Madsen KR, Román JEI, Damsgaard MT, Holstein BE, Kristoffersen MJPT et al. Skolebørnsundersøgelsen 2022 (Internet). København; 2023. Available from: https://www.hbsc.dk/
Hagman E, Reinehr T, Kowalski J, Ekbom A, Marcus C, Holl RW. Impaired fasting glucose prevalence in two nationwide cohorts of obese children and adolescents. Int J Obes (Lond). 2014;38:40–5.
Google Scholar
Hvidt KN, Olsen MH, Ibsen H, Holm J-C. Effect of changes in BMI and waist circumference on ambulatory blood pressure in obese children and adolescents. J Hypertens. 2014;32:1470–7.
Google Scholar
Nielsen TRH, Gamborg M, Fonvig CE, Kloppenborg J, Hvidt KN, Ibsen H, et al. Changes in lipidemia during chronic care treatment of childhood obesity. Child Obes. 2012;8:533–41.
Google Scholar
Fonvig CE, Chabanova E, Andersson EA, Ohrt JD, Pedersen O, Hansen T, et al. 1H-MRS measured ectopic fat in liver and muscle in danish lean and obese children and adolescents. PLoS One. 2015;10:e0135018.
Google Scholar
Hoare E, Crooks N, Hayward J, Allender S, Strugnell C. Associations between combined overweight and obesity, lifestyle behavioural risk and quality of life among Australian regional school children: Baseline findings of the Goulburn Valley health behaviours monitoring study. Health Qual Life Outcomes. 2019;17:16.
Google Scholar
Sjöberg RL, Nilsson KW, Leppert J. Obesity, shame, and depression in school-aged children: a population-based study. Pediatrics. 2005;116:e389–92.
Google Scholar
Aarestrup J, Bjerregaard LG, Meyle KD, Pedersen DC, Gjærde LK, Jensen BW, et al. Birthweight, childhood overweight, height and growth and adult cancer risks: a review of studies using the Copenhagen School Health Records Register. Int J Obes. 2020;44:1546–60.
Google Scholar
Bjerregaard LG, Jensen BW, Ängquist L, Osler M, Sørensen TIA, Baker JL. Change in overweight from childhood to early adulthood and risk of type 2 diabetes. N Engl J Med. 2018;378:1302–12.
Google Scholar
Bjerregaard LG, Adelborg K, Baker JL. Change in body mass index from childhood onwards and risk of adult cardiovascular disease. Trends Cardiovasc Med. 2020;30:39–45.
Google Scholar
Holm J-C, Gamborg M, Bille DS, Grønbæk HN, Ward LC, Faerk J. Chronic care treatment of obese children and adolescents. Int J Pediatr Obes. 2011;6:188–96.
Google Scholar
Most SW, Højgaard B, Teilmann G, Andersen J, Valentiner M, Gamborg M, et al. Adoption of the children’s obesity clinic’s treatment (TCOCT) protocol into another Danish pediatric obesity treatment clinic. BMC Pediatr. 2015;15:13.
Google Scholar
Jørgensen RM, Bruun JM, Kremke B, Bahnsen RF, Nielsen BW, Vestergaard ET. Sustainable weight loss over three years in children with obesity: a pragmatic family-centered lifestyle intervention. Eat Weight Disord. 2021;26:537–45.
Google Scholar
Mollerup PM, Gamborg M, Trier C, Bøjsøe C, Nielsen TRH, Baker JL, et al. A hospital-based child and adolescent overweight and obesity treatment protocol transferred into a community healthcare setting. PLoS One. 2017;12:e0173033.
Google Scholar
Fonvig CE, Chabanova E, Ohrt JD, Nielsen LA, Pedersen O, Hansen T, et al. Multidisciplinary care of obese children and adolescents for one year reduces ectopic fat content in liver and skeletal muscle. BMC Pediatr. 2015;15:196.
Google Scholar
Jørgensen RM, Vestergaard ET, Kremke B, Bahnsen RF, Nielsen BW, Bruun JM. The association between weight loss and long term development in quality-of-life among children living with obesity: a pragmatic descriptive intervention study. Ital J Pediatr. 2022;48:135.
Google Scholar
Rasmussen M, Kierkegaard L, Rosenwein SV, Holstein BE, Damsgaard MTDP Skolebørnsundersøgelsen 2018: Helbred, trivsel og sundhedsadfærd blandt 11-, 13- og 15-årige skoleelever i Danmark. (Internet). København; 2019. Available from: https://www.hbsc.dk/
McManus AM, Mellecker RR. Physical activity and obese children. J Sport Heal Sci. 2012;1:141–8.
Google Scholar
Martland R, Mondelli V, Gaughran F, Stubbs B. Can high-intensity interval training improve physical and mental health outcomes? A meta-review of 33 systematic reviews across the lifespan. J Sports Sci. 2020;38:430–69.
Google Scholar
Cao M, Quan M, Zhuang J. Effect of high-intensity interval training versus moderate-intensity continuous training on cardiorespiratory fitness in children and adolescents: a meta-analysis. Int J Environ Res Public Health. 2019;16:1533.
Google Scholar
García‐Hermoso A, Cerrillo‐Urbina AJ, Herrera‐Valenzuela T, Cristi‐Montero C, Saavedra JM, Martínez‐Vizcaíno V. Is high‐intensity interval training more effective on improving cardiometabolic risk and aerobic capacity than other forms of exercise in overweight and obese youth? A meta‐analysis. Obes Rev. 2016;17:531–40.
Google Scholar
Bond B, Weston KL, Williams CA, Barker AR. Perspectives on high-intensity interval exercise for health promotion in children and adolescents. Open Access J Sport Med. 2017;8:243–65.
Google Scholar
Dias KA, Ingul CB, Tjønna AE, Keating SE, Gomersall SR, Follestad T, et al. Effect of high-intensity interval training on fitness, fat mass and cardiometabolic biomarkers in children with obesity: a randomised controlled trial. Sport Med. 2018;48:733–46.
Google Scholar
Videira-Silva A, Hetherington-Rauth M, Sardinha LB, Fonseca H. Combined high-intensity interval training as an obesity-management strategy for adolescents. Eur J Sport Sci. 2023;23:109–20.
Google Scholar
Lambrick D, Stoner L, Faulkner J. High-intensity interval training (HIIT) or miss: is HIIT the way forward for obese children? Perspect Public Health. 2016;136:335–6.
Google Scholar
Biddle SJ, Batterham AM. High-intensity interval exercise training for public health: a big HIT or shall we HIT it on the head? Int J Behav Nutr Phys Act. 2015;12:95–95.
Google Scholar
Tjønna AE, Stølen TO, Bye A, Volden M, Slørdahl SA, Ødegård R, et al. Aerobic interval training reduces cardiovascular risk factors more than a multitreatment approach in overweight adolescents. Clin Sci. 2009;116:317–26.
Google Scholar
Dias KA, Coombes JS, Green DJ, Gomersall SR, Keating SE, Tjonna AE, et al. Effects of exercise intensity and nutrition advice on myocardial function in obese children and adolescents: a multicentre randomised controlled trial study protocol. BMJ Open. 2016;6:e010929.
Google Scholar
De Onis M, Onyango AW, Borghi E, Siyam A, Nishida C, Siekmann J. Development of a WHO growth reference for school-aged children and adolescents. Bull World Health Organ. 2007;85:660–7.
Google Scholar
Tanaka H, Monahan KD, Seals DR. Age-predicted maximal heart rate revisited. J Am Coll Cardiol. 2001;37:153–6.
Google Scholar
Falkner B, Daniels SR, Flynn JT, Gidding S, Green LA, Ingelfinger JR, et al. The fourth report on the diagnosis, evaluation, and treatment of high blood pressure in children and adolescents. Pediatr. 2004;114:555–76.
Google Scholar
Marshall WA, Tanner JM. Variations in the pattern of pubertal changes in boys. Arch Dis Child. 1970;45:13–23.
Google Scholar
Marshall WA, Tanner JM. Variations in pattern of pubertal changes in girls. Arch Dis Child. 1969;44:291–303.
Google Scholar
Varni JW, Seid M, Kurtin PS. PedsQL 4.0: reliability and validity of the Pediatric Quality of Life Inventory version 4.0 generic core scales in healthy and patient populations. Med Care. 2001;39:800–12.
Google Scholar
Allgaier A-K, Pietsch K, Frühe B, Prast E, Sigl-Glöckner J, Schulte-Körne G, et al. Depression in pediatric care: is the WHO-Five Well-Being Index a valid screening instrument for children and adolescents? Gen Hosp Psychiatry. 2012;34:234–41.
Google Scholar
Topp CW, Østergaard SD, Søndergaard S, Bech P. The WHO-5 well-being index: a systematic review of the literature. Psychother Psychosom. 2015;84:167–76.
Google Scholar
Croker H, Viner RM, Nicholls D, Haroun D, Chadwick P, Edwards C, et al. Family-based behavioural treatment of childhood obesity in a UK national health service setting: randomized controlled trial. Int J Obes. 2012;36:16–26.
Google Scholar
Reinehr T, Lass N, Toschke C, Rothermel J, Lanzinger S, Holl RW. Which amount of BMI-SDS reduction is necessary to improve cardiovascular risk factors in overweight children? J Clin Endocrinol Metab. 2016;101:3171–9.
Google Scholar
Plavsic L, Knezevic OM, Sovtic A, Minic P, Vukovic R, Mazibrada I, et al. Effects of high-intensity interval training and nutrition advice on cardiometabolic markers and aerobic fitness in adolescent girls with obesity. Appl Physiol Nutr Metab. 2020;45:294–300.
Google Scholar
Labayen I, Medrano M, Arenaza L, Maíz E, Osés M, Martínez-Vizcaíno V, et al. Effects of exercise in addition to a family-based lifestyle intervention program on hepatic fat in children with overweight. Diabetes Care. 2020;43:306–13.
Google Scholar
García-Hermoso A, Ramírez-Vélez R, Saavedra JM Exercise, health outcomes, and pædiatric obesity: a systematic review of meta-analyses. Journal of Science and Medicine in Sport. Elsevier Ltd; 2019. 22; p. 76–84.
Nielsen TRH, Fonvig CE, Dahl M, Mollerup PM, Lausten-Thomsen U, Pedersen O, et al. Childhood obesity treatment; Effects on BMI SDS, body composition, and fasting plasma lipid concentrations. PLoS One. 2018;13:1–18.
Google Scholar
Mansur RB, Brietzke E, McIntyre RS. Is there a “metabolic-mood syndrome”? A review of the relationship between obesity and mood disorders. Neurosci Biobehav Rev. 2015;52:89–104.
Google Scholar
Rastogi S, Cadmus-Bertram L, Meyers L. Psychosocial effects of physical activity interventions for preschoolers, children, and adolescents: role of intervention settings. Am J Heal Promot. 2023;37:538–54.
Google Scholar
Goldfield GS, Kenny GP, Alberga AS, Tulloch HE, Doucette S, Cameron JD, et al. Effects of aerobic or resistance training or both on health-related quality of life in youth with obesity: the HEARTY Trial. Appl Physiol Nutr Metab. 2017;42:361–70.
Google Scholar
Stankov I, Olds T, Cargo M. Overweight and obese adolescents: what turns them off physical activity? Int J Behav Nutr Phys Act. 2012;9:53.
Google Scholar
Paponetti MK, Zwolski C, Porter R, Paterno MV. Leveraging the construct of physical literacy to promote physical activity for youth with obesity – A qualitative analysis of physical therapists’ perceptions. Obes Pillars. 2023;5:100054.
Google Scholar
Khammassi M, Miguet M, Julian V, Cardenoux C, Boirie Y, Duclos M, et al. Psycho-physiological responses to a 4-month high-intensity interval training-centered multidisciplinary weight-loss intervention in adolescents with obesity. J Obes Metab Syndr. 2020;29:292–302.
Google Scholar
Daley AJ, Copeland RJ, Wright NP, Roalfe A, Wales JKH. Exercise therapy as a treatment for psychopathologic conditions in obese and morbidly obese adolescents: a randomized, controlled trial. Pediatr. 2006;118:2126–34.
Google Scholar
Basterfield L, Galna B, Burn NL, Batten H, Weston M, Goffe L, et al. Back to “normal”? BMI, physical fitness and health-related quality of life of children from North East England before, during and after the COVID-19 lockdowns. J Sports Sci. 2024;42:688–700.
Google Scholar
Alberga AS, Sigal RJ, Sweet SN, Doucette S, Russell‐Mayhew S, Tulloch H, et al. Understanding low adherence to an exercise program for adolescents with obesity: the HEARTY trial. Obes Sci Pract. 2019;5:437–48.
Google Scholar
Herget S, Reichardt S, Grimm A, Petroff D, Käpplinger J, Haase M, et al. High-intensity interval training for overweight adolescents: program acceptance of a media supported intervention and changes in body composition. Int J Environ Res Public Health. 2016;13:1099.
Guthold R, Stevens GA, Riley LM, Bull FC. Global trends in insufficient physical activity among adolescents: a pooled analysis of 298 population-based surveys with 1·6 million participants. Lancet Child Adolesc Heal. 2020;4:23–35.
Foster C, Moore JB, Singletary CR, Skelton JA. Physical activity and family-based obesity treatment: a review of expert recommendations on physical activity in youth. Clin Obes. 2018;8:68–79.
Google Scholar
Jarnig G, Jaunig J, Kerbl R, Strenger V, Haeusler G, Poppel MNM. Acceleration in BMI gain following COVID‐19 restrictions. A longitudinal study with 7‐ to 10‐year‐old primary school children. Pediatr Obes. 2022;17:e12890.
Google Scholar
Schmidt SCE, Anedda B, Burchartz A, Eichsteller A, Kolb S, Nigg C, et al. Physical activity and screen time of children and adolescents before and during the COVID-19 lockdown in Germany: a natural experiment. Sci Rep. 2020;10:1–12.
Google Scholar
Velde G, Lubrecht J, Arayess L, Loo C, Hesselink M, Reijnders D, et al. Physical activity behaviour and screen time in Dutch children during the COVID‐19 pandemic: Pre‐, during‐ and post‐school closures. Pediatr Obes. 2021;16:e12779.
Google Scholar
Neville RD, Lakes KD, Hopkins WG, Tarantino G, Draper CE, Beck R, et al. Global changes in child and adolescent physical activity during the COVID-19 pandemic: a systematic review and meta-analysis. JAMA Pediatr. 2022;176:886–94.
Google Scholar