Insufficient Physical Fitness and Deficits in Basic Eating Habits in Normal-Weight Obese Children Are Apparent from Pre-School Age or Sooner
Jazyk angličtina Země Švýcarsko Médium electronic
Typ dokumentu časopisecké články
PubMed
34684465
PubMed Central
PMC8538680
DOI
10.3390/nu13103464
PII: nu13103464
Knihovny.cz E-zdroje
- Klíčová slova
- eating habits, normal-weight obesity, physical fitness, preschool age children,
- MeSH
- cvičení MeSH
- dítě MeSH
- lidé MeSH
- obezita dětí a dospívajících epidemiologie etiologie MeSH
- ochrana veřejného zdraví MeSH
- předškolní dítě MeSH
- průřezové studie MeSH
- průzkumy a dotazníky MeSH
- školy MeSH
- stravovací zvyklosti * MeSH
- tělesná hmotnost * MeSH
- tělesná výkonnost * MeSH
- Check Tag
- dítě MeSH
- lidé MeSH
- mužské pohlaví MeSH
- předškolní dítě MeSH
- ženské pohlaví MeSH
- Publikační typ
- časopisecké články MeSH
Normal-weight obesity appears to be an extended diagnosis/syndrome associated with insufficient physical fitness levels and inadequate eating habits at least from school years. However, its relation to long term health parameters in pre-school children remains unknown, even though pre-school age is crucial for the determining healthy lifelong habits. Therefore, the aim of the current study was to investigate the differences in physical fitness level and basic eating habits between normal-weight obese, normal-weight non-obese, and overweight and obese preschoolers. The research sample consisted of 188 preschoolers aged 4.0-6.9 years (Mage = 5.52 ± 0.8 year), normal-weight obese = 25; normal-weight non-obese = 143, overweight and obese = 20. Body composition was measured using bio-impedance InBody230. Six tests assessed the physical fitness level: sit-ups; standing long jump; shuttle running 4 × 5 meters; throwing with a tennis ball; multistage fitness tests; sit and reach. A four-item eating habits questionnaire for parents focusing on breakfast regularity, consumption of sweet foods and drinks, selection of food and attitude towards eating was used. A non-parametric analysis of variance and Fisher's exact test along with suitable effect sizes were used for data processing of physical fitness tests and the basic eating habits questionnaire, respectively. Normal-weight obese children performed significantly worse (from p = 0.03 to p < 0.001, ES ω2-G = low to medium) in muscular fitness, cardiorespiratory fitness and running agility compared to normal-weight non-obese counterparts and did not significantly differ in the majority of physical fitness performance tests from overweight and obese peers. In basic eating habits, normal-weight obese boys preferred significantly more sweet foods and drinks (p = 0.003 ES = 0.35, large), while normal-weight obese girls had significantly more negative attitude towards eating (p = 0.002 ES = 0.33, large) in comparison to their normal-weight non-obese peers. Normal-weight obesity seems to develop from early childhood and is associated with low physical fitness and deficits in eating habits which might inhibit the natural necessity for physically active life from pre-school age or sooner.
Faculty of Science Charles University Albertov 6 128 00 Praha 2 Czech Republic
Pedagogical Faculty Charles University Magdalény Rettigové 47 4 110 00 Praha 1 Czech Republic
Zobrazit více v PubMed
Oliveros E., Somers V.K., Sochor O., Goel K., Lopez-Jimenez F. The concept of normal weight obesity. Prog. Cardiovasc. Dis. 2014;56:426–433. doi: 10.1016/j.pcad.2013.10.003. PubMed DOI
Wijayatunga N.N., Dhurandhar E.J. Normal weight obesity and unaddressed cardiometabolic health risk—A narrative review. Int. J. Obes. 2021;45:2141–2155. doi: 10.1038/s41366-021-00858-7. PubMed DOI
Bellissimo M.P., Cai Q., Ziegler T.R., Liu K.H., Tran P.H., Vos M.B., Martin G.S., Jones D.P., Yu T., Alvarez J.A. Plasma High-Resolution Metabolomics Differentiates Adults with Normal Weight Obesity from Lean Individuals. Obesity. 2019;27:1729–1737. doi: 10.1002/oby.22654. PubMed DOI PMC
Madeira F.B., Silva A.A., Veloso H.F., Goldani M.Z., Kac G., Cardoso V.C., Bettiol H., Barbieri M.A. Normal weight obesity is associated with metabolic syndrome and insulin resistance in young adults from a middle-income country. PLoS ONE. 2013;8:e60673. doi: 10.1371/journal.pone.0060673. PubMed DOI PMC
Franco L.P., Morais C.C., Cominetti C. Normal-weight obesity syndrome: Diagnosis, prevalence, and clinical implications. Nutr. Rev. 2016;74:558–570. doi: 10.1093/nutrit/nuw019. PubMed DOI
Correa-Rodríguez M., González-Ruíz K., Rincón-Pabón D., Izquierdo M., García-Hermoso A., Agostinis-Sobrinho C., Sánchez-Capacho N., Roa-Cubaque M.A., Ramírez-Vélez R. Normal-weight obesity is associated with increased cardiometabolic risk in young adults. Nutrients. 2020;12:1106. doi: 10.3390/nu12041106. PubMed DOI PMC
Reza A., Mohammad Parohan M., Jomehzadeh N., Mohammad Hossein Haghighizadeh M.H. Dietary and biochemical characteristics associated with normal-weight obesity. Int. J. Vitam. Nutr. Res. 2019;89:331–336. PubMed
Ortega F.B., Ruiz J.R., Castillo M.J., Sjöström M. Physical fitness in childhood and adolescence: A powerful marker of health. Int. J. Obes. 2008;32:1–11. doi: 10.1038/sj.ijo.0803774. PubMed DOI
Dwyer T., Magnussen C.G., Schmidt M.D., Ukoumunne O.C., Ponsonby A.L., Raitakari O.T., Zimmet P.Z., Blair S.N., Thomson R., Cleland V.J., et al. Decline in physical fitness from childhood to adulthood associated with increased obesity and insulin resistance in adults. Diabetes Care. 2009;32:683–687. doi: 10.2337/dc08-1638. PubMed DOI PMC
Lang J.J., Larouche R., Tremblay M.S. The association between physical fitness and health in a nationally representative sample of Canadian children and youth aged 6 to 17 years. Mal. Chron. Blessures Can. 2019;39:104–111. doi: 10.24095/hpcdp.39.3.02. PubMed DOI PMC
Kao S.C., Westfall D.R., Parks A.C., Pontifex M.B., Hillman C.H. Muscular and aerobic fitness, working memory, and academic achievement in children. Med. Sci. Sports Exerc. 2017;49:500–508. doi: 10.1249/MSS.0000000000001132. PubMed DOI
Martinez-Tellez B., Sanchez-Delgado G., Cadenas-Sanchez C., Mora-Gonzalez J., Martín-Matillas M., Löf M., Ortega F.B., Ruiz J.R. Health-related physical fitness is associated with total and central body fat in preschool children aged 3 to 5 years. Pediatr. Obes. 2016;11:468–474. doi: 10.1111/ijpo.12088. PubMed DOI
Dencker M., Andersen L.B. Accelerometer-measured daily physical activity related to aerobic fitness in children and adolescents. J. Sports Sci. 2011;29:887–895. doi: 10.1080/02640414.2011.578148. PubMed DOI
Draper C.E., Achmat M., Forbes J., Lambert E.V. Impact of a community-based programme for motor development on gross motor skills and cognitive function in preschool children from disadvantaged settings. Early Child Dev. Care. 2012;182:137–152. doi: 10.1080/03004430.2010.547250. DOI
Boreham C., Riddoch C. The physical activity, fitness and health of children. J. Sports Sci. 2001;19:915–929. doi: 10.1080/026404101317108426. PubMed DOI
García-Hermoso A., Ramírez-Campillo R., Izquierdo M. Is muscular fitness associated with future health benefits in children and adolescents? A systematic review and meta-analysis of longitudinal studies. Sports Med. 2019;49:1079–1094. doi: 10.1007/s40279-019-01098-6. PubMed DOI
Sedlak P., Pařízková J., Daniš R., Dvořáková H., Vignerová J. Secular changes of adiposity and motor development in Czech preschool children: Lifestyle changes in fifty-five year retrospective study. BioMed Res. Int. 2015;2015:823841. doi: 10.1155/2015/823841. PubMed DOI PMC
Sedlak P., Pařízková J., Samešová D., Musálek M., Dvořáková H., Novák J. Secular Changes in Body Build and Body Composition in Czech Preschool Children in the Context of Latent Obesity. Children. 2021;8:18. doi: 10.3390/children8010018. PubMed DOI PMC
Guimarey L.M., Castro L.E., Torres M.F., Cesani M.F., Luis M.A., Quintero F.A., Oyhenart E.E. Secular changes in body size and body composition in schoolchildren from La Plata City (Argentina) Anthropol. Anz. 2014;71:287–301. doi: 10.1127/0003-5548/2014/0364. PubMed DOI
Musalek M., Kokstejn J., Papez P., Scheffler C., Mumm R., Czernitzki A.F., Koziel S. Impact of normal weight obesity on fundamental motor skills in pre-school children aged 3 to 6 years. Anthropol. Anz. 2017;74:203–212. doi: 10.1127/anthranz/2017/0752. PubMed DOI
Musálek M., Pařízková J., Godina E., Bondareva E., Kokštejn J., Jírovec J., Vokounová Š. Poor skeletal robustness on lower extremities and weak lean mass development on upper arm and calf: Normal weight obesity in middle-school-aged children (9 to 12) Front. Pediatr. 2018;6:371. doi: 10.3389/fped.2018.00371. PubMed DOI PMC
Wiklund P., Törmäkangas T., Shi Y., Wu N., Vainionpää A., Alen M., Cheng S. Normal-weight obesity and cardiometabolic risk: A 7-year longitudinal study in girls from prepuberty to early adulthood. Obesity. 2017;25:1077–1082. doi: 10.1002/oby.21838. PubMed DOI
García-Hermoso A., Agostinis-Sobrinho C., Camargo-Villalba G.E., González-Jiménez N.M., Izquierdo M., Correa-Bautista J.E., Ramírez-Vélez R. Normal-weight obesity is associated with poorer cardiometabolic profile and lower physical fitness levels in children and adolescents. Nutrients. 2020;12:1171. doi: 10.3390/nu12041171. PubMed DOI PMC
Olafsdottir A.S., Torfadottir J.E., Arngrimsson S.A. Health behavior and metabolic risk factors associated with normal weight obesity in adolescents. PLoS ONE. 2016;11:e0161451. doi: 10.1371/journal.pone.0161451. PubMed DOI PMC
Cota B.C., Suhett L.G., Leite N.N., Pereira P.F., Ribeiro S.A., Franceschini S.D.C.C. Cardiometabolic risk and health behaviours in adolescents with normal-weight obesity: A systematic review. Public Health Nutr. 2021;24:870–881. doi: 10.1017/S1368980020004863. PubMed DOI PMC
Musálek M., Clark C.C., Kokštejn J., Vokounova Š., Hnízdil J., Mess F. Impaired Cardiorespiratory Fitness and Muscle Strength in Children with Normal-Weight Obesity. Int. J. Environ. Res. Public Health. 2020;17:9198. doi: 10.3390/ijerph17249198. PubMed DOI PMC
Naude C.E., Visser M.E., Nguyen K.A., Durao S., Schoonees A. Effects of total fat intake on bodyweight in children. Cochrane Database Syst. Rev. 2018 doi: 10.1002/14651858.CD012960. PubMed DOI PMC
Männistö S., Harald K., Kontto J., Lahti-Koski M., Kaartinen N.E., Saarni S.E., Kanerva N., Jousilahti P. Dietary and lifestyle characteristics associated with normal-weight obesity: The National FINRISK 2007 Study. Br. J. Nutr. 2014;111:887–894. doi: 10.1017/S0007114513002742. PubMed DOI
Yuko M., Yokota S., Horita S., Shimomura K. Early life high-fat diet exposure evokes normal weight obesity. Nutr. Metab. 2020;17:48. PubMed PMC
Von Elm E., Altman D.G., Egger M., Pocock S.J., Gøtzsche P.C., Vandenbroucke J.P. Strobe Initiative. The Strengthening the Reporting of Observational Studies in Epidemiology (STROBE) Statement: Guidelines for reporting observational studies. Int. J. Surg. 2014;12:1495–1499. doi: 10.1016/j.ijsu.2014.07.013. PubMed DOI
Martin R., Saller K. Lehrbuch der Anthropologie, in Systematischer Darstellung. Fischer Verlag; Stuttgart, Germany: 1957.
Eston R., Reilly T., editors. Kinanthropometry and Exercise Physiology Laboratory Manual. Volume 1: Anthropometry. 3rd ed. Taylor and Francis Group; London, UK: New York, NY, USA: 2009.
[(accessed on 22 September 2021)]; Available online: https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5291432/
Xiao J., Purcell S.A., Prado C.M., Gonzalez M.C. Fat mass to fat-free mass ratio reference values from NHANES III using bioelectrical impedance analysis. Clin. Nutr. 2018;37:2284–2287. doi: 10.1016/j.clnu.2017.09.021. PubMed DOI
Parızková J., Sedlak P., Dvorakova H., Lisá L., Bláha P. Secular trends of adiposity and motor abilities in preschool children. Obes. Weight Loss Ther. 2012;2:153. doi: 10.4172/2165-7904.1000153. DOI
Milosevic V., Petrovic A. Reliability of field-based tests for monitoring and assessing physical fitness in preschool children. Serb. J. Sports Sci. 2015;9:20–26.
Cadenas-Sanchez C., Martinez-Tellez B., Sanchez-Delgado G., Mora-Gonzalez J., Castro-Piñero J., Löf M., Ruiz J.R., Ortega F.B. Assessing physical fitness in preschool children: Feasibility, reliability and practical recommendations for the PREFIT battery. J. Sci. Med. Sport. 2016;19:910–915. doi: 10.1016/j.jsams.2016.02.003. PubMed DOI
Ernst M.P., Corbin C.B., Beighle A., Pangrazi R.P. Appropriate and inappropriate uses of FITNESSGRAM®: A commentary. J. Phys. Act. Health. 2006;3:S90–S100. doi: 10.1123/jpah.3.s2.s90. DOI
Morrow J.R., Jr., Martin S.B., Jackson A.W. Reliability and validity of the FITNESSGRAM®: Quality of teacher-collected health-related fitness surveillance data. Res. Q. Exerc. Sport. 2010;81((Suppl. S3)):S24–S30. doi: 10.1080/02701367.2010.10599691. PubMed DOI
Cadenas-Sanchez C., Alcántara-Moral F., Sanchez-Delgado G., Mora-Gonzalez J., Martinez-Tellez B., Herrador-Colmenero M., Jimenez-Pavon D., Femia P., Ruiz J.R., Ortega F.B. Assessment of cardiorespiratory fitness in preschool children: Adaptation of the 20 metres shuttle run test. Nutr. Hosp. 2014;30:1333–1343. PubMed
Bláha P. Anthropometry of Czech Preschool Age Children in Age Range from 3 to 6 Years. Institute of Sport Medicine; Prague, Czech Republic: 1990.
Vignerová J., Riedlová J., Bláha P., Kobzová J., Krejčovský L., Brabec M., Hrušková M. Souhrnné Výsledky. 6th Nation-Wide Anthropological Survey of Children and Adolescents 2001 Czech Republic. Summary Results. PřF UK v Praze; Praha, Czech Republic: 2006. 6. Celostátní antropologický výzkum dětí a mládeže 2001 Česká republika.
Cole T.J., Lobstein T. Extended international (IOTF) body mass index cut-offs for thinness, overweight and obesity. Pediatr. Obes. 2012;7:284–294. doi: 10.1111/j.2047-6310.2012.00064.x. PubMed DOI
Kopecký M. Somatotyp a Motorická Výkonnost 7–15 Letých Chlapců a Dívek (Somatotype and Physical Fitness of Seven to Fifteen Years Old Boys and Gilrs) Univerzita Palackého v Olomouci; Olomouc, Czechia: 2011.
Marques-Vidal P., Pécoud A., Hayoz D., Paccaud F., Mooser V., Waeber G., Vollenweider P. Normal weight obesity: Relationship with lipids, glycaemic status, liver enzymes and inflammation. Nutr. Metab. Cardiovasc. Dis. 2010;20:669–675. doi: 10.1016/j.numecd.2009.06.001. PubMed DOI
Kunešová M., Procházka B., Taxová Braunerová R., Metelcová T., Vodrážková N., Vignerová J., Zamrazilová H., Pařízková J., Hill M., Šteflová A. Prevalence nadváhy a obezity u sedmiletých dětí v ČR (COSI ČR), vztah k rozložení tukové tkáně. Czecho-Slovak Pediatr./Cesko-Slovenska Pediatr. 2019;74:77–80.
Olejnik S., Algina J. Generalized eta and omega squared statistics: Measures of effect size for some common research designs. Psychol. Methods. 2003;8:434. doi: 10.1037/1082-989X.8.4.434. PubMed DOI
Kirk R.E. Practical significance: A concept whose time has come. Educ. Psychol. Meas. 1996;56:746–759. doi: 10.1177/0013164496056005002. DOI
Cremér H. Mathematical Methods of Statistics. Princeton University Press; Princeton, NJ, USA: 1946. Chapter 21. The two-dimensional case; p. 282.
R Core Team . R: A Language and Environment for Statistical Computing. R Foundation for Statistical Computing; Vienna, Austria: 2020. Version 4.0.2.
The Jamovi Project Jamovi. 2021. [(accessed on 22 September 2021)]. (Version 1.6). [Computer Software] Available online: https://www.jamovi.org.
Hintze J. NCSS 2007. NCSS; LLC; Kaysville, UT, USA: 2007. [(accessed on 22 September 2021)]. Available online: www.ncss.com.
Ramírez-Vélez R., Carrillo H.A., Correa-Bautista J.E., Schmidt-RioValle J., González-Jiménez E., Correa-Rodríguez M., González-Ruíz K., García-Hermoso A. Fat-to-muscle ratio: A new anthropometric indicator as a screening tool for metabolic syndrome in young Colombian people. Nutrients. 2018;10:1027. doi: 10.3390/nu10081027. PubMed DOI PMC
Chen Y.Y., Fang W.H., Wang C.C., Kao T.W., Yang H.F., Wu C.J., Sun Y.S., Wang Y.C., Chen W.L. Fat-to-muscle ratio is a useful index for cardiometabolic risks: A population-based observational study. PLoS ONE. 2019;14:e0214994. doi: 10.1371/journal.pone.0214994. PubMed DOI PMC
Seo Y.G., Song H.J., Song Y.R. Fat-to-muscle ratio as a predictor of insulin resistance and metabolic syndrome in Korean adults. J. Cachexia Sarcopenia Muscle. 2020;11:710–725. doi: 10.1002/jcsm.12548. PubMed DOI PMC
Lima R.A., Bugge A., Ersbøll A.K., Stodden D.F., Andersen L.B. The longitudinal relationship between motor competence and measures of fatness and fitness from childhood into adolescence☆. J. Pediatr. 2019;95:482–488. doi: 10.1016/j.jped.2018.02.010. PubMed DOI
Bremer E., Cairney J. Fundamental movement skills and health-related outcomes: A narrative review of longitudinal and intervention studies targeting typically developing children. Am. J. Lifestyle Med. 2018;12:148–159. doi: 10.1177/1559827616640196. PubMed DOI PMC
Barnett L.M., Stodden D., Cohen K.E., Smith J.J., Lubans D.R., Lenoir M., Iivonen S., Miller A.D., Laukkanen A., Dudley D., et al. Fundamental movement skills: An important focus. J. Teach. Phys. Educ. 2016;35:219–225. doi: 10.1123/jtpe.2014-0209. DOI
Fang H., Quan M., Zhou T., Sun S., Zhang J., Zhang H., Cao Z., Zhao G., Wang R., Chen P. Relationship between physical activity and physical fitness in preschool children: A cross-sectional study. BioMed Res. Int. 2017;2017:9314026. doi: 10.1155/2017/9314026. PubMed DOI PMC
Latorre-Román P.A., Mora-López D., García-Pinillos F. Effects of a physical activity programme in the school setting on physical fitness in preschool children. Child Care Health Dev. 2018;44:427–432. doi: 10.1111/cch.12550. PubMed DOI
Frith E., Loprinzi P.D. Association between Motor Skills and Musculoskeletal Physical Fitness among Preschoolers. Matern. Child Health J. 2019;23:1003–1007. doi: 10.1007/s10995-019-02753-0. PubMed DOI
Reisberg K., Riso E.M., Jürimäe J. Associations between physical activity, body composition, and physical fitness in the transition from preschool to school. Scand. J. Med. Sci. Sports. 2020;30:2251–2263. doi: 10.1111/sms.13784. PubMed DOI
Niederer I., Kriemler S., Zahner L., Bürgi F., Ebenegger V., Marques-Vidal P., Puder J.J. BMI group-related differences in physical fitness and physical activity in preschool-age children: A cross-sectional analysis. Res. Q. Exerc. Sport. 2012;83:12–19. doi: 10.1080/02701367.2012.10599820. PubMed DOI
Wyszyńska J., Matłosz P., Szybisty A., Lenik P., Dereń K., Mazur A., Herbert J. Obesity and body composition in preschool children with different levels of actigraphy-derived physical activity—A cross-sectional study. J. Clin. Med. 2020;9:1210. doi: 10.3390/jcm9041210. PubMed DOI PMC
Bornstein D.B., Beets M.W., Byun W., McIver K. Accelerometer-derived physical activity levels of preschoolers: A meta-analysis. J. Sci. Med. Sport. 2011;14:504–511. doi: 10.1016/j.jsams.2011.05.007. PubMed DOI
Nilsen A.K.O., Anderssen S.A., Ylvisaaker E., Johannessen K., Aadland E. Physical activity among Norwegian preschoolers varies by sex, age, and season. Scand. J. Med. Sci. Sports. 2019;29:862–873. doi: 10.1111/sms.13405. PubMed DOI
Nier A., Brandt A., Baumann A., Conzelmann I.B., Özel Y., Bergheim I. Metabolic abnormalities in normal weight children are associated with increased visceral fat accumulation, elevated plasma endotoxin levels and a higher monosaccharide intake. Nutrients. 2019;11:652. doi: 10.3390/nu11030652. PubMed DOI PMC
Kosova E.C., Auinger P., Bremer A.A. The relationships between sugar-sweetened beverage intake and cardiometabolic markers in young children. J. Acad. Nutr. Diet. 2013;113:219–227. doi: 10.1016/j.jand.2012.10.020. PubMed DOI PMC
Fajstova A., Galanova N., Coufal S., Malkova J., Kostovcik M., Cermakova M., Pelantova H., Kuzma M., Sediva B., Hudcovic T., et al. Diet Rich in Simple Sugars Promotes Pro-Inflammatory Response via Gut Microbiota Alteration and TLR4 Signaling. Cells. 2020;9:2701. doi: 10.3390/cells9122701. PubMed DOI PMC
Fischer C.P., Berntsen A., Perstrup L.B., Eskildsen P., Pedersen B.K. Plasma levels of interleukin-6 and C-reactive protein are associated with physical inactivity independent of obesity. Scand. J. Med. Sci. Sports. 2007;17:580–587. doi: 10.1111/j.1600-0838.2006.00602.x. PubMed DOI
Hong H.R., Ha C.D., Jin Y.Y., Kang H.S. The effect of physical activity on serum IL-6 and vaspin levels in late elementary school children. J. Exerc. Nutr. Biochem. 2015;19:99. doi: 10.5717/jenb.2015.15060507. PubMed DOI PMC
Han Y., Liu Y., Zhao Z., Zhen S., Chen J., Ding N., Ma Y., Wen D. Does physical activity-based intervention improve systemic proinflammatory cytokine levels in overweight or obese children and adolescents? Insights from a meta-analysis of randomized control trials. Obes. Facts. 2019;12:653–668. doi: 10.1159/000501970. PubMed DOI PMC
Van Opstal A.M., Hafkemeijer A., van den Berg-Huysmans A.A., Hoeksma M., Mulder T.P., Pijl H., Rombouts S.A., van der Grond J. Brain activity and connectivity changes in response to nutritive natural sugars, non-nutritive natural sugar replacements and artificial sweeteners. Nutr. Neurosci. 2021;24:395–405. doi: 10.1080/1028415X.2019.1639306. PubMed DOI