Review
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TİP 2 DİYABETLİ BİREYLERDE FİZİKSEL AKTİVİTEYİ ARTIRMADA TEKNOLOJİ KULLANIMININ ETKİNLİĞİ

Year 2024, Volume: 2 Issue: 3, 7 - 17, 27.12.2024

Abstract

Özet
Amaç: Bu derleme çalışmasının amacı tip 2 diyabetli bireylerde fiziksel aktiviteyi artırmak ve sürdürülebilir egzersiz alışkanlığı kazandırmak için kullanılan teknolojik müdahalelerin etkinliğini güncel literatür ışığında incelemektir. Gereç ve Yöntemler: Bu derleme çalışmasında, 2014-2024 yılları arasında yayınlanan, tip 2 diyabetli bireylerde teknoloji destekli fiziksel aktivite müdahalelerini inceleyen randomize kontrollü çalışmalar, sistematik derlemeler ve meta-analizler değerlendirilmiştir. Bulgular: İncelenen çalışmalar, mobil uygulamalar, giyilebilir teknolojiler ve interaktif egzersiz programlarının fiziksel aktivite düzeylerini artırmada etkili olduğunu göstermiştir. Özellikle sağlık profesyoneli desteği ile yürütülen ve kişiselleştirilmiş içerik sunan teknolojik müdahaleler, program uyumunu ve metabolik parametreleri olumlu yönde etkilemiştir. Ancak uzun dönem takip çalışmalarında program sürdürülebilirliği konusunda sınırlılıklar gözlenmiştir. Sonuç: Teknolojik müdahaleler, tip 2 diyabetli bireylerde fiziksel aktiviteyi artırmada umut verici araçlar olarak öne çıkmaktadır. Ancak bu müdahalelerin etkinliği için güvenli, sürdürülebilir ve bireysel ihtiyaçlara duyarlı programların geliştirilmesi ve bunların geleneksel sağlık hizmetleriyle entegre edilmesi gerekmektedir.

References

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  • Ardisson Korat, A. V., Willett, W. C., & Hu, F. B. (2014). Diet, Lifestyle, and Genetic Risk Factors for Type 2 Diabetes: A Review from the Nurses’ Health Study, Nurses’ Health Study 2, and Health Professionals’ Follow-Up Study. In Current Nutrition Reports (Vol. 3, Issue 4, pp. 345–354). Current Science Inc. https://doi.org/10.1007/s13668-014-0103-5
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  • Barry, G., van Schaik, P., MacSween, A., Dixon, J., & Martin, D. (2016). Exergaming (XBOX KinectTM) versus traditional gym-based exercise for postural control, flow and technology acceptance in healthy adults: A randomised controlled trial. BMC Sports Science, Medicine and Rehabilitation, 8(1). https://doi.org/10.1186/s13102-016-0050-0
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  • Glen, K., Eston, R., Loetscher, T., & Parfitt, G. (2017). Exergaming: Feels good despite working harder. PLoS ONE, 12(10). https://doi.org/10.1371/journal.pone.0186526
  • Gomarasca, M., Banfi, G., & Lombardi, G. (2020). Myokines: The endocrine coupling of skeletal muscle and bone. In Advances in Clinical Chemistry (Vol. 94, pp. 155–218). Academic Press Inc. https://doi.org/10.1016/bs.acc.2019.07.010
  • Gothwal, S. K., Resident, S., & Registrar, S. (2014). Prevalence of micro and macrovascular complications and their risk factors in type-2 diabetes mellitus. In Article in Journal of the Association of Physicians of India (Vol. 62). https://www.researchgate.net/publication/274724916
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  • Relationship of Walking to Mortality Among US Adults With Diabetes. http://archinte.jamanetwork.com/ Hidrus, A., Kueh, Y. C., Norsa’adah, B., Chang, Y. K., & Kuan, G. (2022). Effects of technology-supported brain breaks videos on exercise self-efficacy among type 2 diabetes mellitus Malaysians. Scientific Reports, 12(1). https://doi.org/10.1038/s41598-022-15142-5
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  • Horigan, G., Davies, M., Findlay-White, F., Chaney, D., & Coates, V. (2017). Reasons why patients referred to diabetes education programmes choose not to attend: a systematic review. Diabetic Medicine, 34(1), 14– 26. https://doi.org/10.1111/dme.13120
  • Hou, M., Qiu, W. N., Qi, H. L., Shao, H. X., Yu, J. M., & Bian, H. Y. (2024). Effects of a diabetes education program integrated with text-message support for lifestyle change among older individuals with type 2 diabetes in communities: a randomised controlled trial. Public Health, 235, 152–159. https://doi.org/10.1016/j.puhe.2024.06.032
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THE EFFECTIVENESS OF TECHNOLOGY USE IN PROMOTING PHYSICAL ACTIVITY IN INDIVIDUALS WITH TYPE 2 DIABETES

Year 2024, Volume: 2 Issue: 3, 7 - 17, 27.12.2024

Abstract

Abstract
Objective: This review aims to evaluate the efficacy of technological interventions implemented to enhance physical activity levels and establish sustainable exercise habits among individuals with type 2 diabetes through a comprehensive analysis of current literature. Material and Methods: This review analyzed randomized controlled trials, systematic reviews, and meta-analyses published between 2014-2024 that investigated technology-based physical activity interventions among individuals with type 2 diabetes. Results: The analyzed studies demonstrated that mobile applications, wearable technologies, and interactive exercise programs effectively increased physical activity levels. Technological interventions incorporating healthcare professional supervision and personalized content notably improved program adherence and metabolic parameters. However, long-term follow-up studies revealed limitations regarding program sustainability. Conclusion: While technological interventions demonstrate promising potential for enhancing physical activity among individuals with type 2 diabetes, their optimal effectiveness necessitates the development of secure, sustainable, and individually tailored programs integrated within conventional healthcare systems

References

  • Facilitating Behavior Change and Well-being to Improve Health Outcomes: Standards of Medical Care in Diabetes—2022. (2022). Diabetes Care, 45, S60–S82. https://doi.org/10.2337/dc22-S005
  • Alonso-Domínguez, R., Gómez-Marcos, M. A., Patino-Alonso, M. C., Sánchez-Aguadero, N., Agudo-Conde, C., Castaño-Sánchez, C., García-Ortiz, L., & Recio-Rodríguez, J. I. (2017). Effectiveness of a multifactorial intervention based on an application for smartphones, heart-healthy walks and a nutritional workshop in patients with type 2 diabetes mellitus in primary care (EMID): Study protocol for a randomised controlled trial. BMJ Open, 7(9). https://doi.org/10.1136/bmjopen-2017-016191
  • Arambepola, C., Ricci-Cabello, I., Manikavasagam, P., Roberts, N., French, D. P., & Farmer, A. (2016). The impact of automated brief messages promoting lifestyle changes delivered via mobile devices to people with type 2 diabetes: A systematic literature review and meta-Analysis of controlled trials. In Journal of Medical Internet Research (Vol. 18, Issue 4). JMIR Publications Inc. https://doi.org/10.2196/jmir.5425
  • Ardisson Korat, A. V., Willett, W. C., & Hu, F. B. (2014). Diet, Lifestyle, and Genetic Risk Factors for Type 2 Diabetes: A Review from the Nurses’ Health Study, Nurses’ Health Study 2, and Health Professionals’ Follow-Up Study. In Current Nutrition Reports (Vol. 3, Issue 4, pp. 345–354). Current Science Inc. https://doi.org/10.1007/s13668-014-0103-5
  • Aryana, I. G. P. S., Hapsari, A. A. A. R., & Kuswardhani, R. A. T. (2018). Myokine Regulation as Marker of Sarcopenia in Elderly. Molecular and Cellular Biomedical Sciences, 2(2), 38. https://doi.org/10.21705/mcbs.v2i2.32
  • Bailey, D. P., Mugridge, L. H., Dong, F., Zhang, X., & Chater, A. M. (2020). Randomised controlled feasibility study of the myhealthavatar-diabetes smartphone app for reducing prolonged sitting time in type 2 diabetes mellitus. International Journal of Environmental Research and Public Health, 17(12), 1– 15. https://doi.org/10.3390/ijerph17124414
  • Barry, G., van Schaik, P., MacSween, A., Dixon, J., & Martin, D. (2016). Exergaming (XBOX KinectTM) versus traditional gym-based exercise for postural control, flow and technology acceptance in healthy adults: A randomised controlled trial. BMC Sports Science, Medicine and Rehabilitation, 8(1). https://doi.org/10.1186/s13102-016-0050-0
  • Bonn, S. E., Alexandrou, C., Hjörleifsdottir Steiner, K., Wiklander, K., Östenson, C. G., Löf, M., & Trolle Lagerros, Y. (2018). App-technology to increase physical activity among patients with diabetes type 2 - The DiaCert-study, a randomized controlled trial. BMC Public Health, 18(1). https://doi.org/10.1186/s12889-018-5026-4
  • Cartagena, M. V., Tort-Nasarre, G., & Arnaldo, E. R. (2021). Barriers and facilitators for physical activity in adults with type 2 diabetes mellitus: A scoping review. In International Journal of Environmental Research and Public Health (Vol. 18, Issue 10). MDPI. https://doi.org/10.3390/ijerph18105359
  • Celli, A., Barnouin, Y., Jiang, B., Blevins, D., Colleluori, G., Mediwala, S., Armamento-Villareal, R., Qualls, C., & Villareal, D. T. (2022). Lifestyle Intervention Strategy to Treat Diabetes in Older Adults: A Randomized Controlled Trial. Diabetes Care, 45(9), 1943–1952. https://doi.org/10.2337/dc22-0338 Clement, M., Harvey, B., Rabi, D. M., Roscoe, R. S., & Sherifali, D. (2013). Organization of Diabetes Care. Canadian Journal of Diabetes, 37(SUPPL.1). https://doi.org/10.1016/j.jcjd.2013.01.014
  • Cooper, A. R., Sebire, S., Montgomery, A. A., Peters, T. J., Sharp, D. J., Jackson, N., Fitzsimons, K., Dayan, C. M., & Andrews, R. C. (2012). Sedentary time, breaks in sedentary time and metabolic variables in people with newly diagnosed type 2 diabetes. Diabetologia, 55(3), 589–599. https://doi.org/10.1007/s00125-011-2408-x
  • de Oliveira, V. L. P., de Paula, T. P., & Viana, L. V. (2024). Pedometer- and accelerometer- based physical activity interventions in Type 2 diabetes: A systematic review and meta-analysis. Nutrition, Metabolism and Cardiovascular Diseases, 34(3), 548–558. https://doi.org/10.1016/j.numecd.2023.11.017
  • Defronzo, R. A. (2009). From the triumvirate to the ominous octet: A new paradigm for the treatment of type 2 diabetes mellitus. Diabetes, 58(4), 773–795. https://doi.org/10.2337/db09-9028 Iesujhs I 16
  • Diedrich, A., Munroe, D. J., & Romano, M. (2010). Promoting physical activity for persons with diabetes. Diabetes Educator, 36(1), 132–140. https://doi.org/10.1177/0145721709352382
  • Elenko, E., Speier, A., & Zohar, D. (2015). A regulatory framework emerges for digital medicine. In Nature Biotechnology (Vol. 33, Issue 7, pp. 697–702). Nature Publishing Group. https://doi.org/10.1038/nbt.3284
  • Glen, K., Eston, R., Loetscher, T., & Parfitt, G. (2017). Exergaming: Feels good despite working harder. PLoS ONE, 12(10). https://doi.org/10.1371/journal.pone.0186526
  • Gomarasca, M., Banfi, G., & Lombardi, G. (2020). Myokines: The endocrine coupling of skeletal muscle and bone. In Advances in Clinical Chemistry (Vol. 94, pp. 155–218). Academic Press Inc. https://doi.org/10.1016/bs.acc.2019.07.010
  • Gothwal, S. K., Resident, S., & Registrar, S. (2014). Prevalence of micro and macrovascular complications and their risk factors in type-2 diabetes mellitus. In Article in Journal of the Association of Physicians of India (Vol. 62). https://www.researchgate.net/publication/274724916
  • Gregg, E. W., Gerzoff, R. B., Caspersen, C. J., Williamson, D. F., & Narayan, ; K M Venkat. (2003).
  • Relationship of Walking to Mortality Among US Adults With Diabetes. http://archinte.jamanetwork.com/ Hidrus, A., Kueh, Y. C., Norsa’adah, B., Chang, Y. K., & Kuan, G. (2022). Effects of technology-supported brain breaks videos on exercise self-efficacy among type 2 diabetes mellitus Malaysians. Scientific Reports, 12(1). https://doi.org/10.1038/s41598-022-15142-5
  • Höchsmann, C., Walz, S. P., Schäfer, J., Holopainen, J., Hanssen, H., & Schmidt-Trucksäss, A. (2017). Mobile Exergaming for Health-Effects of a serious game application for smartphones on physical activity and exercise adherence in type 2 diabetes mellitus-study protocol for a rand omized controlled trial. Trials, 18(1). https://doi.org/10.1186/s13063-017-1853-3
  • Horigan, G., Davies, M., Findlay-White, F., Chaney, D., & Coates, V. (2017). Reasons why patients referred to diabetes education programmes choose not to attend: a systematic review. Diabetic Medicine, 34(1), 14– 26. https://doi.org/10.1111/dme.13120
  • Hou, M., Qiu, W. N., Qi, H. L., Shao, H. X., Yu, J. M., & Bian, H. Y. (2024). Effects of a diabetes education program integrated with text-message support for lifestyle change among older individuals with type 2 diabetes in communities: a randomised controlled trial. Public Health, 235, 152–159. https://doi.org/10.1016/j.puhe.2024.06.032
  • Kanaley, J. A., Colberg, S. R., Corcoran, M. H., Malin, S. K., Rodriguez, N. R., Crespo, C. J., Kirwan, J. P., & Zierath, J. R. (2022a). Exercise/Physical Activity in Individuals with Type 2 Diabetes: A Consensus Statement from the American College of Sports Medicine. Medicine and Science in Sports and Exercise, 54(2), 353–368. https://doi.org/10.1249/MSS.0000000000002800
  • Kanaley, J. A., Colberg, S. R., Corcoran, M. H., Malin, S. K., Rodriguez, N. R., Crespo, C. J., Kirwan, J. P., & Zierath, J. R. (2022b). Exercise/Physical Activity in Individuals with Type 2 Diabetes: A Consensus Statement from the American College of Sports Medicine. Medicine and Science in Sports and Exercise, 54(2), 353–368. https://doi.org/10.1249/MSS.0000000000002800
  • Lavie, C. J., Ozemek, C., Carbone, S., Katzmarzyk, P. T., & Blair, S. N. (2019). Sedentary Behavior, Exercise, and Cardiovascular Health. In Circulation Research (Vol. 124, Issue 5, pp. 799–815). Lippincott Williams and Wilkins. https://doi.org/10.1161/CIRCRESAHA.118.312669
  • Lynch, J., Helmrich, S. P., Lakka, T. A., Kaplan, G. A., Cohen, R. D., Salonen, R., & Salonen, J. T. (1996). Moderately Intense Physical Activities and High Levels of Cardiorespiratory Fitness Reduce the Risk of Non-Insulin-Dependent Diabetes Mellitus in Middle-aged Men. http://archinte.jamanetwork.com/ Merz, K. E., & Thurmond, D. C. (2020). Role of skeletal muscle in insulin resistance and glucose uptake. Comprehensive Physiology, 10(3), 785–809. https://doi.org/10.1002/cphy.c190029
  • Miyauchi, M., Toyoda, M., Kaneyama, N., Miyatake, H., Tanaka, E., Kimura, M., Umezono, T., & Fukagawa, M. (2016). Exercise Therapy for Management of Type 2 Diabetes Mellitus: Superior Efficacy of Activity Monitors over Pedometers. Journal of Diabetes Research, 2016. https://doi.org/10.1155/2016/5043964 Murphy, R. A., Reinders, I., Garcia, M. E., Eiriksdottir, G., Launer, L. J., Benediktsson, R., Gudnason, V., Iesujhs I 17
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There are 40 citations in total.

Details

Primary Language Turkish
Subjects Physiotherapy
Journal Section REVIEW ARTICLE
Authors

Nilgün Çırak 0009-0005-2196-9069

Publication Date December 27, 2024
Submission Date November 19, 2024
Acceptance Date December 16, 2024
Published in Issue Year 2024 Volume: 2 Issue: 3

Cite

APA Çırak, N. (2024). TİP 2 DİYABETLİ BİREYLERDE FİZİKSEL AKTİVİTEYİ ARTIRMADA TEKNOLOJİ KULLANIMININ ETKİNLİĞİ. İstanbul Esenyurt Üniversitesi Sağlık Bilimleri Dergisi, 2(3), 7-17.