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MON-LB304 The Construction of the Online Health Guidance Service for Life-Style Related Diseases (Kanazawa Slim Study)
Background: Metabolic syndrome is a cluster of metabolic disorders including elevated blood pressure, high plasma glucose, excess body fat around the waist, and abnormal cholesterol or triglyceride levels. These conditions cause serious complications such as heart disease, stroke and type 2 diabetes...
Autores principales: | , , , , , , , , , , |
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Formato: | Online Artículo Texto |
Lenguaje: | English |
Publicado: |
Oxford University Press
2020
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Materias: | |
Acceso en línea: | https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7209443/ http://dx.doi.org/10.1210/jendso/bvaa046.2215 |
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author | Kometani, Mitsuhiro Oka, Rie Yasugi, Ayaka Gondo, Yuko Nomura, Akihiro Aono, Daisuke Higashitani, Takuya Karashima, Shigehiro Usukura, Mikiya Furukawa, Kenji D Yoneda, Takashi |
author_facet | Kometani, Mitsuhiro Oka, Rie Yasugi, Ayaka Gondo, Yuko Nomura, Akihiro Aono, Daisuke Higashitani, Takuya Karashima, Shigehiro Usukura, Mikiya Furukawa, Kenji D Yoneda, Takashi |
author_sort | Kometani, Mitsuhiro |
collection | PubMed |
description | Background: Metabolic syndrome is a cluster of metabolic disorders including elevated blood pressure, high plasma glucose, excess body fat around the waist, and abnormal cholesterol or triglyceride levels. These conditions cause serious complications such as heart disease, stroke and type 2 diabetes. In Japan, specific health checkups and specific health guidance which focused on metabolic syndrome has been performed since 2008. Those who fall under certain criteria need to receive a medical treatment guidance from doctor, public health nurse or dietitian. Those who received health guidance receives a reassessment of improvement of their life-style 3-6 months later. However, the efficacy of this approach has not been elucidated. In addition, many persons who have metabolic syndrome do not receive this instruction. Recently, the image analysis technology using the artificial intelligence (AI) progresses rapidly. The smart device application “Asken” has an AI-powered photo analysis system which analyzes the photo of the entire meal, and delivers individualized messages and dietary feedbacks. In this study, we utilized the Internet of Things (IoT) device which includes Asken app, body composition analyzer and sphygmomanometer that can connect wirelessly. Objective: Our aim is to assess the efficacy of specific health guidance adding on IoT device. This is a multicenter, unblinded, non-randomized controlled study. Results: At the end of January 2020, we recruited 219 participants including 105 participants with IoT devices. We used 48 participants (32 with IoT and 16 without IoT) who had finished a reassessment 3 to 6 months after initial guidance. Results: Age, body weight (BW), body mass index (BMI), blood pressure (BP), fasting plasma glucose (FPG), hemoglobin A1c (HbA1c), total cholesterol (T-Chol), high density lipoprotein cholesterol (HDL), low density lipoprotein cholesterol (LDL), non-HDL cholesterol (n-HDL), and triglyceride (TG), did not differ between IoT-use and control group. 6 months after initial guidance, the quantity of decrease of BW in IoT-use group was significantly larger than control (-2.5 ± 4.1 kg vs. 0.6±4.4, p = 0.03). In addition, the quantities of decrease of both T-Chol and n-HDL in IoT-use group were also significantly larger than control (T-Chol, -5.9 ± 32.0 vs. 14.3 ± 31.6, p = 0.02; n-HDL, -7.6 ± 29.0 vs. 9.4 ± 27.5, p = 0.01). Conclusion: Using IoT device might be useful for body weight loss and the improvement of mild hypercholesterolemia in those with metabolic syndrome. |
format | Online Article Text |
id | pubmed-7209443 |
institution | National Center for Biotechnology Information |
language | English |
publishDate | 2020 |
publisher | Oxford University Press |
record_format | MEDLINE/PubMed |
spelling | pubmed-72094432020-05-13 MON-LB304 The Construction of the Online Health Guidance Service for Life-Style Related Diseases (Kanazawa Slim Study) Kometani, Mitsuhiro Oka, Rie Yasugi, Ayaka Gondo, Yuko Nomura, Akihiro Aono, Daisuke Higashitani, Takuya Karashima, Shigehiro Usukura, Mikiya Furukawa, Kenji D Yoneda, Takashi J Endocr Soc Healthcare Delivery and Education Background: Metabolic syndrome is a cluster of metabolic disorders including elevated blood pressure, high plasma glucose, excess body fat around the waist, and abnormal cholesterol or triglyceride levels. These conditions cause serious complications such as heart disease, stroke and type 2 diabetes. In Japan, specific health checkups and specific health guidance which focused on metabolic syndrome has been performed since 2008. Those who fall under certain criteria need to receive a medical treatment guidance from doctor, public health nurse or dietitian. Those who received health guidance receives a reassessment of improvement of their life-style 3-6 months later. However, the efficacy of this approach has not been elucidated. In addition, many persons who have metabolic syndrome do not receive this instruction. Recently, the image analysis technology using the artificial intelligence (AI) progresses rapidly. The smart device application “Asken” has an AI-powered photo analysis system which analyzes the photo of the entire meal, and delivers individualized messages and dietary feedbacks. In this study, we utilized the Internet of Things (IoT) device which includes Asken app, body composition analyzer and sphygmomanometer that can connect wirelessly. Objective: Our aim is to assess the efficacy of specific health guidance adding on IoT device. This is a multicenter, unblinded, non-randomized controlled study. Results: At the end of January 2020, we recruited 219 participants including 105 participants with IoT devices. We used 48 participants (32 with IoT and 16 without IoT) who had finished a reassessment 3 to 6 months after initial guidance. Results: Age, body weight (BW), body mass index (BMI), blood pressure (BP), fasting plasma glucose (FPG), hemoglobin A1c (HbA1c), total cholesterol (T-Chol), high density lipoprotein cholesterol (HDL), low density lipoprotein cholesterol (LDL), non-HDL cholesterol (n-HDL), and triglyceride (TG), did not differ between IoT-use and control group. 6 months after initial guidance, the quantity of decrease of BW in IoT-use group was significantly larger than control (-2.5 ± 4.1 kg vs. 0.6±4.4, p = 0.03). In addition, the quantities of decrease of both T-Chol and n-HDL in IoT-use group were also significantly larger than control (T-Chol, -5.9 ± 32.0 vs. 14.3 ± 31.6, p = 0.02; n-HDL, -7.6 ± 29.0 vs. 9.4 ± 27.5, p = 0.01). Conclusion: Using IoT device might be useful for body weight loss and the improvement of mild hypercholesterolemia in those with metabolic syndrome. Oxford University Press 2020-05-08 /pmc/articles/PMC7209443/ http://dx.doi.org/10.1210/jendso/bvaa046.2215 Text en © Endocrine Society 2020. http://creativecommons.org/licenses/by-nc-nd/4.0/ This is an Open Access article distributed under the terms of the Creative Commons Attribution-NonCommercial-NoDerivs licence (http://creativecommons.org/licenses/by-nc-nd/4.0/), which permits non-commercial reproduction and distribution of the work, in any medium, provided the original work is not altered or transformed in any way, and that the work is properly cited. For commercial re-use, please contact journals.permissions@oup.com |
spellingShingle | Healthcare Delivery and Education Kometani, Mitsuhiro Oka, Rie Yasugi, Ayaka Gondo, Yuko Nomura, Akihiro Aono, Daisuke Higashitani, Takuya Karashima, Shigehiro Usukura, Mikiya Furukawa, Kenji D Yoneda, Takashi MON-LB304 The Construction of the Online Health Guidance Service for Life-Style Related Diseases (Kanazawa Slim Study) |
title | MON-LB304 The Construction of the Online Health Guidance Service for Life-Style Related Diseases (Kanazawa Slim Study) |
title_full | MON-LB304 The Construction of the Online Health Guidance Service for Life-Style Related Diseases (Kanazawa Slim Study) |
title_fullStr | MON-LB304 The Construction of the Online Health Guidance Service for Life-Style Related Diseases (Kanazawa Slim Study) |
title_full_unstemmed | MON-LB304 The Construction of the Online Health Guidance Service for Life-Style Related Diseases (Kanazawa Slim Study) |
title_short | MON-LB304 The Construction of the Online Health Guidance Service for Life-Style Related Diseases (Kanazawa Slim Study) |
title_sort | mon-lb304 the construction of the online health guidance service for life-style related diseases (kanazawa slim study) |
topic | Healthcare Delivery and Education |
url | https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7209443/ http://dx.doi.org/10.1210/jendso/bvaa046.2215 |
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