Device-measured movement behaviours in over 20,000 China Kadoorie Biobank participants

生命银行 医学 体力活动 行为科学 描述性统计 前瞻性队列研究 人口学 物理疗法 老年学 心理学 内科学 遗传学 数学 生物 统计 社会学 心理治疗师
作者
Yuanyuan Chen,Shing Chan,Derrick Bennett,Xiaofang Chen,Xianping Wu,Yalei Ke,Jun Lv,Dianjianyi Sun,Lang Pan,Pei Pei,Ling Yang,Yiping Chen,Junshi Chen,Zhengming Chen,Liming Li,Huaidong Du,Canqing Yu,Aiden Doherty
出处
期刊:International Journal of Behavioral Nutrition and Physical Activity [BioMed Central]
卷期号:20 (1) 被引量:6
标识
DOI:10.1186/s12966-023-01537-8
摘要

Abstract Background Movement behaviours, including physical activity, sedentary behaviour, and sleep have been shown to be associated with several chronic diseases. However, they have not been objectively measured in large-scale prospective cohort studies in low-and middle-income countries. We aim to describe the patterns of device-measured movement behaviours collected in the China Kadoorie Biobank (CKB) study. Methods During 2020 and 2021, a random subset of 25,087 surviving CKB individuals participated in the 3 rd resurvey of the CKB. Among them, 22,511 (89.7%) agreed to wear an Axivity AX3 wrist-worn triaxial accelerometer for seven consecutive days to assess their habitual movement behaviours. We developed a machine-learning model to infer time spent in four movement behaviours [i.e. sleep, sedentary behaviour, light intensity physical activity (LIPA), and moderate-to-vigorous physical activity (MVPA)]. Descriptive analyses were performed for wear-time compliance and patterns of movement behaviours by different participant characteristics. Results Data from 21,897 participants (aged 65.4 ± 9.1 years; 35.4% men) were received for demographic and wear-time analysis, with a median wear-time of 6.9 days (IQR: 6.1–7.0). Among them, 20,370 eligible participants were included in movement behavior analyses. On average, they had 31.1 mg/day (total acceleration) overall activity level, accumulated 7.7 h/day (32.3%) of sleep time, 8.8 h/day (36.6%) sedentary, 5.7 h/day (23.9%) in light physical activity, and 104.4 min/day (7.2%) in moderate-to-vigorous physical activity. There was an inverse relationship between age and overall acceleration with an observed decline of 5.4 mg/day (17.4%) per additional decade. Women showed a higher activity level than men (32.3 vs 28.8 mg/day) and there was a marked geographical disparity in the overall activity level and time allocation. Conclusions This is the first large-scale accelerometer data collected among Chinese adults, which provides rich and comprehensive information about device-measured movement behaviour patterns. This resource will enhance our knowledge about the potential relevance of different movement behaviours for chronic disease in Chinese adults.

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