Exercise in Obesity—the Role of Technology in Health Services: Can This Approach Work?

1.

Guthold R, Stevens GA, Riley LM, Bull FC. Worldwide trends in insufficient physical activity from 2001 to 2016: a pooled analysis of 358 population-based surveys with 1·9 million participants. Lancet Glob Health. 2018;6:e1077–86.

Google Scholar 

2.

Global Physical Activity Action Plan 2018–2030.

3.

Bull FC, Al-Ansari SS, Biddle S, et al. World Health Organization 2020 guidelines on physical activity and sedentary behaviour. Br J Sports Med. 2020;54:1451–62.

PubMed  PubMed Central  Google Scholar 

4.

Kissler HJ, Settmacher U. Bariatric surgery to treat obesity. Semin Nephrol. 2013;33:75–89.

PubMed  Google Scholar 

5.

Shaw K, Gennat H, O'Rourke P, Del Mar C. Exercise for overweight or obesity. Cochrane Database Syst Rev. 2006:CD003817.

6.

Victoria AC. The role of physical activity in producing and maintaining weight loss. Nat Clin Pract Endocrinol Metab. 2007;176:139–48.

Google Scholar 

7.

Foster-Schubert KE, Alfano CM, Duggan CR, et al. Effect of diet and exercise, alone or combined, on weight and body composition in overweight-to-obese postmenopausal women. Obesity. 2012;20:1628–38.

CAS  PubMed  Google Scholar 

8.

Gao Z, Lee JE. Emerging technology in promoting physical activity and health: challenges and opportunities. J Clin Med. 2019;8.

9.

Carbone S, Del Buono MG, Ozemek C, Lavie CJ. Obesity, risk of diabetes and role of physical activity, exercise training and cardiorespiratory fitness. Prog Cardiovasc Dis. 2019;62:327–33.

PubMed  Google Scholar 

10.

Morris JNHJ, Raffle PA, Roberts CG, Parks JW. Coronary heart-disease and physical activity of work. Lancet. 1953;262:1053–7.

CAS  PubMed  Google Scholar 

11.

Chin SH, Kahathuduwa CN, Binks M. Physical activity and obesity: what we know and what we need to know. Obes Rev. 2016;17:1226–44.

PubMed  Google Scholar 

12.

Wen CP, Wai JPM, Tsai MK, et al. Minimum amount of physical activity for reduced mortality and extended life expectancy: a prospective cohort study. The Lancet. 2011;378:1244–53.

Google Scholar 

13.

Gao L. Emerging technology in promoting physical activity and health: challenges and opportunities. J Clin Med. 2019;8:1830.

PubMed Central  Google Scholar 

14.

Gordon PM, Heath GW, Holmes A, Christy D. The quantity and quality of physical activity among those trying to lose weight. Am J Prev Med. 2000;18:83–6.

CAS  PubMed  Google Scholar 

15.

Cheatham SW, Stull KR, Fantigrassi M, Motel I. The efficacy of wearable activity tracking technology as part of a weight loss program: a systematic review. J Sports Med Phys Fitness. 2018;58:534–48.

PubMed  Google Scholar 

16.

Hutchesson MJ, Rollo ME, Krukowski R, et al. eHealth interventions for the prevention and treatment of overweight and obesity in adults: a systematic review with meta-analysis. Obes Rev. 2015;16:376–92.

CAS  PubMed  Google Scholar 

17.

Patel ML, Wakayama LN, Bennett GG. Self-monitoring via digital health in weight loss interventions: a systematic review among adults with overweight or obesity. Obesity (Silver Spring). 2021;29:478–99.

Google Scholar 

18.

Michie S, Richardson M, Johnston M, et al. The behavior change technique taxonomy (v1) of 93 hierarchically clustered techniques: building an international consensus for the reporting of behavior change interventions. Ann Behav Med. 2013;46:81–95.

PubMed  Google Scholar 

19.

Carels RA, Darby LA, Rydin S, et al. The relationship between self-monitoring, outcome expectancies, difficulties with eating and exercise, and physical activity and weight loss treatment outcomes. Ann Behav Med. 2005;30:182–90.

PubMed  Google Scholar 

20.

Helsel DL, Jakicic JM, Otto AD. Comparison of techniques for self-monitoring eating and exercise behaviors on weight loss in a correspondence-based intervention. J Am Diet Assoc. 2007;107:1807–10.

PubMed  Google Scholar 

21.

Burke LE, Wang J, Sevick MA. Self-monitoring in weight loss: a systematic review of the literature. J Am Diet Assoc. 2011;111:92–102.

PubMed  PubMed Central  Google Scholar 

22.

Piwek L, Ellis DA, Andrews S, Joinson A. The rise of consumer health wearables: promises and barriers. PLoS Med. 2016;13:e1001953.

23.

Patel MS, Asch DA, Volpp KG. Wearable devices as facilitators, not drivers, of health behavior change. JAMA. 2015;313:459–60.

CAS  PubMed  Google Scholar 

24.

Fawcett E, Van Velthoven MH, Meinert E. Long-term weight management using wearable technology in overweight and obese adults: systematic review. JMIR Mhealth Uhealth. 2020;8:e13461.

25.

Hartman SJ, Nelson SH, Cadmus-Bertram LA, et al. Technology- and phone-based weight loss intervention: pilot RCT in women at elevated breast cancer risk. Am J Prev Med. 2016;51:714–21.

PubMed  PubMed Central  Google Scholar 

26.

Butryn MLPS, Hill JO, Wing RR. Consistent self-monitoring of weight: a key component of successful weight loss maintenance. Obesity. 2007;15:3091–6.

PubMed  Google Scholar 

27.

Riffenburg KM, Spartano NL. Physical activity and weight maintenance: the utility of wearable devices and mobile health technology in research and clinical settings. Curr Opin Endocrinol Diabetes Obes. 2018;25:310–4.

PubMed  Google Scholar 

28.

Martin CK, Miller AC, Thomas DM, et al. Efficacy of SmartLoss, a smartphone-based weight loss intervention: results from a randomized controlled trial. Obesity (Silver Spring). 2015;23:935–42.

Google Scholar 

29.

Effect of Fitbit and iPad wearable technology in health-related quality of life in adolescent and young adult cancer patients. J Adolescent and Young Adult Oncol. 2018;7:579–583.

30.

Karapanos E, Gouveia R, Hassenzahl M, Forlizzi J. Wellbeing in the making: peoples’ experiences with wearable activity trackers. Psychol Well Being. 2016;6:4.

PubMed  PubMed Central  Google Scholar 

31.

Bentley CL, Otesile O, Bacigalupo R, et al. Feasibility study of portable technology for weight loss and HbA1c control in type 2 diabetes. BMC Med Inform Decis Mak. 2016;16:92.

PubMed  PubMed Central  Google Scholar 

32.

Lyons EJ, Swartz MC, Lewis ZH, et al. Feasibility and acceptability of a wearable technology physical activity intervention with telephone counseling for mid-aged and older adults: a randomized controlled pilot trial. JMIR Mhealth Uhealth. 2017;5:e28.

33.

Mercer K, Giangregorio L, Schneider E, et al. Acceptance of commercially available wearable activity trackers among adults aged over 50 and with chronic illness: a mixed-methods evaluation. JMIR Mhealth Uhealth. 2016;4:e7.

34.

•• Finkelstein EA, Haaland BA, Bilger M, et al. Effectiveness of activity trackers with and without incentives to increase physical activity (TRIPPA): a randomised controlled trial. Lancet Diabetes Endocrinol. 2016;4:983–95. (One year of wearable activity monitors brought significant increase in physical activity, but no change in body weight.)

PubMed  Google Scholar 

35.

Cadmus-Bertram LA, Marcus BH, Patterson RE, et al. Randomized trial of a Fitbit-based physical activity intervention for women. Am J Prev Med. 2015;49:414–8.

PubMed  PubMed Central  Google Scholar 

36.

Thompson WG, Kuhle CL, Koepp GA, et al. “Go4Life” exercise counseling, accelerometer feedback, and activity levels in older people. Arch Gerontol Geriatr. 2014;58:314–9.

PubMed  Google Scholar 

37.

Thorndike AN, Mills S, Sonnenberg L et al. Activity monitor intervention to promote physical activity of physicians-in-training: randomized controlled trial. PLoS One. 2014;9:e100251.

38.

Ashton LM, Morgan PJ, Hutchesson MJ, et al. Feasibility and preliminary efficacy of the “HEYMAN” healthy lifestyle program for young men: a pilot randomised controlled trial. Nutr J. 2017;16:2.

PubMed  PubMed Central  Google Scholar 

39.

Van Hoye K, Boen F, Lefevre J. The impact of different degrees of feedback on physical activity levels: a 4-week intervention study. Int J Environ Res Public Health. 2015;12:6561–81.

PubMed  PubMed Central  Google Scholar 

40.

Pellegrini CA, Verba SD, Otto AD, et al. The comparison of a technology-based system and an in-person behavioral weight loss intervention. Obesity. 2012;20:356–63.

PubMed  Google Scholar 

41.

Shuger SL, Barry VW, Sui X, et al. Electronic feedback in a diet- and physical activity-based lifestyle intervention for weight loss: a randomized controlled trial. Int J Behav Nutr Phys Act. 2011;8:41.

PubMed  PubMed Central  Google Scholar 

42.

Jakicic JM, Davis KK, Rogers RJ, et al. Effect of wearable technology combined with a lifestyle intervention on long-term weight loss: the IDEA randomized clinical trial. JAMA. 2016;316:1161–71.

PubMed  PubMed Central  Google Scholar 

43.

Mameli C, Brunetti D, Colombo V, et al. Combined use of a wristband and a smartphone to reduce body weight in obese children: randomized controlled trial. Pediatr Obes. 2018;13:81–7.

CAS  PubMed  Google Scholar 

44.

Nicklas BJ, Gaukstern JE, Beavers KM, et al. Self-monitoring of spontaneous physical activity and sedentary behavior to prevent weight regain in older adults. Obesity. 2014;22:1406–12.

PubMed  Google Scholar 

45.

Chen JL, Guedes CM, Lung AE. Smartphone-based healthy weight management intervention for Chinese American adolescents: short-term efficacy and factors associated with decreased weight. J Adolesc Health. 2019;64:443–9.

PubMed  Google Scholar 

46.

• McDonough DJ, Su X, Gao Z. Health wearable devices for weight and BMI reduction in individuals with overweight/obesity and chronic comorbidities: systematic review and network meta-analysis. British Journal of Sports Medicine 2021:bjsports-2020–103594. Health wearable devices are effective interventions for reducing body weight in individuals with overweight/obesity. Interventions of at least 12 weeks in duration are most effective for achieving weight loss.

47.

Yen H-Y, Chiu H-L. The effectiveness of wearable technologies as physical activity interventions in weight control: a systematic review and meta-analysis of randomized controlled trials. Obes Rev. 2019;20:1485–93.

PubMed  Google Scholar 

48.

Polzien KM, Jakicic JM, Tate DF, Otto AD. The efficacy of a technology-based system in a short-term behavioral weight loss intervention. Obesity (Silver Spring). 2007;15:825–30.

Google Scholar 

49.

Kaewkannate K, Kim S. A comparison of wearable fitness devices. BMC Public Health. 2016;16:433.

PubMed  PubMed Central  Google Scholar 

50.

Falter M, Budts W, Goetschalckx K, et al. Accuracy of Apple Watch measurements for heart rate and energy expenditure in patients with cardiovascular disease: Cross-Sectional Study. JMIR Mhealth Uhealth. 2019;7:e11889.

51.

Evenson KR, Goto MM, Furberg RD. Systematic review of the validity and reliability of consumer-wearable activity trackers. Int J Behav Nutr Phys Act. 2015;12:159.

PubMed  PubMed Central  Google Scholar 

52.

Mercer K, Li M, Giangregorio L, et al. Behavior change techniques present in wearable activity trackers: a critical analysis. JMIR Mhealth Uhealth, 2016;4:e40.

53.

The Lancet Digital H. Wearable technology and lifestyle management: the fight against obesity and diabetes. The Lancet Digital Health. 2019;1.

54.

McDonough DJ, Su X, Gao Z. Health wearable devices for weight and BMI reduction in individuals with overweight/obesity and chronic comorbidities: systematic review and network meta-analysis. Br J Sports Med. 2021.

55.

Johnson JL, Slentz CA, Houmard JA, et al. Exercise training amount and intensity effects on metabolic syndrome (from studies of a targeted risk reduction intervention through defined exercise). Am J Cardiol. 2007;100:1759–66.

PubMed  PubMed Central  Google Scholar 

56.

Bort-Roig J, Gilson ND, Puig-Ribera A, et al. Measuring and influencing physical activity with smartphone technology: a systematic review. Sports Med. 2014;44:671–86.

PubMed  Google Scholar 

57.

Arsand E, Tatara N, Ostengen G, Hartvigsen G. Mobile phone-based self-management tools for type 2 diabetes: the few touch application. J Diabetes Sci Technol. 2010;4:328–36.

PubMed  PubMed Central  Google Scholar 

58.

Fukuoka Y, Gay CL, Joiner KL, Vittinghoff E. A novel diabetes prevention intervention using a mobile app: a randomized controlled trial with overweight adults at risk. Am J Prev Med. 2015;49:223–37.

PubMed  PubMed Central  Google Scholar 

59.

Glynn LG, Hayes PS, Casey M, et al. Effectiveness of a smartphone application to promote physical activity in primary care: the SMART MOVE randomised controlled trial. Br J Gen Pract. 2014;64:e384-391.

PubMed  PubMed Central 

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