Genetic architecture of voluntary exercise in an advanced intercross line of mice

被引:49
作者
Kelly, Scott A. [1 ]
Nehrenberg, Derrick L. [1 ]
Peirce, Jeremy L. [2 ]
Hua, Kunjie [1 ]
Steffy, Brian M. [3 ]
Wiltshire, Tim [3 ]
de Villena, Fernando Pardo-Manuel [1 ]
Garland, Theodore, Jr. [4 ]
Pomp, Daniel [1 ,5 ,6 ]
机构
[1] Univ N Carolina, Dept Genet, Chapel Hill, NC 27599 USA
[2] Illumina Inc, San Diego, CA USA
[3] Univ N Carolina, Dept Pharmacotherapy & Expt Therapeut, Sch Pharm, Chapel Hill, NC 27599 USA
[4] Univ Calif Riverside, Dept Biol, Riverside, CA 92521 USA
[5] Univ N Carolina, Dept Nutr, Carolina Ctr Genome Sci, Chapel Hill, NC 27599 USA
[6] Univ N Carolina, Dept Cell & Mol Physiol, Carolina Ctr Genome Sci, Chapel Hill, NC 27599 USA
关键词
artificial selection; exercise physiology; Genome Reshuffling for Advanced Intercross Permutation (GRAIP); quantitative trait loci; voluntary wheel running; QUANTITATIVE TRAIT LOCI; WIDE LINKAGE SCAN; PHYSICAL-ACTIVITY; MINI-MUSCLE; BODY-COMPOSITION; COMPLEX TRAITS; HOUSE MICE; FUTURE USE; QTL; DISSECTION;
D O I
10.1152/physiolgenomics.00028.2010
中图分类号
Q2 [细胞生物学];
学科分类号
071009 ; 090102 ;
摘要
Kelly SA, Nehrenberg DL, Peirce JL, Hua K, Steffy BM, Wiltshire T, Pardo-Manuel de Villena F, Garland T Jr, Pomp D. Genetic architecture of voluntary exercise in an advanced intercross line of mice. Physiol Genomics 42: 190-200, 2010. First published April 13, 2010; doi: 10.1152/physiolgenomics.00028.2010.-Exercise is essential for health, yet the amount, duration, and intensity that individuals engage in are strikingly variable, even under prescription. Our focus was to identify the locations and effects of quantitative trait loci (QTL) controlling genetic predisposition for exercise-related traits, utilizing a large advanced intercross line (AIL) of mice. This AIL (G(4)) population originated from a reciprocal cross between mice with genetic propensity for increased voluntary exercise [high-runner (HR) line, selectively bred for increased wheel running] and the inbred strain C57BL/6J. After adjusting for family structure, we detected 32 significant and 13 suggestive QTL representing both daily running traits (distance, duration, average speed, and maximum speed) and the mean of these traits on days 5 and 6 (the selection criteria for HR) of a 6-day test conducted at 8 wk of age, with many colocalizing to similar genomic regions. Additionally, seven significant and five suggestive QTL were observed for the slope and intercept of a linear regression across all 6 days of running, some representing a combination of the daily traits. We also observed two significant and two suggestive QTL for body mass before exercise. These results, from a well-defined animal model, reinforce a genetic basis for the predisposition to engage in voluntary exercise, dissect this predisposition into daily segments across a continuous time period, and present unique QTL that may provide insight into the initiation, continuation, and temporal pattern of voluntary activity in mammals.
引用
收藏
页码:190 / 200
页数:11
相关论文
共 72 条
[11]   Eating, exercise, and "thrifty" genotypes: connecting the dots toward an evolutionary understanding of modern chronic diseases [J].
Chakravarthy, MV ;
Booth, FW .
JOURNAL OF APPLIED PHYSIOLOGY, 2004, 96 (01) :3-10
[12]   When will we treat physical activity as a legitimate medical therapy ... even though it does not come in a pill? [J].
Church, Timothy S. ;
Blair, Steven N. .
BRITISH JOURNAL OF SPORTS MEDICINE, 2009, 43 (02) :80-81
[13]   The Collaborative Cross, a community resource for the genetic analysis of complex traits [J].
Churchill, G ;
Airey, DC ;
Allayee, H ;
Angel, JM ;
Attie, AD ;
Beatty, J ;
Beavis, WD ;
Belknap, JK ;
Bennett, B ;
Berrettini, W ;
Bleich, A ;
Bogue, M ;
Broman, KW ;
Buck, KJ ;
Buckler, E ;
Burmeister, M ;
Chesler, EJ ;
Cheverud, JM ;
Clapcote, S ;
Cook, MN ;
Cox, RD ;
Crabbe, JC ;
Crusio, WE ;
Darvasi, A ;
Deschnepper, CF ;
Doerge, RW ;
Farber, CR ;
Forejt, J ;
Gaile, D ;
Garlow, SJ ;
Geiger, H ;
Gershenfeld, H ;
Gordon, T ;
Gu, J ;
Gu, WK ;
de Haan, G ;
Hayes, NL ;
Heller, C ;
Himmelbauer, H ;
Hitzemann, R ;
Hunter, K ;
Hsu, HC ;
Iraqi, FA ;
Ivandic, B ;
Jacob, HJ ;
Jansen, RC ;
Jjepsen, KJ ;
Johnson, DK ;
Johnson, TE ;
Kempermann, G .
NATURE GENETICS, 2004, 36 (11) :1133-1137
[14]   A New Standard Genetic Map for the Laboratory Mouse [J].
Cox, Allison ;
Ackert-Bicknell, Cheryl L. ;
Dumont, Beth L. ;
Ding, Yueming ;
Bell, Jordana Tzenova ;
Brockmann, Gudrun A. ;
Wergedal, Jon E. ;
Bult, Carol ;
Paigen, Beverly ;
Flint, Jonathan ;
Tsaih, Shirng-Wern ;
Churchill, Gary A. ;
Broman, Karl W. .
GENETICS, 2009, 182 (04) :1335-1344
[15]   Multiple comparisons: philosophies and illustrations [J].
Curran-Everett, D .
AMERICAN JOURNAL OF PHYSIOLOGY-REGULATORY INTEGRATIVE AND COMPARATIVE PHYSIOLOGY, 2000, 279 (01) :R1-R8
[16]  
DARVASI A, 1995, GENETICS, V141, P1199
[17]   Experimental strategies for the genetic dissection of complex traits in animal models [J].
Darvasi, A .
NATURE GENETICS, 1998, 18 (01) :19-24
[18]   Two new behavioral QTLs, Emo4 and Reb1, map to mouse Chromosome 1:: Congenic strains and candidate gene identification studies [J].
de Ledesma, AMR ;
Desai, AN ;
Bolivar, VJ ;
Symula, DJ ;
Flaherty, L .
MAMMALIAN GENOME, 2006, 17 (02) :111-118
[19]   Genome-wide linkage scan for exercise participation in Dutch sibling pairs [J].
De Moor, Marleen Hm ;
Posthuma, Danielle ;
Hottenga, Jouke-Jan ;
Willemsen, Gonneke ;
Boomsma, Dorret I. ;
De Geus, Eco J. C. .
EUROPEAN JOURNAL OF HUMAN GENETICS, 2007, 15 (12) :1252-1259
[20]   How animals move: An integrative view [J].
Dickinson, MH ;
Farley, CT ;
Full, RJ ;
Koehl, MAR ;
Kram, R ;
Lehman, S .
SCIENCE, 2000, 288 (5463) :100-106