Int J Sports Med 2021; 42(09): 803-811
DOI: 10.1055/a-1308-3674
Training & Testing

Does Performing Different Resistance Exercises for the Same Muscle Group Induce Non-homogeneous Hypertrophy?

1   Metabolism, Nutrition and Exercise Laboratory, Physical Education and Sport Center, Londrina State University, Londrina, Brazil
,
1   Metabolism, Nutrition and Exercise Laboratory, Physical Education and Sport Center, Londrina State University, Londrina, Brazil
,
1   Metabolism, Nutrition and Exercise Laboratory, Physical Education and Sport Center, Londrina State University, Londrina, Brazil
,
Gabriel Kunevaliki
1   Metabolism, Nutrition and Exercise Laboratory, Physical Education and Sport Center, Londrina State University, Londrina, Brazil
,
Pâmela Castro-E-Souza
1   Metabolism, Nutrition and Exercise Laboratory, Physical Education and Sport Center, Londrina State University, Londrina, Brazil
,
Andre Rodacki
2   Department of Physical Education, Federal University of Paraná, Curitiba, Brazil
,
Letícia Trindade Cyrino
1   Metabolism, Nutrition and Exercise Laboratory, Physical Education and Sport Center, Londrina State University, Londrina, Brazil
,
1   Metabolism, Nutrition and Exercise Laboratory, Physical Education and Sport Center, Londrina State University, Londrina, Brazil
,
Leonardo de Sousa Fortes
3   Department of Physical Education, Federal University of Paraíba, João Pessoa, Brazil
› Author Affiliations
Funding: This study was partially supported by the Pernambuco Science and Technology Foundation (FACEPE).

Abstract

The study aimed to compare the effect of performing the same or different exercises for a muscle group on resistance training (RT) sessions on muscle hypertrophy at different sites along muscle length. Twenty-two detrained men (23.3±4.1 years) were randomly allocated to the following groups: a group that performed the same exercises in all training sessions (N-VAR=11) or one that varied the exercises for the same muscle groups (VAR=11). All were submitted to 3 weekly sessions for nine weeks. Muscle thickness was assessed at the proximal, middle, and distal sites of the lateral and anterior thigh, elbow flexors, and extensors by B-mode ultrasound. The VAR group significantly increased all the sites analyzed (P<0.05). Furthermore, the proximal site of the lateral thigh showed a larger relative increase when compared to the middle site (P<0.05). In contrast, the N-VAR group were not revealed significant improvements only for the middle site of the lateral thigh and the proximal site of the elbow flexors (P>0.05). Our results suggest that to perform different resistance exercises can induce hypertrophy of all sites assessed in detrained young men.



Publication History

Received: 27 July 2020

Accepted: 04 November 2020

Article published online:
13 January 2021

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  • References

  • 1 Schoenfeld BJ, Contreras B, Krieger J. et al. Resistance training volume enhances muscle hypertrophy but not strength in trained men. Med Sci Sports Exerc 2019; 51: 94-103
  • 2 Dinyer TK, Byrd MT, Rickard AJ. et al. Low load vs. high load resistance training to failure on one repetition maximum strength and body composition in untrained women. J Strength Cond Res 2019; 33: 1737-1744
  • 3 Zaroni RS, Brigatto FA, Schoenfeld BJ. et al. High resistance-training frequency enhances muscle thickness in resistance-trained men. J Strength Cond Res 2019; 33: 140-151
  • 4 Fonseca RM, Roschel H, Tricoli V. et al. Changes in exercises are more effective than in loading schemes to improve muscle strength. J Strength Cond Res 2014; 28: 3085-3092
  • 5 American College of Sports Medicine. American College of Sports Medicine position stand. Progression models in resistance training for healthy adults. Med Sci Sports Exerc 2009; 41: 687-708
  • 6 Nunes JP, Costa BDV, Kassiano W. et al. Different foot positioning during calf training to induce portion-specific gastrocnemius muscle hypertrophy. J Strength Cond Res 2020; 34: 2347-2351
  • 7 Earp JE, Newton RU, Cormie P. et al. Inhomogeneous quadriceps femoris hypertrophy in response to strength and power training. Med Sci Sports Exerc 2015; 47: 2389-2397
  • 8 Ema R, Wakahara T, Miyamoto N. et al. Inhomogeneous architectural changes of the quadriceps femoris induced by resistance training. Eur J Appl Physiol 2013; 113: 2691-2703
  • 9 Wakahara T, Fukutani A, Kawakami Y. et al. Nonuniform muscle hypertrophy: its relation to muscle activation in training session. Med Sci Sports Exerc 2013; 45: 2158-2165
  • 10 Wakahara T, Miyamoto N, Sugisaki N. et al. Association between regional differences in muscle activation in one session of resistance exercise and in muscle hypertrophy after resistance training. Eur J Appl Physiol 2012; 112: 1569-1576
  • 11 Narici MV, Hoppeler H, Kayser B. et al. Human quadriceps cross-sectional area, torque and neural activation during 6 months strength training. Acta Physiol Scand 1996; 157: 175-186
  • 12 Signorile JF, Zink AJ, Szwed SP. A comparative electromyographical investigation of muscle utilization patterns using various hand positions during the lat pull-down. J Strength Cond Res 2002; 16: 539-546
  • 13 Finni T, Havu M, Sinha S. et al. Mechanical behavior of the quadriceps femoris muscle tendon unit during low-load contractions. J Appl Physiol (1985) 2008; 104: 1320-1328
  • 14 Barakat C, Barroso R, Alvarez M. et al. The effects of varying glenohumeral joint angle on acute volume load, muscle activation, swelling, and echo-intensity on the biceps brachii in resistance-trained individuals. Sports (Basel) 2019; 7: 204
  • 15 Baz-Valle E, Schoenfeld BJ, Torres-Unda J. et al. The effects of exercise variation in muscle thickness, maximal strength and motivation in resistance trained men. PLoS One 2019; 14: e0226989
  • 16 Harriss DJ, MacSween A, Atkinson G. Ethical standards in sport and exercise science research: 2020 update. Int J Sports Med 2019; 40: 813-817
  • 17 Schoenfeld BJ, Contreras B, Ogborn D. et al. Effects of varied versus constant loading zones on muscular adaptations in trained men. Int J Sports Med 2016; 37: 442-447
  • 18 Matta TT, Simão R, de Salles BF. et al. Strength training’s chronic effects on muscle architecture parameters of different arm sites. J Strength Cond Res 2011; 25: 1711-1717
  • 19 Ribeiro AS, Aguiar AF, Schoenfeld BJ. et al. Effects of different resistance training systems on muscular strength and hypertrophy in resistance-trained older women. J Strength Cond Res 2018; 32: 545-553
  • 20 Cohen J. A power primer. Psychol Bull 1992; 112: 155-159
  • 21 Weir JP. Quantifying test-retest reliability using the intraclass correlation coefficient and the SEM. J Strength Cond Res 2005; 19: 231-240
  • 22 Kubo K, Ikebukuro T, Yata H. Effects of squat training with different depths on lower limb muscle volumes. Eur J Appl Physiol 2019; 119: 1933-1942
  • 23 Schoenfeld BJ. Accentuating muscular development through active insufficiency and passive tension. Strength Cond J 2002; 24: 20-22
  • 24 Lieber RL, Ward SR. Skeletal muscle design to meet functional demands. Philos Trans R Soc Lond B Biol Sci 2011; 366: 1466-1476
  • 25 Nosaka K, Sakamoto K. Effect of elbow joint angle on the magnitude of muscle damage to the elbow flexors. Med Sci Sports Exerc 2001; 33: 22-29
  • 26 Oliveira LF, Matta TT, Alves DS. et al. Effect of the shoulder position on the biceps brachii EMG in different dumbbell curls. J Sports Sci Med 2009; 8: 24-29
  • 27 Krevolin JL, Pandy MG, Pearce JC. Moment arm of the patellar tendon in the human knee. J Biomech 2004; 37: 785-788
  • 28 Mazzetti SA, Kraemer WJ, Volek JS. et al. The influence of direct supervision of resistance training on strength performance. Med Sci Sports Exerc 2000; 32: 1175-1184