Anthropometrics and maturity status: A preliminary study of youth football head impact biomechanics

There is a paucity of head impact biomechanics research focusing on youth athletes. Little is known about how youth subconcussive head impact tolerances are related to physical size and maturation. To examine the effects of age, anthropometric and maturational status variability on head impact biome...

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Veröffentlicht in:International journal of psychophysiology 2018-10, Vol.132 (Pt A), p.87-92
Hauptverfasser: Yeargin, Susan W., Kingsley, Payton, Mensch, Jim M., Mihalik, Jason P., Monsma, Eva V.
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container_end_page 92
container_issue Pt A
container_start_page 87
container_title International journal of psychophysiology
container_volume 132
creator Yeargin, Susan W.
Kingsley, Payton
Mensch, Jim M.
Mihalik, Jason P.
Monsma, Eva V.
description There is a paucity of head impact biomechanics research focusing on youth athletes. Little is known about how youth subconcussive head impact tolerances are related to physical size and maturation. To examine the effects of age, anthropometric and maturational status variability on head impact biomechanics. Cross-sectional. Outdoor youth football facilities in South Carolina. Thirty-four male recreational youth football players, 8 to 13yrs. Categorized by CDC standards, independent variables were: age, height, mass, BMI, and estimated peak height velocity (PHV). Participants wore a designated head impact sensor (xPatch) on their mastoid process during practices and games. Linear acceleration (g) and rotational acceleration (rad/s2). Boys in the older age category had a greater linear (F=17.72; P
doi_str_mv 10.1016/j.ijpsycho.2017.09.022
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Little is known about how youth subconcussive head impact tolerances are related to physical size and maturation. To examine the effects of age, anthropometric and maturational status variability on head impact biomechanics. Cross-sectional. Outdoor youth football facilities in South Carolina. Thirty-four male recreational youth football players, 8 to 13yrs. Categorized by CDC standards, independent variables were: age, height, mass, BMI, and estimated peak height velocity (PHV). Participants wore a designated head impact sensor (xPatch) on their mastoid process during practices and games. Linear acceleration (g) and rotational acceleration (rad/s2). Boys in the older age category had a greater linear (F=17.72; P&lt;0.001) and rotational acceleration (F=10.74; P&lt;0.001) than those in the younger category. Post-PHV boys had higher linear (F=9.09, P=0.002) and rotational (F=5.57, P=0.018) accelerations than those who were pre-PHV. Rotational, but not linear acceleration differed by height category with lowest impacts found for the tallest category, whereas both linear and rotational accelerations by mass differences favored average and heavy categories. BMI overweight boys, had the greatest linear (F=5.25; P=0.011) and rotational acceleration (F=4.13; P=0.260) means. Post-PHV boys who were older, taller and had longer legs, but who were not heavier, had higher impacts perhaps due to the type of impacts sustained. Taller boys' heads are above their peers possibly encouraging hits in the torso region resulting in lower impact accelerations. 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Little is known about how youth subconcussive head impact tolerances are related to physical size and maturation. To examine the effects of age, anthropometric and maturational status variability on head impact biomechanics. Cross-sectional. Outdoor youth football facilities in South Carolina. Thirty-four male recreational youth football players, 8 to 13yrs. Categorized by CDC standards, independent variables were: age, height, mass, BMI, and estimated peak height velocity (PHV). Participants wore a designated head impact sensor (xPatch) on their mastoid process during practices and games. Linear acceleration (g) and rotational acceleration (rad/s2). Boys in the older age category had a greater linear (F=17.72; P&lt;0.001) and rotational acceleration (F=10.74; P&lt;0.001) than those in the younger category. Post-PHV boys had higher linear (F=9.09, P=0.002) and rotational (F=5.57, P=0.018) accelerations than those who were pre-PHV. Rotational, but not linear acceleration differed by height category with lowest impacts found for the tallest category, whereas both linear and rotational accelerations by mass differences favored average and heavy categories. BMI overweight boys, had the greatest linear (F=5.25; P=0.011) and rotational acceleration (F=4.13; P=0.260) means. Post-PHV boys who were older, taller and had longer legs, but who were not heavier, had higher impacts perhaps due to the type of impacts sustained. Taller boys' heads are above their peers possibly encouraging hits in the torso region resulting in lower impact accelerations. Obese boys did not have sequential results compared to boys in the other BMI categories probably due to league rules, player position, and lack of momentum produced. •Older boys had a greater linear and rotational acceleration than younger boys•Post-peak height velocity boys had higher impact magnitude•Taller boys’ have lower rotational impact accelerations•Overweight BMI category boys had the greatest acceleration compared to healthy and obese category boys•Obese boys did not have sequential head impact magnitude results compared to boys in the other BMI categories as expected</description><subject>Acceleration</subject><subject>Adolescent</subject><subject>Adolescent Development - physiology</subject><subject>Age Factors</subject><subject>Athletic Injuries - physiopathology</subject><subject>Biomechanical Phenomena - physiology</subject><subject>Body Height - physiology</subject><subject>Body Mass Index</subject><subject>Body Size - physiology</subject><subject>Brain Concussion - physiopathology</subject><subject>Child</subject><subject>Child Development - physiology</subject><subject>Cross-Sectional Studies</subject><subject>Football - injuries</subject><subject>Head Injuries, Closed - physiopathology</subject><subject>Humans</subject><subject>Linear acceleration</subject><subject>Male</subject><subject>Obesity</subject><subject>Pediatric</subject><subject>Pediatric Obesity - physiopathology</subject><subject>Rotational acceleration</subject><subject>Wearable Electronic Devices</subject><issn>0167-8760</issn><issn>1872-7697</issn><fulltext>true</fulltext><rsrctype>article</rsrctype><creationdate>2018</creationdate><recordtype>article</recordtype><sourceid>EIF</sourceid><recordid>eNqFkE1v3CAQhlGVqtmk_QsRx17s8LVgcsoqStpKkXppz4iFsczKNi7gSvvvy2o3veYCCD3zzsyD0B0lLSVU3h_acFjy0Q2xZYSqluiWMPYBbWinWKOkVldoU0HVdEqSa3ST84EQoqjWn9A163QnOVMb5HZzGVJc4gQlBZexnT2ebFlTKEecS33lB7zDS4IxTGG26fS7-iOOPT7GtQy4j7Hs7TjiAazHYVqsK3gfaqIb7FwzP6OPvR0zfLnct-j3y_Ovp-_N689vP552r43jsiuN1GwPArwEV4fzPWhFuOegHLGCcZBCEMZdr-vhpBRuC24rKCdcSS86zW_R13PukuKfFXIxU8gOxtHOENdsqBad2lY_oqLyjLoUc07QmyWFqS5nKDEnweZg3gSbk2BDtKmCa-Hdpce6n8D_L3szWoHHMwB1078BkskuwOzAhwSuGB_Dez3-AZ2nkdY</recordid><startdate>201810</startdate><enddate>201810</enddate><creator>Yeargin, Susan W.</creator><creator>Kingsley, Payton</creator><creator>Mensch, Jim M.</creator><creator>Mihalik, Jason P.</creator><creator>Monsma, Eva V.</creator><general>Elsevier B.V</general><scope>CGR</scope><scope>CUY</scope><scope>CVF</scope><scope>ECM</scope><scope>EIF</scope><scope>NPM</scope><scope>AAYXX</scope><scope>CITATION</scope><scope>7X8</scope></search><sort><creationdate>201810</creationdate><title>Anthropometrics and maturity status: A preliminary study of youth football head impact biomechanics</title><author>Yeargin, Susan W. ; 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Little is known about how youth subconcussive head impact tolerances are related to physical size and maturation. To examine the effects of age, anthropometric and maturational status variability on head impact biomechanics. Cross-sectional. Outdoor youth football facilities in South Carolina. Thirty-four male recreational youth football players, 8 to 13yrs. Categorized by CDC standards, independent variables were: age, height, mass, BMI, and estimated peak height velocity (PHV). Participants wore a designated head impact sensor (xPatch) on their mastoid process during practices and games. Linear acceleration (g) and rotational acceleration (rad/s2). Boys in the older age category had a greater linear (F=17.72; P&lt;0.001) and rotational acceleration (F=10.74; P&lt;0.001) than those in the younger category. Post-PHV boys had higher linear (F=9.09, P=0.002) and rotational (F=5.57, P=0.018) accelerations than those who were pre-PHV. Rotational, but not linear acceleration differed by height category with lowest impacts found for the tallest category, whereas both linear and rotational accelerations by mass differences favored average and heavy categories. BMI overweight boys, had the greatest linear (F=5.25; P=0.011) and rotational acceleration (F=4.13; P=0.260) means. Post-PHV boys who were older, taller and had longer legs, but who were not heavier, had higher impacts perhaps due to the type of impacts sustained. Taller boys' heads are above their peers possibly encouraging hits in the torso region resulting in lower impact accelerations. Obese boys did not have sequential results compared to boys in the other BMI categories probably due to league rules, player position, and lack of momentum produced. •Older boys had a greater linear and rotational acceleration than younger boys•Post-peak height velocity boys had higher impact magnitude•Taller boys’ have lower rotational impact accelerations•Overweight BMI category boys had the greatest acceleration compared to healthy and obese category boys•Obese boys did not have sequential head impact magnitude results compared to boys in the other BMI categories as expected</abstract><cop>Netherlands</cop><pub>Elsevier B.V</pub><pmid>28986327</pmid><doi>10.1016/j.ijpsycho.2017.09.022</doi><tpages>6</tpages></addata></record>
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subjects Acceleration
Adolescent
Adolescent Development - physiology
Age Factors
Athletic Injuries - physiopathology
Biomechanical Phenomena - physiology
Body Height - physiology
Body Mass Index
Body Size - physiology
Brain Concussion - physiopathology
Child
Child Development - physiology
Cross-Sectional Studies
Football - injuries
Head Injuries, Closed - physiopathology
Humans
Linear acceleration
Male
Obesity
Pediatric
Pediatric Obesity - physiopathology
Rotational acceleration
Wearable Electronic Devices
title Anthropometrics and maturity status: A preliminary study of youth football head impact biomechanics
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