Literature DB >> 29706347

The Effect of ACTN3 Gene Doping on Skeletal Muscle Performance.

Fleur C Garton1, Peter J Houweling2, Damjan Vukcevic3, Lyra R Meehan4, Fiona X Z Lee5, Monkol Lek6, Kelly N Roeszler2, Marshall W Hogarth7, Chrystal F Tiong4, Diana Zannino2, Nan Yang7, Stephen Leslie3, Paul Gregorevic8, Stewart I Head9, Jane T Seto2, Kathryn N North10.   

Abstract

Loss of expression of ACTN3, due to homozygosity of the common null polymorphism (p.Arg577X), is underrepresented in elite sprint/power athletes and has been associated with reduced muscle mass and strength in humans and mice. To investigate ACTN3 gene dosage in performance and whether expression could enhance muscle force, we performed meta-analysis and expression studies. Our general meta-analysis using a Bayesian random effects model in elite sprint/power athlete cohorts demonstrated a consistent homozygous-group effect across studies (per allele OR = 1.4, 95% CI 1.3-1.6) but substantial heterogeneity in heterozygotes. In mouse muscle, rAAV-mediated gene transfer overexpressed and rescued α-actinin-3 expression. Contrary to expectation, in vivo "doping" of ACTN3 at low to moderate doses demonstrated an absence of any change in function. At high doses, ACTN3 is toxic and detrimental to force generation, to demonstrate gene doping with supposedly performance-enhancing isoforms of sarcomeric proteins can be detrimental for muscle function. Restoration of α-actinin-3 did not enhance muscle mass but highlighted the primary role of α-actinin-3 in modulating muscle metabolism with altered fatiguability. This is the first study to express a Z-disk protein in healthy skeletal muscle and measure the in vivo effect. The sensitive balance of the sarcomeric proteins and muscle function has relevant implications in areas of gene doping in performance and therapy for neuromuscular disease.
Copyright © 2018 American Society of Human Genetics. Published by Elsevier Inc. All rights reserved.

Entities:  

Keywords:  ACTN3; Z-disk; Z-line; actinin-3; alpha actinin 3; fast fibers; gene doping; muscle; rAAV; skeletal muscle

Mesh:

Substances:

Year:  2018        PMID: 29706347      PMCID: PMC5986729          DOI: 10.1016/j.ajhg.2018.03.009

Source DB:  PubMed          Journal:  Am J Hum Genet        ISSN: 0002-9297            Impact factor:   11.025


  53 in total

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Authors:  K M Kegley; J Gephart; G L Warren; G K Pavlath
Journal:  Dev Biol       Date:  2001-04-01       Impact factor: 3.582

Review 2.  The biochemistry of aging muscle.

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3.  The ACTN3 gene in elite Greek track and field athletes.

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4.  Meta-analysis of the heritability of human traits based on fifty years of twin studies.

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5.  α-Actinin-3 deficiency alters muscle adaptation in response to denervation and immobilization.

Authors:  F C Garton; J T Seto; K G R Quinlan; N Yang; P J Houweling; K N North
Journal:  Hum Mol Genet       Date:  2013-11-13       Impact factor: 6.150

Review 6.  Genes for elite power and sprint performance: ACTN3 leads the way.

Authors:  Nir Eynon; Erik D Hanson; Alejandro Lucia; Peter J Houweling; Fleur Garton; Kathryn N North; David J Bishop
Journal:  Sports Med       Date:  2013-09       Impact factor: 11.136

7.  Association of the ACTN3 R577X polymorphism with power athlete status in Russians.

Authors:  Anastasiya M Druzhevskaya; Ildus I Ahmetov; Irina V Astratenkova; Viktor A Rogozkin
Journal:  Eur J Appl Physiol       Date:  2008-05-10       Impact factor: 3.078

8.  ACTN3 (R577X) genotype is associated with fiber type distribution.

Authors:  Barbara Vincent; Katrien De Bock; Monique Ramaekers; Els Van den Eede; Marc Van Leemputte; Peter Hespel; Martine A Thomis
Journal:  Physiol Genomics       Date:  2007-09-11       Impact factor: 3.107

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Authors:  Thomas Burgoyne; Edward P Morris; Pradeep K Luther
Journal:  J Mol Biol       Date:  2015-09-08       Impact factor: 5.469

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  9 in total

1.  Loss of α-actinin-3 confers protection from eccentric contraction damage in fast-twitch EDL muscles from aged mdx dystrophic mice by reducing pathological fibre branching.

Authors:  Leonit Kiriaev; Peter J Houweling; Kathryn N North; Stewart I Head
Journal:  Hum Mol Genet       Date:  2022-05-04       Impact factor: 5.121

2.  Maintenance of type 2 glycolytic myofibers with age by Mib1-Actn3 axis.

Authors:  Ji-Yun Seo; Jong-Seol Kang; Ye Lynne Kim; Young-Woo Jo; Ji-Hoon Kim; Sang-Hyeon Hann; Jieon Park; Inkuk Park; Hyerim Park; Kyusang Yoo; Joonwoo Rhee; Jung-Wee Park; Yong Chan Ha; Young-Yun Kong
Journal:  Nat Commun       Date:  2021-02-26       Impact factor: 14.919

3.  Association of the ACTN3 R577X (rs1815739) polymorphism with elite power sports: A meta-analysis.

Authors:  Phuntila Tharabenjasin; Noel Pabalan; Hamdi Jarjanazi
Journal:  PLoS One       Date:  2019-05-30       Impact factor: 3.240

4.  Pilot Study on Genetic Associations With Age-Related Sarcopenia.

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Journal:  Front Genet       Date:  2021-01-11       Impact factor: 4.599

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Authors:  Tian-Ji Ji; Bei Feng; Jie Shen; Min Zhang; Yu-Qing Hu; Ai-Xia Jiang; Di-Qi Zhu; Yi-Wei Chen; Wei Ji; Zhen Zhang; Hao Zhang; Fen Li
Journal:  Adv Sci (Weinh)       Date:  2021-08-28       Impact factor: 16.806

Review 6.  Ubiquitin Ligases in Longevity and Aging Skeletal Muscle.

Authors:  David C Hughes; Leslie M Baehr; David S Waddell; Adam P Sharples; Sue C Bodine
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7.  What Decides Your Athletic Career?-Reflection from Our Study of GP.Mur-Associated Sports Talents during the COVID-19 Pandemic Era.

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8.  Screening for gene doping transgenes in horses via the use of massively parallel sequencing.

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Journal:  Gene Ther       Date:  2021-07-19       Impact factor: 5.250

9.  Evaluating modified diets and dietary supplement therapies for reducing muscle lipid accumulation and improving muscle function in neurofibromatosis type 1 (NF1).

Authors:  Emily R Vasiljevski; Peter J Houweling; Thusitha Rupasinghe; Tarneet Kaur; Matthew A Summers; Ute Roessner; David G Little; Aaron Schindeler
Journal:  PLoS One       Date:  2020-08-10       Impact factor: 3.240

  9 in total

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