Literature DB >> 33278272

Polygenic Profile of Elite Strength Athletes.

Ethan Moreland1, Oleg V Borisov2,3, Ekaterina A Semenova2, Andrey K Larin2, Oleg N Andryushchenko4, Liliya B Andryushchenko5, Edward V Generozov2, Alun G Williams6,7, Ildus I Ahmetov1,5,8,9.   

Abstract

ABSTRACT: Moreland, E, Borisov, OV, Semenova, EA, Larin, AK, Andryushchenko, ON, Andryushchenko, LB, Generozov, EV, Williams, AG, and Ahmetov, II. Polygenic profile of elite strength athletes. J Strength Cond Res 36(9): 2509-2514, 2022-Strength is a heritable trait with unknown polygenic nature. So far, more than 200 DNA polymorphisms associated with strength/power phenotypes have been identified majorly involving nonathletic populations. The aim of the present study was to investigate individually and in combination the association of 217 DNA polymorphisms previously identified as markers for strength/power phenotypes with elite strength athlete status. A case-control study involved 83 Russian professional strength athletes (53 weightlifters, 30 powerlifters), 209 Russian and 503 European controls. Genotyping was conducted using micro-array analysis. Twenty-eight DNA polymorphisms (located near or in ABHD17C , ACTG1 , ADCY3 , ADPGK , ANGPT2 , ARPP21 , BCDIN3D , CRTAC1 , DHODH , GBE1 , IGF1 , IL6 , ITPR1 , KIF1B , LRPPRC , MMS22L , MTHFR , NPIPB6 , PHACTR1 , PLEKHB1 , PPARG , PPARGC1A , R3HDM1 , RASGRF1 , RMC1 , SLC39A8 , TFAP2D , ZKSCAN5 genes) were identified to have an association with strength athlete status. Next, to assess the combined impact of all 28 DNA polymorphisms, all athletes were classified according to the number of "strength" alleles they possessed. All highly elite strength athletes were carriers of at least 22 (up to 34) "strength" alleles, whereas 27.8% of Russian controls had less than 22 "strength" alleles ( p < 0.0001). The proportion of subjects with a high (≥26) number of "strength" alleles was significantly greater in highly elite strength athletes (84.8%) compared with less successful strength athletes (64.9%; odd ratio [OR] = 3.0, p = 0.042), Russian (26.3%; OR = 15.6, p < 0.0001) or European (37.8%; OR = 6.4, p < 0.0001) controls. This is the first study to demonstrate that the likelihood of becoming an elite strength athlete depends on the carriage of a high number of strength-related alleles.
Copyright © 2020 National Strength and Conditioning Association.

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Year:  2020        PMID: 33278272     DOI: 10.1519/JSC.0000000000003901

Source DB:  PubMed          Journal:  J Strength Cond Res        ISSN: 1064-8011            Impact factor:   4.415


  8 in total

1.  Responses to Maximal Strength Training in Different Age and Gender Groups.

Authors:  Hans Torvild Kittilsen; Sannija Goleva-Fjellet; Baard Ingegerdsson Freberg; Iver Nicolaisen; Eva Maria Støa; Solfrid Bratland-Sanda; Jan Helgerud; Eivind Wang; Mona Sæbø; Øyvind Støren
Journal:  Front Physiol       Date:  2021-02-17       Impact factor: 4.566

2.  Genomic predictors of testosterone levels are associated with muscle fiber size and strength.

Authors:  João Paulo L F Guilherme; Ekaterina A Semenova; Oleg V Borisov; Andrey K Larin; Ethan Moreland; Edward V Generozov; Ildus I Ahmetov
Journal:  Eur J Appl Physiol       Date:  2021-11-18       Impact factor: 3.078

3.  CKM Gene rs8111989 Polymorphism and Power Athlete Status.

Authors:  Valentina Ginevičienė; Audronė Jakaitienė; Algirdas Utkus; Elliott C R Hall; Ekaterina A Semenova; Liliya B Andryushchenko; Andrey K Larin; Ethan Moreland; Edward V Generozov; Ildus I Ahmetov
Journal:  Genes (Basel)       Date:  2021-09-25       Impact factor: 4.096

Review 4.  Perspectives in Sports Genomics.

Authors:  Valentina Ginevičienė; Algirdas Utkus; Erinija Pranckevičienė; Ekaterina A Semenova; Elliott C R Hall; Ildus I Ahmetov
Journal:  Biomedicines       Date:  2022-01-27

5.  DNA Methylation Analysis of Imprinted Genes in the Cortex and Hippocampus of Cross-Fostered Mice Selectively Bred for Increased Voluntary Wheel-Running.

Authors:  Sarah E Latchney; Marcell D Cadney; Austin Hopkins; Theodore Garland
Journal:  Behav Genet       Date:  2022-08-21       Impact factor: 2.965

6.  Genetic polymorphisms of muscular fitness in young healthy men.

Authors:  Tomas Venckunas; Hans Degens
Journal:  PLoS One       Date:  2022-09-27       Impact factor: 3.752

Review 7.  Genetics of long-distance runners and road cyclists-A systematic review with meta-analysis.

Authors:  Magdalena Johanna Konopka; Jorn Carlos Maria Leonardus van den Bunder; Gerard Rietjens; Billy Sperlich; Maurice Petrus Zeegers
Journal:  Scand J Med Sci Sports       Date:  2022-07-26       Impact factor: 4.645

8.  Genes and Weightlifting Performance.

Authors:  Naoki Kikuchi; Ethan Moreland; Hiroki Homma; Ekaterina A Semenova; Mika Saito; Andrey K Larin; Naoyuki Kobatake; Rinat A Yusupov; Takanobu Okamoto; Koichi Nakazato; Alun G Williams; Edward V Generozov; Ildus I Ahmetov
Journal:  Genes (Basel)       Date:  2021-12-23       Impact factor: 4.096

  8 in total

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