Core Endurance Relationships With Athletic and Functional Performance in Inactive People

Research regarding the relationship between core muscle endurance and performance is limited. The purpose of this study was to analyze the association between core/trunk endurance and athletic performance. Seventy-four healthy participants between 18 and 45 years old participated in this study (Age:...

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Published inFrontiers in physiology Vol. 10; p. 1490
Main Authors Santos, Marta Silva, Behm, David G, Barbado, David, DeSantana, Josimari Melo, Da Silva-Grigoletto, Marzo Edir
Format Journal Article
LanguageEnglish
Published Switzerland Frontiers Media S.A 18.12.2019
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Abstract Research regarding the relationship between core muscle endurance and performance is limited. The purpose of this study was to analyze the association between core/trunk endurance and athletic performance. Seventy-four healthy participants between 18 and 45 years old participated in this study (Age: 26.0 ± 6.5 years; Mass: 74.6 ± 12.8 kg; Height: 1.74 ± 0.08 m; BMI: 19.0 ± 6.8 kg/m ). The core endurance was measured using the McGill protocol, consisting of the following tests: trunk flexion, back extension, and side-bridge. Functional performance was evaluated with push-ups, sit to stand, T-run test, countermovement jump (CMJ), Yo-Yo test, maximum dynamic strength-one repetition maximum (1RM) and muscle power on the bench press, pull row, and leg press. The regression results between the McGill protocol (proxy for core/trunk endurance) and the dependent variables were: 1RM pull row: = 0.109 with = 0.046; RM bench press: = 0.149 with = 0.012; RM leg press: = 0.144 with = 0.013 and power pull row: = 0.151 with = 0.016; power bench press: = 0.136 with = 0.026; power leg press: = 0.122 with = 0.013), push-ups: = 0.157 with < 0.001, sit to stand: = 0.198 with < 0,001), functional movement score: = 0.209 with < 0.001). Nevertheless, core endurance scores were not able to predict jump ability ( = 0.014, = 0.807) or agility ( -test: 0.036 with = 0.497). In conclusion, core endurance exerted no significant influence the agility and jump performance but influenced the ability to run intermittently, exert maximum power and strength in different actions (push, pull, and lift exercises) related to the better quality of movement (FMS).
AbstractList Research regarding the relationship between core muscle endurance and performance is limited. The purpose of this study was to analyze the association between core/trunk endurance and athletic performance. Seventy-four healthy participants between 18 and 45 years old participated in this study (Age: 26.0 ± 6.5 years; Mass: 74.6 ± 12.8 kg; Height: 1.74 ± 0.08 m; BMI: 19.0 ± 6.8 kg/m ). The core endurance was measured using the McGill protocol, consisting of the following tests: trunk flexion, back extension, and side-bridge. Functional performance was evaluated with push-ups, sit to stand, T-run test, countermovement jump (CMJ), Yo-Yo test, maximum dynamic strength-one repetition maximum (1RM) and muscle power on the bench press, pull row, and leg press. The regression results between the McGill protocol (proxy for core/trunk endurance) and the dependent variables were: 1RM pull row: = 0.109 with = 0.046; RM bench press: = 0.149 with = 0.012; RM leg press: = 0.144 with = 0.013 and power pull row: = 0.151 with = 0.016; power bench press: = 0.136 with = 0.026; power leg press: = 0.122 with = 0.013), push-ups: = 0.157 with < 0.001, sit to stand: = 0.198 with < 0,001), functional movement score: = 0.209 with < 0.001). Nevertheless, core endurance scores were not able to predict jump ability ( = 0.014, = 0.807) or agility ( -test: 0.036 with = 0.497). In conclusion, core endurance exerted no significant influence the agility and jump performance but influenced the ability to run intermittently, exert maximum power and strength in different actions (push, pull, and lift exercises) related to the better quality of movement (FMS).
Research regarding the relationship between core muscle endurance and performance is limited. The purpose of this study was to analyze the association between core/trunk endurance and athletic performance. Seventy-four healthy participants between 18 and 45 years old participated in this study (Age: 26.0 ± 6.5 years; Mass: 74.6 ± 12.8 kg; Height: 1.74 ± 0.08 m; BMI: 19.0 ± 6.8 kg/m2). The core endurance was measured using the McGill protocol, consisting of the following tests: trunk flexion, back extension, and side-bridge. Functional performance was evaluated with push-ups, sit to stand, T-run test, countermovement jump (CMJ), Yo-Yo test, maximum dynamic strength-one repetition maximum (1RM) and muscle power on the bench press, pull row, and leg press. The regression results between the McGill protocol (proxy for core/trunk endurance) and the dependent variables were: 1RM pull row: r2 = 0.109 with p = 0.046; RM bench press: r2 = 0.149 with p = 0.012; RM leg press: r2 = 0.144 with p = 0.013 and power pull row: r2 = 0.151 with p = 0.016; power bench press: r2 = 0.136 with p = 0.026; power leg press: r2 = 0.122 with p = 0.013), push-ups: r2 = 0.157 with p < 0.001, sit to stand: r2 = 0.198 with p < 0,001), functional movement score: r2 = 0.209 with p < 0.001). Nevertheless, core endurance scores were not able to predict jump ability (r2 = 0.014, p = 0.807) or agility (T-test: 0.036 with p = 0.497). In conclusion, core endurance exerted no significant influence the agility and jump performance but influenced the ability to run intermittently, exert maximum power and strength in different actions (push, pull, and lift exercises) related to the better quality of movement (FMS).
Research regarding the relationship between core muscle endurance and performance is limited. The purpose of this study was to analyze the association between core/trunk endurance and athletic performance. Seventy-four healthy participants between 18 and 45 years old participated in this study (Age: 26.0 ± 6.5 years; Mass: 74.6 ± 12.8 kg; Height: 1.74 ± 0.08 m; BMI: 19.0 ± 6.8 kg/m 2 ). The core endurance was measured using the McGill protocol, consisting of the following tests: trunk flexion, back extension, and side-bridge. Functional performance was evaluated with push-ups, sit to stand, T-run test, countermovement jump (CMJ), Yo-Yo test, maximum dynamic strength-one repetition maximum (1RM) and muscle power on the bench press, pull row, and leg press. The regression results between the McGill protocol (proxy for core/trunk endurance) and the dependent variables were: 1RM pull row: r 2 = 0.109 with p = 0.046; RM bench press: r 2 = 0.149 with p = 0.012; RM leg press: r 2 = 0.144 with p = 0.013 and power pull row: r 2 = 0.151 with p = 0.016; power bench press: r 2 = 0.136 with p = 0.026; power leg press: r 2 = 0.122 with p = 0.013), push-ups: r 2 = 0.157 with p < 0.001, sit to stand: r 2 = 0.198 with p < 0,001), functional movement score: r 2 = 0.209 with p < 0.001). Nevertheless, core endurance scores were not able to predict jump ability ( r 2 = 0.014, p = 0.807) or agility ( T -test: 0.036 with p = 0.497). In conclusion, core endurance exerted no significant influence the agility and jump performance but influenced the ability to run intermittently, exert maximum power and strength in different actions (push, pull, and lift exercises) related to the better quality of movement (FMS).
Author Santos, Marta Silva
Da Silva-Grigoletto, Marzo Edir
Barbado, David
Behm, David G
DeSantana, Josimari Melo
AuthorAffiliation 2 School of Human Kinetics and Recreation, Memorial University of Newfoundland , St. John’s, NF , Canada
1 Physical Education Department, Functional Training Group, Graduate Program in Physiological Sciences, Federal University of Sergipe , São Cristóvão , Brazil
3 Sport Research Centre, Department of Sport Sciences, Miguel Hernández University of Elche , Elche , Spain
4 Neuroscience Research Laboratory, Department of Physiotherapy, Graduate Program in Physiological Sciences, Federal University of Sergipe , São Cristóvão , Brazil
AuthorAffiliation_xml – name: 3 Sport Research Centre, Department of Sport Sciences, Miguel Hernández University of Elche , Elche , Spain
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– name: 2 School of Human Kinetics and Recreation, Memorial University of Newfoundland , St. John’s, NF , Canada
– name: 1 Physical Education Department, Functional Training Group, Graduate Program in Physiological Sciences, Federal University of Sergipe , São Cristóvão , Brazil
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Copyright Copyright © 2019 Santos, Behm, Barbado, DeSantana and Da Silva-Grigoletto.
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Keywords chronic low back pain
rehabilitation
muscles
torso
athletic performance
Language English
License Copyright © 2019 Santos, Behm, Barbado, DeSantana and Da Silva-Grigoletto.
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This article was submitted to Exercise Physiology, a section of the journal Frontiers in Physiology
Reviewed by: Francisco J. Amaro-Gahete, University of Granada, Spain; Johnny Padulo, Università degli Studi di Milano, Italy
Edited by: David Jiménez-Pavón, University of Cádiz, Spain
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Snippet Research regarding the relationship between core muscle endurance and performance is limited. The purpose of this study was to analyze the association between...
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StartPage 1490
SubjectTerms athletic performance
chronic low back pain
muscles
Physiology
rehabilitation
torso
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Title Core Endurance Relationships With Athletic and Functional Performance in Inactive People
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