Literature DB >> 18534999

An epistatic genetic basis for physical activity traits in mice.

Larry J Leamy1, Daniel Pomp, J Timothy Lightfoot.   

Abstract

We recently identified several (4-8) quantitative trait loci (QTL) for 3 physical activity traits (daily distance, duration, and speed voluntarily run) in an F(2) population of mice derived from an original intercross of 2 strains that exhibited large differences in activity. These QTL cumulatively explained from 11% to 34% of the variation in these traits, but this was considerably less than their total genetic variability estimated from differences among inbred strains. We therefore decided to test whether epistatic interactions might account for additional genetic variation in these traits in this same population of mice. We conducted a full genome epistasis scan for all possible interactions of QTL between each pair of 20 chromosomes. The results of this scan revealed an abundance of epistasis, with QTL throughout the genome being involved in significant interactions. Overall, epistatic effects contributed an average of 26% of the total variation among the 3 activity traits. These results suggest that epistatic interactions of genes may play as important a role in the genetic architecture of physical activity traits as single-locus effects and need to be considered in future candidate gene identification studies.

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Year:  2008        PMID: 18534999      PMCID: PMC2574643          DOI: 10.1093/jhered/esn045

Source DB:  PubMed          Journal:  J Hered        ISSN: 0022-1503            Impact factor:   2.645


  26 in total

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Authors:  Larry J Leamy; Eric J Routman; James M Cheverud
Journal:  Evolution       Date:  2002-03       Impact factor: 3.694

3.  Analysis of quantitative trait locus effects on the size and shape of mandibular molars in mice.

Authors:  Michael Scott Workman; Larry J Leamy; Eric J Routman; James M Cheverud
Journal:  Genetics       Date:  2002-04       Impact factor: 4.562

4.  Effects of voluntary activity and genetic selection on muscle metabolic capacities in house mice Mus domesticus.

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5.  Familial aggregation of physical activity levels in the Québec Family Study.

Authors:  Riita L Simonen; Louis Perusse; Tuomo Rankinen; Treva Rice; D C Rao; Claude Bouchard
Journal:  Med Sci Sports Exerc       Date:  2002-07       Impact factor: 5.411

6.  Genetic architecture of mandible shape in mice: effects of quantitative trait loci analyzed by geometric morphometrics.

Authors:  C P Klingenberg; L J Leamy; E J Routman; J M Cheverud
Journal:  Genetics       Date:  2001-02       Impact factor: 4.562

7.  Quantitative trait loci for maternal performance for offspring survival in mice.

Authors:  Andréa C Peripato; Reinaldo A De Brito; Ty T Vaughn; L Susan Pletscher; Sergio R Matioli; James M Cheverud
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8.  Genetic variability in forced and voluntary endurance exercise performance in seven inbred mouse strains.

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9.  Genetic architecture of adiposity in the cross of LG/J and SM/J inbred mice.

Authors:  J M Cheverud; T T Vaughn; L S Pletscher; A C Peripato; E S Adams; C F Erikson; K J King-Ellison
Journal:  Mamm Genome       Date:  2001-01       Impact factor: 2.957

10.  A dopamine D2 receptor gene polymorphism and physical activity in two family studies.

Authors:  Riitta L Simonen; Tuomo Rankinen; Louis Pérusse; Arthur S Leon; James S Skinner; Jack H Wilmore; D C Rao; Claude Bouchard
Journal:  Physiol Behav       Date:  2003-04
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  25 in total

1.  Strain screen and haplotype association mapping of wheel running in inbred mouse strains.

Authors:  J Timothy Lightfoot; Larry Leamy; Daniel Pomp; Michael J Turner; Anthony A Fodor; Amy Knab; Robert S Bowen; David Ferguson; Trudy Moore-Harrison; Alicia Hamilton
Journal:  J Appl Physiol (1985)       Date:  2010-06-10

Review 2.  Driven to be inactive? The genetics of physical activity.

Authors:  Trudy Moore-Harrison; J Timothy Lightfoot
Journal:  Prog Mol Biol Transl Sci       Date:  2010       Impact factor: 3.622

3.  Parent-of-origin effects on voluntary exercise levels and body composition in mice.

Authors:  Scott A Kelly; Derrick L Nehrenberg; Kunjie Hua; Ryan R Gordon; Theodore Garland; Daniel Pomp
Journal:  Physiol Genomics       Date:  2009-11-10       Impact factor: 3.107

4.  Current understanding of the genetic basis for physical activity.

Authors:  J Timothy Lightfoot
Journal:  J Nutr       Date:  2011-01-26       Impact factor: 4.798

5.  Pharmacological manipulation of the dopaminergic system affects wheel-running activity in differentially active mice.

Authors:  A M Knab; R S Bowen; A T Hamilton; J T Lightfoot
Journal:  J Biol Regul Homeost Agents       Date:  2012 Jan-Mar       Impact factor: 1.711

6.  Differential skeletal muscle proteome of high- and low-active mice.

Authors:  David P Ferguson; Lawrence J Dangott; Emily E Schmitt; Heather L Vellers; J Timothy Lightfoot
Journal:  J Appl Physiol (1985)       Date:  2014-02-06

7.  Genetic variation for body weight change in mice in response to physical exercise.

Authors:  Larry J Leamy; Daniel Pomp; J Timothy Lightfoot
Journal:  BMC Genet       Date:  2009-09-21       Impact factor: 2.797

Review 8.  Does the difference between physically active and couch potato lie in the dopamine system?

Authors:  Amy M Knab; J Timothy Lightfoot
Journal:  Int J Biol Sci       Date:  2010-03-09       Impact factor: 6.580

9.  Effects of Aromatase Inhibition on the Physical Activity Levels of Male Mice.

Authors:  Robert S Bowen; David P Ferguson; J Timothy Lightfoot
Journal:  J Steroids Horm Sci       Date:  2011-11-25

10.  Genetic variation in the pleiotropic association between physical activity and body weight in mice.

Authors:  Larry J Leamy; Daniel Pomp; J Timothy Lightfoot
Journal:  Genet Sel Evol       Date:  2009-09-23       Impact factor: 4.297

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