Loss of ACTN3 gene function alters mouse muscle metabolism and shows evidence of positive selection in humans

被引:243
作者
MacArthur, Daniel G.
Seto, Jane T.
Raftery, Joanna M.
Quinlan, Kate G.
Huttley, Gavin A.
Hook, Jeff W.
Lemckert, Frances A.
Kee, Anthony J.
Edwards, Michael R.
Berman, Yemima
Hardeman, Edna C.
Gunning, Peter W.
Easteal, Simon
Yang, Nan
North, Kathryn N. [1 ]
机构
[1] Childrens Hosp Westmead, Inst Neuromascular Res, Sydney, NSW 2145, Australia
[2] Univ Sydney, Fac Med, Discipline Paediatric & Child Hlth, Sydney, NSW 2006, Australia
[3] Australian Natl Univ, John Curtin Sch Med Res, Canberra, ACT 0200, Australia
[4] Childrens Hosp Westmead, Oncol Res Unit, Sydney, NSW 2145, Australia
[5] Childrens Med Res Inst, Muscle Dev Unit, Sydney, NSW 2145, Australia
[6] Univ New S Wales, Sydney, NSW 2052, Australia
基金
英国医学研究理事会;
关键词
D O I
10.1038/ng2122
中图分类号
Q3 [遗传学];
学科分类号
071007 ; 090102 ;
摘要
More than a billion humans worldwide are predicted to be completely deficient in the fast skeletal muscle fiber protein alpha-actinin-3 owing to homozygosity for a premature stop codon polymorphism, R577X, in the ACTN3 gene. The R577X polymorphism is associated with elite athlete status and human muscle performance, suggesting that alpha-actinin-3 deficiency influences the function of fast muscle fibers. Here we show that loss of alpha-actinin-3 expression in a knockout mouse model results in a shift in muscle metabolism toward the more efficient aerobic pathway and an increase in intrinsic endurance performance. In addition, we demonstrate that the genomic region surrounding the 577X null allele shows low levels of genetic variation and recombination in individuals of European and East Asian descent, consistent with strong, recent positive selection. We propose that the 577X allele has been positively selected in some human populations owing to its effect on skeletal muscle metabolism.
引用
收藏
页码:1261 / 1265
页数:5
相关论文
共 16 条
[1]   ACTN3 genotype is associated with increases in muscle strength in response to resistance training in women [J].
Clarkson, PM ;
Devaney, JM ;
Gordish-Dressman, H ;
Thompson, PD ;
Hubal, MJ ;
Urso, M ;
Price, TB ;
Angelopoulos, TJ ;
Gordon, PM ;
Moyna, NM ;
Pescatello, LS ;
Visich, PS ;
Zoeller, RF ;
Seip, RL ;
Hoffman, EP .
JOURNAL OF APPLIED PHYSIOLOGY, 2005, 99 (01) :154-163
[2]   Single section Western blot - Improving the molecular diagnosis of the muscular dystrophies [J].
Cooper, ST ;
Lo, HP ;
North, KN .
NEUROLOGY, 2003, 61 (01) :93-97
[3]   The International HapMap Project [J].
Gibbs, RA ;
Belmont, JW ;
Hardenbol, P ;
Willis, TD ;
Yu, FL ;
Yang, HM ;
Ch'ang, LY ;
Huang, W ;
Liu, B ;
Shen, Y ;
Tam, PKH ;
Tsui, LC ;
Waye, MMY ;
Wong, JTF ;
Zeng, CQ ;
Zhang, QR ;
Chee, MS ;
Galver, LM ;
Kruglyak, S ;
Murray, SS ;
Oliphant, AR ;
Montpetit, A ;
Hudson, TJ ;
Chagnon, F ;
Ferretti, V ;
Leboeuf, M ;
Phillips, MS ;
Verner, A ;
Kwok, PY ;
Duan, SH ;
Lind, DL ;
Miller, RD ;
Rice, JP ;
Saccone, NL ;
Taillon-Miller, P ;
Xiao, M ;
Nakamura, Y ;
Sekine, A ;
Sorimachi, K ;
Tanaka, T ;
Tanaka, Y ;
Tsunoda, T ;
Yoshino, E ;
Bentley, DR ;
Deloukas, P ;
Hunt, S ;
Powell, D ;
Altshuler, D ;
Gabriel, SB ;
Qiu, RZ .
NATURE, 2003, 426 (6968) :789-796
[4]   Deficiency of the syntrophins and α-dystrobrevin in patients with inherited myopathy [J].
Jones, KJ ;
Compton, AG ;
Yang, N ;
Mills, MA ;
Peters, MF ;
Mowat, D ;
Kunkel, LM ;
Froehner, SC ;
North, KN .
NEUROMUSCULAR DISORDERS, 2003, 13 (06) :456-467
[5]   PyCogent: a toolkit for making sense from sequence [J].
Knight, Rob ;
Maxwell, Peter ;
Birmingham, Amanda ;
Carnes, Jason ;
Caporaso, J. Gregory ;
Easton, Brett C. ;
Eaton, Michael ;
Hamady, Micah ;
Lindsay, Helen ;
Liu, Zongzhi ;
Lozupone, Catherine ;
McDonald, Daniel ;
Robeson, Michael ;
Sammut, Raymond ;
Smit, Sandra ;
Wakefield, Matthew J. ;
Widmann, Jeremy ;
Wikman, Shandy ;
Wilson, Stephanie ;
Ying, Hua ;
Huttley, Gavin A. .
GENOME BIOLOGY, 2007, 8 (08)
[6]   Artificial selection for intrinsic aerobic endurance running capacity in rats [J].
Koch, LG ;
Britton, SL .
PHYSIOLOGICAL GENOMICS, 2001, 5 (01) :45-52
[7]   A high-resolution recombination map of the human genome [J].
Kong, A ;
Gudbjartsson, DF ;
Sainz, J ;
Jonsdottir, GM ;
Gudjonsson, SA ;
Richardsson, B ;
Sigurdardottir, S ;
Barnard, J ;
Hallbeck, B ;
Masson, G ;
Shlien, A ;
Palsson, ST ;
Frigge, ML ;
Thorgeirsson, TE ;
Gulcher, JR ;
Stefansson, K .
NATURE GENETICS, 2002, 31 (03) :241-247
[8]   Differential expression of the actin-binding proteins, α-actinin-2 and-3, in different species:: implications for the evolution of functional redundancy [J].
Mills, MA ;
Yang, N ;
Weinberger, RP ;
Vander Woude, DL ;
Beggs, AH ;
Easteal, S ;
North, KN .
HUMAN MOLECULAR GENETICS, 2001, 10 (13) :1335-1346
[9]   Association analysis of the ACTN3 R577X polymorphism and complex quantitative body composition and performance phenotypes in adolescent Greeks [J].
Moran, Colin N. ;
Yang, Nan ;
Bailey, Mark E. S. ;
Tsiokanos, Athanasios ;
Jamurtas, Athanasios ;
MacArthur, Daniel G. ;
North, Kathryn ;
Pitsiladis, Yannis P. ;
Wilson, Richard H. .
EUROPEAN JOURNAL OF HUMAN GENETICS, 2007, 15 (01) :88-93
[10]   Mitochondrial DNA and ACTN3 genotypes in Finnish elite endurance and sprint athletes [J].
Niemi, AK ;
Majamaa, K .
EUROPEAN JOURNAL OF HUMAN GENETICS, 2005, 13 (08) :965-969