Systematic estimation of BMI: A novel insight into predicting overweight/obesity in undergraduates.


Journal

Medicine
ISSN: 1536-5964
Titre abrégé: Medicine (Baltimore)
Pays: United States
ID NLM: 2985248R

Informations de publication

Date de publication:
May 2019
Historique:
entrez: 25 5 2019
pubmed: 28 5 2019
medline: 31 5 2019
Statut: ppublish

Résumé

The prevalence of overweight-obesity has increased sharply among undergraduates worldwide. In 2016, approximately 52% of adults were overweight-obese. This cross-sectional study aimed to investigate the prevalence of overweight-obesity and explore in depth the connection between eating habits and overweight-obesity among Chinese undergraduates.The study population included 536 undergraduates recruited in Shijiazhuang, China, in 2017. They were administered questionnaires for assessing demographic and daily lifestyle characteristics, including sex, region, eating speed, number of meals per day, and sweetmeat habit. Anthropometric status was assessed by calculating the body mass index (BMI). The determinants of overweight-obesity were investigated by the Pearson χ test, Spearman rho test, multivariable linear regression, univariate/multivariate logistic regression, and receiver operating characteristic curve analysis.The prevalence of undergraduate overweight-obesity was 13.6%. Sex [male vs female, odds ratio (OR): 1.903; 95% confidence interval (95% CI): 1.147-3.156], region (urban vs rural, OR: 1.953; 95% CI: 1.178-3.240), number of meals per day (3 vs 2, OR: 0.290; 95% CI: 0.137-0.612), and sweetmeat habit (every day vs never, OR: 4.167; 95% CI: 1.090-15.933) were significantly associated with overweight-obesity. Eating very fast was positively associated with overweight-obesity and showed the highest OR (vs very slow/slow, OR: 5.486; 95% CI: 1.622-18.553). However, the results of multivariate logistic regression analysis indicated that only higher eating speed is a significant independent risk factor for overweight/obesity (OR: 17.392; 95% CI, 1.614-187.363; P = .019).Scoremeng = 1.402 × scoresex + 1.269 × scoreregion + 19.004 × scoreeatin speed + 2.546 × scorenumber of meals per day + 1.626 × scoresweetmeat habit and BMI = 0.253 × Scoremeng + 18.592. These 2 formulas can help estimate the weight status of undergraduates and predict whether they will be overweight or obese.

Identifiants

pubmed: 31124981
doi: 10.1097/MD.0000000000015810
pii: 00005792-201905240-00057
pmc: PMC6571404
doi:

Types de publication

Journal Article

Langues

eng

Sous-ensembles de citation

IM

Pagination

e15810

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Auteurs

Meng-Jie Shan (MJ)

Peking Union Medical College and Chinese Academy of Medical Sciences.

Yang-Fan Zou (YF)

Department of Neurosurgery, Affiliated Navy Clinical College of Anhui Medical University.

Peng Guo (P)

Department of Orthopedics, The Fourth Hospital of Hebei Medical University.

Jia-Xu Weng (JX)

School of Basic Medical Sciences, Hebei Medical University, Shijiazhuang, Hebei.

Qing-Qing Wang (QQ)

Department of Biotherapy, Tianjin Medical University Cancer Institute and Hospital, Tianjin.

Ya-Lun Dai (YL)

Epidemiology Department, Beijing Hospital, National Center of Gerontology, Beijing.

Hui-Bin Liu (HB)

Department of Surgery, Rugao Motou Hospital, Nantong, Jiangsu.

Yuan-Meng Zhang (YM)

Internal Medicine Department, Jinzhou Medical University, Jinzhou, Liaoning.

Guan-Yin Jiang (GY)

School of Basic Medical Sciences, Hebei Medical University, Shijiazhuang, Hebei.

Qi Xie (Q)

Department of Nutrition and Diet, the Fourth Hospital of Hebei Medical University, Shijiazhuang, Hebei Province.

Ling-Bing Meng (LB)

Neurology Department, Beijing Hospital, National Center of Gerontology, Beijing, P. R. China.

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