigues, Y ;
Cañón, J ;
Georges, M ;
Hanset, R ;
Williams, J ;
Ménissier, F .
GENETICS SELECTION EVOLUTION, 2003, 35 (01) :103-118
[8]   Organization of the human myostatin gene and expression in healthy men and HIV-infected men with muscle wasting [J].
Gonzalez-Cadavid, NF ;
Taylor, WE ;
Yarasheski, K ;
Sinha-Hikim, I ;
Ma, K ;
Ezzat, S ;
Shen, RQ ;
Lalani, R ;
Asa, S ;
Mamita, M ;
Nair, G ;
Arver, S ;
Bhasin, S .
PROCEEDINGS OF THE NATIONAL ACADEMY OF SCIENCES OF THE UNITED STATES OF AMERICA, 1998, 95 (25) :14938-14943
[9]   Modulating skeletal muscle mass by postnatal, muscle-specific inactivation of the myostatin gene [J].
Grobet, L ;
Pirottin, D ;
Farnir, F ;
Poncelet, D ;
Royo, LJ ;
Brouwers, B ;
Christians, E ;
Desmecht, D ;
Coignoul, F ;
Kahn, R ;
Georges, M .
GENESIS, 2003, 35 (04) :227-238
[10]   A deletion in the bovine myostatin gene causes the double-muscled phenotype in cattle [J].
Grobet, L ;
Martin, LJR ;
Poncelet, D ;
Pirottin, D ;
Brouwers, B ;
Riquet, J ;
Schoeberlein, A ;
Dunner, S ;
Menissier, F ;
Massabanda, J ;
Fries, R ;
Hanset, R ;
Georges, M .
NATURE GENETICS, 1997, 17 (01) :71-74