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Published in: BMC Public Health 1/2024

Open Access 01-12-2024 | Research

The association between device-measured sitting time and cardiometabolic health risk factors in children

Authors: Ana María Contardo Ayala, Nicola D. Ridgers, Anna Timperio, Lauren Arundell, David W. Dunstan, Kylie D. Hesketh, Robin M. Daly, Jo Salmon

Published in: BMC Public Health | Issue 1/2024

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Abstract

Background

There is limited evidence of the associations between postural-derived sitting time, waist-worn derived sedentary time and children’s health and the moderation effect of physical activity (PA). This study examined associations of children’s device-measured sitting time with cardiometabolic health risk factors, including moderation by physical activity.

Methods

Cross-sectional baseline data from children (mean-age 8.2 ± 0.5 years) in Melbourne, Australia (2010) participating in the TransformUs program were used. Children simultaneously wore an activPAL to assess sitting time and an ActiGraph GT3X to assess sedentary time and physical activity intensity. Cardiometabolic health risk factors included: adiposity (body mass index [BMI], waist circumference [WC]), systolic and diastolic blood pressure (SBP, DBP), high-density lipoprotein (HDL), low-density lipoprotein (LDL), cholesterol, triglycerides, fasting plasma glucose (FPG), serum insulin, and 25-hydroxyvitaminD (25[OH]D). Linear regression models (n = 71–113) assessed associations between sitting time with each health risk factor, adjusted for different PA intensities (i.e. light [LIPA], moderate-vigorous intensities [MVPA], separately on each model), age, sex, adiposity, and clustering by school. Interaction terms examined moderation. The analyses were repeated using device-measured sedentary time (i.e. ActiGraph GT3X) for comparison.

Results

Sitting time was positively associated with SBP (b = 0.015; 95%CI: 0.004, 0.026), DBP (b = 0.012; 95%CI:0.004, 0.020), and FPG (b = 0.001; 95%CI: 0.000, 0.000), after adjusting for higher PA intensities. The association between sitting time and insulin (b = 0.003; 95%CI: 0.000, 0.006) was attenuated after adjusting for higher PA intensities. When the models were adjusted for LIPA and MVPA, there was a negative association with LDL (b=-0.001; 95%CI: -0.002, -0.000 and b=-0.001; 95%CI: -0.003, -0.000, respectively). There was a negative association of sedentary time with WCz (b=-0.003; 95%CI: -0.005, 0.000) and BMIz (b=-0.003; 95%CI: -0.006, -0.000) when the models were adjusted by MVPA. Sedentary time was positively associated with triglycerides (b = 0.001; 95%CI: 0.000, 0.001) but attenuated after adjusting for MVPA. No evidence of moderation effects was found.

Conclusions

Higher volumes of sitting and sedentary time were associated with some adverse associations on some cardiometabolic health risk factors in children. These associations were more evident when sitting time was the predictor. This suggests that reducing time spent sitting may benefit some cardiometabolic health outcomes, but future experimental research is needed to confirm causal relationships and identify the biological mechanisms that might be involved.

Trial registration

Australian New Zealand Clinical Trials Registry: ACTRN12609000715279.
Appendix
Available only for authorised users
Literature
1.
go back to reference Tremblay MS, Aubert S, Barnes JD, Saunders TJ, Carson V, Latimer-Cheung AE, et al. Sedentary Behavior Research Network (SBRN) - terminology Consensus Project process and outcome. Int J Behav Nutr Phys Act. 2017;14(1):75.PubMedPubMedCentralCrossRef Tremblay MS, Aubert S, Barnes JD, Saunders TJ, Carson V, Latimer-Cheung AE, et al. Sedentary Behavior Research Network (SBRN) - terminology Consensus Project process and outcome. Int J Behav Nutr Phys Act. 2017;14(1):75.PubMedPubMedCentralCrossRef
2.
go back to reference Young DR, Hivert MF, Alhassan S, Camhi SM, Ferguson JF, Katzmarzyk PT, et al. Sedentary Behavior and Cardiovascular Morbidity and Mortality: A Science Advisory from the American Heart Association. Circulation. 2016;134(13):e262–79.PubMedCrossRef Young DR, Hivert MF, Alhassan S, Camhi SM, Ferguson JF, Katzmarzyk PT, et al. Sedentary Behavior and Cardiovascular Morbidity and Mortality: A Science Advisory from the American Heart Association. Circulation. 2016;134(13):e262–79.PubMedCrossRef
3.
go back to reference Jones MA, Skidmore PM, Stoner L, Harrex H, Saeedi P, Black K, et al. Associations of accelerometer-measured sedentary time, sedentary bouts, and physical activity with adiposity and fitness in children. J Sports Sci. 2020;38(1):114–20.PubMedCrossRef Jones MA, Skidmore PM, Stoner L, Harrex H, Saeedi P, Black K, et al. Associations of accelerometer-measured sedentary time, sedentary bouts, and physical activity with adiposity and fitness in children. J Sports Sci. 2020;38(1):114–20.PubMedCrossRef
4.
go back to reference Marques A, Minderico C, Martins S, Palmeira A, Ekelund U, Sardinha LB. Cross-sectional and prospective associations between moderate to vigorous physical activity and sedentary time with adiposity in children. Int J Obes (Lond). 2016;40(1):28–33.PubMedCrossRef Marques A, Minderico C, Martins S, Palmeira A, Ekelund U, Sardinha LB. Cross-sectional and prospective associations between moderate to vigorous physical activity and sedentary time with adiposity in children. Int J Obes (Lond). 2016;40(1):28–33.PubMedCrossRef
5.
go back to reference Santos DA, Magalhães JP, Júdice PB, Correia IR, Minderico CS, Ekelund U, et al. Fitness mediates activity and sedentary patterns associations with Adiposity in Youth. Med Sci Sports Exerc. 2019;51(2):323–9.PubMedCrossRef Santos DA, Magalhães JP, Júdice PB, Correia IR, Minderico CS, Ekelund U, et al. Fitness mediates activity and sedentary patterns associations with Adiposity in Youth. Med Sci Sports Exerc. 2019;51(2):323–9.PubMedCrossRef
6.
go back to reference Júdice PB, Hetherington-Rauth M, Northstone K, Andersen LB, Wedderkopp N, Ekelund U et al. Changes in Physical Activity and Sedentary Patterns on Cardiometabolic Outcomes in the Transition to Adolescence: International Children’s Accelerometry Database 2.0. J Pediatr. 2020;225:166– 73.e1. Júdice PB, Hetherington-Rauth M, Northstone K, Andersen LB, Wedderkopp N, Ekelund U et al. Changes in Physical Activity and Sedentary Patterns on Cardiometabolic Outcomes in the Transition to Adolescence: International Children’s Accelerometry Database 2.0. J Pediatr. 2020;225:166– 73.e1.
7.
go back to reference Biddle SJ, Garcia Bengoechea E, Wiesner G. Sedentary behaviour and adiposity in youth: a systematic review of reviews and analysis of causality. Int J Behav Nutr Phys Act. 2017;14(1):43.PubMedPubMedCentralCrossRef Biddle SJ, Garcia Bengoechea E, Wiesner G. Sedentary behaviour and adiposity in youth: a systematic review of reviews and analysis of causality. Int J Behav Nutr Phys Act. 2017;14(1):43.PubMedPubMedCentralCrossRef
8.
go back to reference Biddle SJH, Pearson N, Salmon J. Sedentary behaviors and adiposity in Young people: causality and conceptual model. Exerc Sport Sci Rev. 2018;46(1):18–25.PubMedCrossRef Biddle SJH, Pearson N, Salmon J. Sedentary behaviors and adiposity in Young people: causality and conceptual model. Exerc Sport Sci Rev. 2018;46(1):18–25.PubMedCrossRef
9.
go back to reference Cliff DP, Hesketh KD, Vella SA, Hinkley T, Tsiros MD, Ridgers ND, et al. Objectively measured sedentary behaviour and health and development in children and adolescents: systematic review and meta-analysis. Obes Rev. 2016;17(4):330–44.PubMedCrossRef Cliff DP, Hesketh KD, Vella SA, Hinkley T, Tsiros MD, Ridgers ND, et al. Objectively measured sedentary behaviour and health and development in children and adolescents: systematic review and meta-analysis. Obes Rev. 2016;17(4):330–44.PubMedCrossRef
10.
go back to reference Chaput J-P, Willumsen J, Bull F, Chou R, Ekelund U, Firth J, et al. 2020 WHO guidelines on physical activity and sedentary behaviour for children and adolescents aged 5–17 years: summary of the evidence. Int J Behav Nutr Phys Activity. 2020;17(1):141.CrossRef Chaput J-P, Willumsen J, Bull F, Chou R, Ekelund U, Firth J, et al. 2020 WHO guidelines on physical activity and sedentary behaviour for children and adolescents aged 5–17 years: summary of the evidence. Int J Behav Nutr Phys Activity. 2020;17(1):141.CrossRef
11.
go back to reference Oliveira RGd, Guedes DP, Physical Activity S, Behavior. Cardiorespiratory Fitness and metabolic syndrome in adolescents: systematic review and Meta-analysis of Observational evidence. PLoS ONE. 2016;11(12):e0168503.CrossRef Oliveira RGd, Guedes DP, Physical Activity S, Behavior. Cardiorespiratory Fitness and metabolic syndrome in adolescents: systematic review and Meta-analysis of Observational evidence. PLoS ONE. 2016;11(12):e0168503.CrossRef
12.
go back to reference Skrede T, Steene-Johannessen J, Anderssen SA, Resaland GK, Ekelund U. The prospective association between objectively measured sedentary time, moderate-to-vigorous physical activity and cardiometabolic risk factors in youth: a systematic review and meta-analysis. Obes Rev. 2019;20(1):55–74.PubMedCrossRef Skrede T, Steene-Johannessen J, Anderssen SA, Resaland GK, Ekelund U. The prospective association between objectively measured sedentary time, moderate-to-vigorous physical activity and cardiometabolic risk factors in youth: a systematic review and meta-analysis. Obes Rev. 2019;20(1):55–74.PubMedCrossRef
13.
go back to reference Renninger M, Hansen BH, Steene-Johannessen J, Kriemler S, Froberg K, Northstone K, et al. Associations between accelerometry measured physical activity and sedentary time and the metabolic syndrome: a meta-analysis of more than 6000 children and adolescents. Pediatr Obes. 2020;15(1):e12578.PubMedCrossRef Renninger M, Hansen BH, Steene-Johannessen J, Kriemler S, Froberg K, Northstone K, et al. Associations between accelerometry measured physical activity and sedentary time and the metabolic syndrome: a meta-analysis of more than 6000 children and adolescents. Pediatr Obes. 2020;15(1):e12578.PubMedCrossRef
14.
go back to reference Froberg A, Raustorp A. Objectively measured sedentary behaviour and cardio-metabolic risk in youth: a review of evidence. Eur J Pediatr. 2014;173(7):845–60.PubMedCrossRef Froberg A, Raustorp A. Objectively measured sedentary behaviour and cardio-metabolic risk in youth: a review of evidence. Eur J Pediatr. 2014;173(7):845–60.PubMedCrossRef
15.
go back to reference Mitchell JA, Pate RR, Beets MW, Nader PR. Time spent in sedentary behavior and changes in childhood BMI: a longitudinal study from ages 9 to 15 years. Int J Obes (Lond). 2013;37(1):54–60.PubMedCrossRef Mitchell JA, Pate RR, Beets MW, Nader PR. Time spent in sedentary behavior and changes in childhood BMI: a longitudinal study from ages 9 to 15 years. Int J Obes (Lond). 2013;37(1):54–60.PubMedCrossRef
16.
go back to reference Cliff DP, Okely AD, Burrows TL, Jones RA, Morgan PJ, Collins CE, et al. Objectively measured sedentary behavior, physical activity, and plasma lipids in overweight and obese children. Obes (Silver Spring). 2013;21(2):382–5.CrossRef Cliff DP, Okely AD, Burrows TL, Jones RA, Morgan PJ, Collins CE, et al. Objectively measured sedentary behavior, physical activity, and plasma lipids in overweight and obese children. Obes (Silver Spring). 2013;21(2):382–5.CrossRef
17.
go back to reference Ridgers ND, Salmon J, Ridley K, O’Connell E, Arundell L, Timperio A. Agreement between activPAL and ActiGraph for assessing children’s sedentary time. Int J Behav Nutr Phys Act. 2012;9(1):15.PubMedPubMedCentralCrossRef Ridgers ND, Salmon J, Ridley K, O’Connell E, Arundell L, Timperio A. Agreement between activPAL and ActiGraph for assessing children’s sedentary time. Int J Behav Nutr Phys Act. 2012;9(1):15.PubMedPubMedCentralCrossRef
18.
go back to reference Hardy LL, Hills AP, Timperio A, Cliff D, Lubans D, Morgan PJ, et al. A hitchhiker’s guide to assessing sedentary behaviour among young people: deciding what method to use. J Sci Med Sport. 2013;16(1):28–35.PubMedCrossRef Hardy LL, Hills AP, Timperio A, Cliff D, Lubans D, Morgan PJ, et al. A hitchhiker’s guide to assessing sedentary behaviour among young people: deciding what method to use. J Sci Med Sport. 2013;16(1):28–35.PubMedCrossRef
19.
go back to reference Carlson JA, Ridgers ND, Nakandala S, Zablocki R, Tuz-Zahra F, Bellettiere J, et al. CHAP-child: an open source method for estimating sit-to-stand transitions and sedentary bout patterns from hip accelerometers among children. Int J Behav Nutr Phys Act. 2022;19(1):109.PubMedPubMedCentralCrossRef Carlson JA, Ridgers ND, Nakandala S, Zablocki R, Tuz-Zahra F, Bellettiere J, et al. CHAP-child: an open source method for estimating sit-to-stand transitions and sedentary bout patterns from hip accelerometers among children. Int J Behav Nutr Phys Act. 2022;19(1):109.PubMedPubMedCentralCrossRef
20.
go back to reference Stockwell SL, Smith LR, Weaver HM, Hankins DJ, Bailey DP. Associations of sitting behavior patterns with cardiometabolic risk in children: the Sit Less for Health cross-sectional study. J Phys Act Health. 2019;12(10):856–42.PubMed Stockwell SL, Smith LR, Weaver HM, Hankins DJ, Bailey DP. Associations of sitting behavior patterns with cardiometabolic risk in children: the Sit Less for Health cross-sectional study. J Phys Act Health. 2019;12(10):856–42.PubMed
21.
go back to reference Contardo Ayala AM, Salmon J, Dunstan DW, Arundell L, Timperio A. Does light-intensity physical activity moderate the relationship between sitting time and adiposity markers in adolescents? J Sport Health Sci. 2022;11(5):613–9.PubMedCrossRef Contardo Ayala AM, Salmon J, Dunstan DW, Arundell L, Timperio A. Does light-intensity physical activity moderate the relationship between sitting time and adiposity markers in adolescents? J Sport Health Sci. 2022;11(5):613–9.PubMedCrossRef
22.
go back to reference Contardo Ayala AM, Salmon J, Dunstan DW, Arundell L, Parker K, Timperio A. Longitudinal changes in sitting patterns, physical activity, and Health outcomes in adolescents. Child [Internet]. 2019; 6(1). Contardo Ayala AM, Salmon J, Dunstan DW, Arundell L, Parker K, Timperio A. Longitudinal changes in sitting patterns, physical activity, and Health outcomes in adolescents. Child [Internet]. 2019; 6(1).
23.
go back to reference Salmon J, Arundell L, Cerin E, Ridgers ND, Hesketh KD, Daly RM, et al. Transform-Us! Cluster RCT: 18-month and 30-month effects on children’s physical activity, sedentary time and cardiometabolic risk markers. Br J Sports Med. 2023;57(5):311–9.PubMedCrossRef Salmon J, Arundell L, Cerin E, Ridgers ND, Hesketh KD, Daly RM, et al. Transform-Us! Cluster RCT: 18-month and 30-month effects on children’s physical activity, sedentary time and cardiometabolic risk markers. Br J Sports Med. 2023;57(5):311–9.PubMedCrossRef
24.
go back to reference Salmon J, Arundell L, Hume C, Brown H, Hesketh K, Dunstan DW, et al. A cluster-randomized controlled trial to reduce sedentary behavior and promote physical activity and health of 8–9 year olds: the Transform-Us! Study. BMC Public Health. 2011;11:759.PubMedPubMedCentralCrossRef Salmon J, Arundell L, Hume C, Brown H, Hesketh K, Dunstan DW, et al. A cluster-randomized controlled trial to reduce sedentary behavior and promote physical activity and health of 8–9 year olds: the Transform-Us! Study. BMC Public Health. 2011;11:759.PubMedPubMedCentralCrossRef
25.
go back to reference Australian Bureau of Statistics. Socio-Economic Indexes for Areas (SEIFA). 2016(27/03/2018). Australian Bureau of Statistics. Socio-Economic Indexes for Areas (SEIFA). 2016(27/03/2018).
26.
go back to reference Ridley K, Ridgers ND, Salmon J. Criterion validity of the activPAL and ActiGraph for assessing children’s sitting and standing time in a school classroom setting. Int J Behav Nutr Phys Act. 2016;13(1):75.PubMedPubMedCentralCrossRef Ridley K, Ridgers ND, Salmon J. Criterion validity of the activPAL and ActiGraph for assessing children’s sitting and standing time in a school classroom setting. Int J Behav Nutr Phys Act. 2016;13(1):75.PubMedPubMedCentralCrossRef
27.
go back to reference Cain KL, Sallis JF, Conway TL, Van Dyck D, Calhoon L. Using accelerometers in youth physical activity studies: a review of methods. J Phys Act Health. 2013;10(3):437–50.PubMedPubMedCentralCrossRef Cain KL, Sallis JF, Conway TL, Van Dyck D, Calhoon L. Using accelerometers in youth physical activity studies: a review of methods. J Phys Act Health. 2013;10(3):437–50.PubMedPubMedCentralCrossRef
28.
go back to reference Janssen X, Basterfield L, Parkinson KN, Pearce MS, Reilly JK, Adamson AJ, et al. Objective measurement of sedentary behavior: impact of non-wear time rules on changes in sedentary time. BMC Public Health. 2015;15:504.PubMedPubMedCentralCrossRef Janssen X, Basterfield L, Parkinson KN, Pearce MS, Reilly JK, Adamson AJ, et al. Objective measurement of sedentary behavior: impact of non-wear time rules on changes in sedentary time. BMC Public Health. 2015;15:504.PubMedPubMedCentralCrossRef
29.
go back to reference Gabel L, Ridgers ND, Della Gatta PA, Arundell L, Cerin E, Robinson S, et al. Associations of sedentary time patterns and TV viewing time with inflammatory and endothelial function biomarkers in children. Pediatr Obes. 2016;11(3):194–201.PubMedCrossRef Gabel L, Ridgers ND, Della Gatta PA, Arundell L, Cerin E, Robinson S, et al. Associations of sedentary time patterns and TV viewing time with inflammatory and endothelial function biomarkers in children. Pediatr Obes. 2016;11(3):194–201.PubMedCrossRef
30.
go back to reference Mattocks C, Ness A, Leary S, Tilling K, Blair SN, Shield J, et al. Use of accelerometers in a large field-based study of children: protocols, design issues, and effects on precision. J Phys Act Health. 2008;5(Suppl 1):S98–111.PubMedCrossRef Mattocks C, Ness A, Leary S, Tilling K, Blair SN, Shield J, et al. Use of accelerometers in a large field-based study of children: protocols, design issues, and effects on precision. J Phys Act Health. 2008;5(Suppl 1):S98–111.PubMedCrossRef
31.
go back to reference Ridgers ND, Timperio A, Cerin E, Salmon J. Within- and between-day associations between children’s sitting and physical activity time. BMC Public Health. 2015;15(1):950.PubMedPubMedCentralCrossRef Ridgers ND, Timperio A, Cerin E, Salmon J. Within- and between-day associations between children’s sitting and physical activity time. BMC Public Health. 2015;15(1):950.PubMedPubMedCentralCrossRef
32.
go back to reference Freedson P, Pober D, Janz KF. Calibration of accelerometer output for children. Med Sci Sports Exerc. 2005;37(11 Suppl):S523–30.PubMedCrossRef Freedson P, Pober D, Janz KF. Calibration of accelerometer output for children. Med Sci Sports Exerc. 2005;37(11 Suppl):S523–30.PubMedCrossRef
33.
go back to reference Carson V, Ridgers ND, Howard BJ, Winkler EA, Healy GN, Owen N, et al. Light-intensity physical activity and cardiometabolic biomarkers in US adolescents. PLoS ONE. 2013;8(8):e71417.PubMedPubMedCentralCrossRef Carson V, Ridgers ND, Howard BJ, Winkler EA, Healy GN, Owen N, et al. Light-intensity physical activity and cardiometabolic biomarkers in US adolescents. PLoS ONE. 2013;8(8):e71417.PubMedPubMedCentralCrossRef
34.
go back to reference Cole TJ, Flegal KM, Nicholls D, Jackson AA. Body mass index cut offs to define thinness in children and adolescents: international survey. BMJ. 2007;335(7612):194.PubMedPubMedCentralCrossRef Cole TJ, Flegal KM, Nicholls D, Jackson AA. Body mass index cut offs to define thinness in children and adolescents: international survey. BMJ. 2007;335(7612):194.PubMedPubMedCentralCrossRef
35.
go back to reference World Health Organisation. Growth, reference, study, Group. WHO Child Growth standards: Length/height-for-age, weight-for-age, weight-for-length, weight-for-height and body mass index-for-age: methods and development. Geneva: World Health Organization; 2006. World Health Organisation. Growth, reference, study, Group. WHO Child Growth standards: Length/height-for-age, weight-for-age, weight-for-length, weight-for-height and body mass index-for-age: methods and development. Geneva: World Health Organization; 2006.
36.
go back to reference Vidmar SI, Cole TJ, Pan H. Standardizing anthropometric measures in children and adolescents with functions for egen: update. Stata J. 2013;13(2):366–78.CrossRef Vidmar SI, Cole TJ, Pan H. Standardizing anthropometric measures in children and adolescents with functions for egen: update. Stata J. 2013;13(2):366–78.CrossRef
37.
go back to reference Eisenmann JC. Waist circumference percentiles for 7- to 15-year-old Australian children. Acta Paediatr. 2005;94(9):1182–5.PubMedCrossRef Eisenmann JC. Waist circumference percentiles for 7- to 15-year-old Australian children. Acta Paediatr. 2005;94(9):1182–5.PubMedCrossRef
38.
go back to reference National High Blood Pressure Education Program Working Group on High Blood Pressure in C, Adolescents. The fourth report on the diagnosis, evaluation, and treatment of high blood pressure in children and adolescents. Pediatrics. 2004;114(2 Suppl 4th Report):555– 76. National High Blood Pressure Education Program Working Group on High Blood Pressure in C, Adolescents. The fourth report on the diagnosis, evaluation, and treatment of high blood pressure in children and adolescents. Pediatrics. 2004;114(2 Suppl 4th Report):555– 76.
39.
go back to reference Cooper AR, Goodman A, Page AS, Sherar LB, Esliger DW, van Sluijs EM, et al. Objectively measured physical activity and sedentary time in youth: the international children’s accelerometry database (ICAD). Int J Behav Nutr Phys Act. 2015;12(1):113.PubMedPubMedCentralCrossRef Cooper AR, Goodman A, Page AS, Sherar LB, Esliger DW, van Sluijs EM, et al. Objectively measured physical activity and sedentary time in youth: the international children’s accelerometry database (ICAD). Int J Behav Nutr Phys Act. 2015;12(1):113.PubMedPubMedCentralCrossRef
40.
go back to reference van Dijk JW, Venema M, van Mechelen W, Stehouwer CD, Hartgens F, van Loon LJ. Effect of moderate-intensity exercise versus activities of daily living on 24-hour blood glucose homeostasis in male patients with type 2 diabetes. Diabetes Care. 2013;36(11):3448–53.PubMedPubMedCentralCrossRef van Dijk JW, Venema M, van Mechelen W, Stehouwer CD, Hartgens F, van Loon LJ. Effect of moderate-intensity exercise versus activities of daily living on 24-hour blood glucose homeostasis in male patients with type 2 diabetes. Diabetes Care. 2013;36(11):3448–53.PubMedPubMedCentralCrossRef
41.
go back to reference Garcia-Hermoso A, Saavedra JM, Ramirez-Velez R, Ekelund U, Del Pozo-Cruz B. Reallocating sedentary time to moderate-to-vigorous physical activity but not to light-intensity physical activity is effective to reduce adiposity among youths: a systematic review and meta-analysis. Obes Rev. 2017;18(9):1088–95.PubMedCrossRef Garcia-Hermoso A, Saavedra JM, Ramirez-Velez R, Ekelund U, Del Pozo-Cruz B. Reallocating sedentary time to moderate-to-vigorous physical activity but not to light-intensity physical activity is effective to reduce adiposity among youths: a systematic review and meta-analysis. Obes Rev. 2017;18(9):1088–95.PubMedCrossRef
42.
go back to reference Dempsey PC, Larsen RN, Dunstan DW, Owen N, Kingwell BA. Sitting less and moving more: implications for hypertension. Hypertension. 2018;72(5):1037–46.PubMedCrossRef Dempsey PC, Larsen RN, Dunstan DW, Owen N, Kingwell BA. Sitting less and moving more: implications for hypertension. Hypertension. 2018;72(5):1037–46.PubMedCrossRef
43.
go back to reference Ekelund U, Anderssen SA, Froberg K, Sardinha LB, Andersen LB, Brage S. Independent associations of physical activity and cardiorespiratory fitness with metabolic risk factors in children: the European youth heart study. Diabetologia. 2007;50(9):1832–40.PubMedCrossRef Ekelund U, Anderssen SA, Froberg K, Sardinha LB, Andersen LB, Brage S. Independent associations of physical activity and cardiorespiratory fitness with metabolic risk factors in children: the European youth heart study. Diabetologia. 2007;50(9):1832–40.PubMedCrossRef
44.
go back to reference Strizich G, Kaplan RC, Sotres-Alvarez D, Diaz KM, Daigre AL, Carnethon MR, et al. Objectively measured sedentary behavior, physical activity, and Cardiometabolic Risk in Hispanic Youth: Hispanic Community Health Study/Study of latino youth. J Clin Endocrinol Metabolism. 2018;103(9):3289–98.CrossRef Strizich G, Kaplan RC, Sotres-Alvarez D, Diaz KM, Daigre AL, Carnethon MR, et al. Objectively measured sedentary behavior, physical activity, and Cardiometabolic Risk in Hispanic Youth: Hispanic Community Health Study/Study of latino youth. J Clin Endocrinol Metabolism. 2018;103(9):3289–98.CrossRef
45.
go back to reference Carson V, Janssen I. Volume, patterns, and types of sedentary behavior and cardio-metabolic health in children and adolescents: a cross-sectional study. BMC Public Health. 2011;11(1):274.PubMedPubMedCentralCrossRef Carson V, Janssen I. Volume, patterns, and types of sedentary behavior and cardio-metabolic health in children and adolescents: a cross-sectional study. BMC Public Health. 2011;11(1):274.PubMedPubMedCentralCrossRef
46.
go back to reference Bell JA, Hamer M, Richmond RC, Timpson NJ, Carslake D, Davey Smith G. Associations of device-measured physical activity across adolescence with metabolic traits: prospective cohort study. PLoS Med. 2018;15(9):e1002649.PubMedPubMedCentralCrossRef Bell JA, Hamer M, Richmond RC, Timpson NJ, Carslake D, Davey Smith G. Associations of device-measured physical activity across adolescence with metabolic traits: prospective cohort study. PLoS Med. 2018;15(9):e1002649.PubMedPubMedCentralCrossRef
47.
go back to reference Barone Gibbs B, Pettee Gabriel K, Reis JP, Jakicic JM, Carnethon MR, Sternfeld B. Cross-sectional and longitudinal associations between objectively measured sedentary time and metabolic disease: the coronary artery Risk Development in Young adults (CARDIA) study. Diabetes Care. 2015;38(10):1835–43.PubMedPubMedCentralCrossRef Barone Gibbs B, Pettee Gabriel K, Reis JP, Jakicic JM, Carnethon MR, Sternfeld B. Cross-sectional and longitudinal associations between objectively measured sedentary time and metabolic disease: the coronary artery Risk Development in Young adults (CARDIA) study. Diabetes Care. 2015;38(10):1835–43.PubMedPubMedCentralCrossRef
48.
go back to reference Silva TO, Norde MM, Vasques AC, Zambom MP, Antonio MARGM, Rodrigues AMDB et al. Association of physical activity and sitting with metabolic syndrome and hyperglycemic clamp parameters in adolescents– BRAMS pediatric study. Front Endocrinol. 2023;14. Silva TO, Norde MM, Vasques AC, Zambom MP, Antonio MARGM, Rodrigues AMDB et al. Association of physical activity and sitting with metabolic syndrome and hyperglycemic clamp parameters in adolescents– BRAMS pediatric study. Front Endocrinol. 2023;14.
49.
go back to reference Lim J, Kim JS, Park S, Lee O, So WY. Relationship of physical activity and sedentary time with metabolic health in children and adolescents measured by accelerometer: a narrative review. Healthc (Basel). 2021;9(6). Lim J, Kim JS, Park S, Lee O, So WY. Relationship of physical activity and sedentary time with metabolic health in children and adolescents measured by accelerometer: a narrative review. Healthc (Basel). 2021;9(6).
50.
go back to reference Sherry AP, Pearson N, Ridgers ND, Barber SE, Bingham DD, Nagy LC, et al. activPAL-measured sitting levels and patterns in 9–10 years old children from a UK city. J Public Health (Oxf). 2019;41(4):757–64.PubMedCrossRef Sherry AP, Pearson N, Ridgers ND, Barber SE, Bingham DD, Nagy LC, et al. activPAL-measured sitting levels and patterns in 9–10 years old children from a UK city. J Public Health (Oxf). 2019;41(4):757–64.PubMedCrossRef
51.
go back to reference Hinckson EA, Hopkins WG, Aminian S, Ross K. Week-to-week differences of children’s habitual activity and postural allocation as measured by the ActivPAL monitor. Gait Posture. 2013;38(4):663–7.PubMedCrossRef Hinckson EA, Hopkins WG, Aminian S, Ross K. Week-to-week differences of children’s habitual activity and postural allocation as measured by the ActivPAL monitor. Gait Posture. 2013;38(4):663–7.PubMedCrossRef
52.
go back to reference Milagres LC, Rocha NP, Albuquerque FM, Castro APP, Filgueiras MS, Pessoa MC, et al. Sedentary behavior is associated with lower serum concentrations of vitamin D in Brazilian children. Public Health. 2017;152:75–8.PubMedCrossRef Milagres LC, Rocha NP, Albuquerque FM, Castro APP, Filgueiras MS, Pessoa MC, et al. Sedentary behavior is associated with lower serum concentrations of vitamin D in Brazilian children. Public Health. 2017;152:75–8.PubMedCrossRef
53.
go back to reference da Silva ACM, Cureau FV, de Oliveira CL, Giannini DT, Bloch KV, Kuschnir MCC, et al. Physical activity but not sedentary time is associated with vitamin D status in adolescents: study of cardiovascular risk in adolescents (ERICA). Eur J Clin Nutr. 2019;73(3):432–40.PubMedCrossRef da Silva ACM, Cureau FV, de Oliveira CL, Giannini DT, Bloch KV, Kuschnir MCC, et al. Physical activity but not sedentary time is associated with vitamin D status in adolescents: study of cardiovascular risk in adolescents (ERICA). Eur J Clin Nutr. 2019;73(3):432–40.PubMedCrossRef
54.
go back to reference Hoffmann B, Kobel S, Wartha O, Kettner S, Dreyhaupt J, Steinacker JM. High sedentary time in children is not only due to screen media use: a cross-sectional study. BMC Pediatr. 2019;19(1):154.PubMedPubMedCentralCrossRef Hoffmann B, Kobel S, Wartha O, Kettner S, Dreyhaupt J, Steinacker JM. High sedentary time in children is not only due to screen media use: a cross-sectional study. BMC Pediatr. 2019;19(1):154.PubMedPubMedCentralCrossRef
Metadata
Title
The association between device-measured sitting time and cardiometabolic health risk factors in children
Authors
Ana María Contardo Ayala
Nicola D. Ridgers
Anna Timperio
Lauren Arundell
David W. Dunstan
Kylie D. Hesketh
Robin M. Daly
Jo Salmon
Publication date
01-12-2024
Publisher
BioMed Central
Published in
BMC Public Health / Issue 1/2024
Electronic ISSN: 1471-2458
DOI
https://doi.org/10.1186/s12889-024-18495-w

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