Carbohydrate Intake Is Correlated with the Glycated Albumin to Glycated Hemoglobin Ratio in Drug-Naive Patients with Type 2 Diabetes — Oak Academic Publishing
Research ArticleOpen AccessGoogle Scholar indexed
Carbohydrate Intake Is Correlated with the Glycated Albumin to Glycated Hemoglobin Ratio in Drug-Naive Patients with Type 2 Diabetes
Center for Diabetes and Endocrinology, Nissay Hospital, Osaka, Japan
,
Center for Diabetes and Endocrinology, Nissay Hospital, Osaka, Japan
,
Center for Diabetes and Endocrinology, Nissay Hospital, Osaka, Japan
,
Center for Diabetes and Endocrinology, Nissay Hospital, Osaka, Japan
,
Department of Medicine, Nissay Hospital, Osaka, Japan
,
Department of Medicine, Nissay Hospital, Osaka, Japan
,
Center for Diabetes and Endocrinology, Nissay Hospital, Osaka, Japan
,
Department of Medicine, Nissay Hospital, Osaka, Japan
,
Department of Medicine, Nissay Hospital, Osaka, Japan
,
Center for Diabetes and Endocrinology, Nissay Hospital, Osaka, Japan
,
Department of Internal Medicine, Kawanishi City Hospital, Hyogo, Japan
1 Center for Diabetes and Endocrinology, Nissay Hospital, Osaka, Japan
2 Center for Diabetes and Endocrinology, Nissay Hospital, Osaka, Japan
3 Center for Diabetes and Endocrinology, Nissay Hospital, Osaka, Japan
4 Center for Diabetes and Endocrinology, Nissay Hospital, Osaka, Japan
5 Department of Medicine, Nissay Hospital, Osaka, Japan
6 Department of Medicine, Nissay Hospital, Osaka, Japan
7 Center for Diabetes and Endocrinology, Nissay Hospital, Osaka, Japan
8 Department of Medicine, Nissay Hospital, Osaka, Japan
9 Department of Medicine, Nissay Hospital, Osaka, Japan
10 Center for Diabetes and Endocrinology, Nissay Hospital, Osaka, Japan
11 Department of Internal Medicine, Kawanishi City Hospital, Hyogo, Japan
Background : The glycated albumin (GA) to HbA1c ratio (GA/HbA1c ratio) has been reported to reflect postprandial hyperglycemia. Carbohydrate is the primary dietary macronutrient that causes postprandial hyperglycemia. Thus, we investigated whether carbohydrate intake was associated with the GA/HbA1c ratio in patients with type 2 diabetes. Methods : Daily energy intake and carbohydrate intake were estimated in twenty-two patients with type 2 diabetes who received no pharmacological therapy (18 men and 4 women, age 53 ± 11 years old). The energy index and the carbohydrate index were defined as the ratio of daily energy intake to body weight and daily carbohydrate intake to body weight, respectively. Results : The energy index was significantly correlated with the GA/HbA1c ratio (r = 0.451, p = 0.035), but not with fasting plasma glucose (FPG), HbA1c and GA. The carbohydrate index was significantly correlated with GA (r = 0.461, p = 0.031) and the GA/HbA1c ratio (r = 0.554, p = 0.007), but not with FPG and HbA1c. Multivariate analysis revealed that the carbohydrate index was independently associated with the GA/HbA1c ratio ( β = 0.397, p = 0.046). Conclusions : The carbohydrate index was significantly correlated with GA and the GA/HbA1c ratio in the patients with type 2 diabetes. These results suggest that carbohydrate intake may be associated with the GA/HbA1c ratio through postprandial hyperglycemia.
Buse, J.B., Polonsky, K.S. and Burant, C.E. (2003) Type 2 Diabetes MeIIitus. In: Larsen, P.R., Kronenberg, H.M., Melmed, S. and PoIonsky, K.S., Eds., Williams Textbook of Endocrinology, 10th Edition, Saunders, Phiiadeiphia, 1457.
Allen, F.M., StiIIman, E. and Fitz, R. (1919) Total Dietary Reguiation in the Treatment of Diabetes. Monograph No. 11, Rockefeller Institute for MedicaI Research, New York.
Fernemark, H., Jaredsson, C., Bunjaku, B., Rosenqvist, U., Nystrom, F.H. and Guldbrand, H. (2013) A Randomized Cross-Over Trial of the Postprandial Effects of Three Different Diets in Patients with Type 2 Diabetes. PLoS One, 8, e79324. http://dx.doi.org/10.1371/journal.pone.0079324
Yoshiuchi, K., Matsuhisa, M., Katakami, N., Nakatani, N., Sakamoto, K., Matsuoka, T., Umayahara, Y., Kosugi, K., Kaneto, H., Yamasaki, Y. and Hori, M. (2008) Glycated Albumin Is a Better Indicator for Glucose Excursion than Glycated Hemoglobin in Type 1 and Type 2 Diabetes. Endocrine Journal, 55, 503-507. http://dx.doi.org/10.1507/endocrj.K07E-089
Ogawa, A., Hayashi, A., Kishihara, E., Yoshino, S., Takeuchi, A. and Shichiri, M. (2012) New Indices for Predicting Glycaemic Variability. PLoS One, 7, e46517. http://dx.doi.org/10.1371/journal.pone.0046517
Tsutsumi, C., Imagawa, A., Onishi, M., Sano, H., Nakagawa, S., Murase-Mishiba, Y., Terasaki, J. and Hanahusa, T. (2013) Glycated Albumin as a Useful Clinical Biomarker for Glycemic Variability in Type 1 Diabetes Assessed by Continuous Glucose Monitoring. Diabetology International, 4, 156-159.
Sumitani, S., Morita, S., Deguchi, R., Hirai, K., Mukai, K., Utsu, Y., Miki, S., Sato, B., Nakamura, H., Kasayama, S. and Koga, M. (2015) Metformin Decreases Glycated Albumin to Glycated Hemoglobin Ratio in Patients with Newly Diagnosed Type 2 Diabetes. Annals of Clinical Biochemistry, 52, 76-81. http://dx.doi.org/10.1177/0004563214522984
Kurebayashi, S., Motomura, T., Goya, K., Nakao, M., Hashimoto, K., Morimoto, Y., Kitamura, T., Fukuhara, A., Sato, B., Kasayama, S., Shimomura, I., Koga, M. and Otsuki, M. (2014) Sitagliptin Significantly Decreases the Ratio of Glycated Albumin to HbA1c in Patients with Type 2 Diabetes Mellitus. Journal of Diabetes & Metabolism, 5, 343. http://dx.doi.org/10.4172/2155-6156.1000343
Committee on the Standardization of Diabetes Mellitus Related Laboratory Testing of Japan Diabetes Society (2012) International Clinical Harmonization of Glycated Hemoglobin in Japan: From Japan Diabetes Society to National Glycohemoglobin Standardization Program Values. Journal of Diabetes Investigation, 3, 39-40. http://dx.doi.org/10.1111/j.2040-1124.2012.00207.x
Kouzuma, T., Uemastu, Y., Usami, T. and Imamura, S. (2004) Study of Glycated Amino Acid Elimination Reaction for an Improved Enzymatic Glycated Albumin Measurement Method. Clinica Chimica Acta, 346, 135-143. http://dx.doi.org/10.1016/j.cccn.2004.02.019
Tahara, Y. and Shima, K. (1995) Kinetics of HbA1c, Glycated Albumin, and Fructosamine and Analysis of Their Weight Functions against Preceding Plasma Glucose Level. Diabetes Care, 18, 440-447. http://dx.doi.org/10.2337/diacare.18.4.440
Takahashi, S., Uchino, H., Shimizu, T., Kanazawa, A., Tamura, Y, Sakai, K., Watada, H., Hirose, T., Kawamori, R. and Tanaka, Y. (2007) Comparison of Glycated Albumin (GA) and Glycated Hemoglobin (HbA1C) in Type 2 Diabetic Patients: Usefulness of GA for Evaluation of Short-Term Changes in Glycemic Control. Endocrine Journal, 54, 139-144. http://dx.doi.org/10.1507/endocrj.K06-103
Koga, M., Murai, J., Saito, H., Kasayama, S., Imagawa, A., Hanafusa, T. and Kobayashi, T. (2010) Serum Glycated Albumin to Haemoglobin A1C Ratio Can Distinguish Fulminant Type 1 Diabetes Mellitus from Type 2 Diabetes Mellitus. Annals of Clinical Biochemistry, 47, 313-317. http://dx.doi.org/10.1258/acb.2010.009234
Hirata, T., Koga, M., Kasayama, S., Morimoto, J. and Maruyama, T. (2015) Glycated Albumin Was Not Significantly Correlated with Body Mass Index in Patients with Acute-Onset Type 1 Diabetes Unlike Patients with Type 2 Diabetes. Clinica Chimica Acta, 438, 248-251. http://dx.doi.org/10.1016/j.cca.2014.08.038
The DECODE Study Group (1999) Glucose Tolerance and Mortality: Comparison of WHO and American Diabetes Association Diagnostic Criteria. Lancet, 354, 617-621. http://dx.doi.org/10.1016/S0140-6736(98)12131-1
Tominaga, M., Eguchi, H., Manaka, H., Igarashi, K., Kato, T. and Sekikawa, A. (1999) Impaired Glucose Tolerance Is a Risk Factor for Cardiovascular Disease, but Not Impaired Fasting Glucose. The Funagata Diabetes Study. Diabetes Care, 22, 920-924. http://dx.doi.org/10.2337/diacare.22.6.920
Ohara, T., Doi, Y., Ninomiya, T., Hirakawa, Y., Hata, J., Iwaki, Kanba, S. and Kiyohara, Y. (2011) Glucose Tolerance Status and Risk of Dementia in the Community: The Hisayama Study. Neurology, 77, 1126-1134. http://dx.doi.org/10.1212/WNL.0b013e31822f0435
Shiraiwa, T., Kaneto, H., Miyatsuka, T., Kato, K., Yamamoto, K., Kawashima, A., Kanda, T., Suzuki, M., Imano, E., Matsuhisa, M., Hori, M. and Yamasaki, Y. (2005) Postprandial Hyperglycemia Is a Better Predictor of the Progression of Diabetic Retinopathy than HbA1c in Japanese Type 2 Diabetic Patients. Diabetes Care, 28, 2806-2807. http://dx.doi.org/10.2337/diacare.28.11.2806
Koga, M., Matsumoto, S., Saito, H. and Kasayama, S. (2006) Body Mass Index Negatively Influences Glycated Albumin, but Not Glycated Hemoglobin, in Diabetic Patients. Endocrine Journal, 53, 387-391. http://dx.doi.org/10.1507/endocrj.K05-137
Koga, M., Otsuki, M., Matsumoto, S., Saito, H., Mukai, M. and Kasayama, S. (2007) Negative Association of Obesity and Its Related Chronic Inflammation with Serum Glycated Albumin but Not Glycated Hemoglobin Levels. Clinica Chimica Acta, 378, 48-52. http://dx.doi.org/10.1016/j.cca.2006.10.013
Nishimura, R., Kanda, A., Sano, H., Matsudaira, T., Miyashita, Y., Morimoto, A., Shirasawa, T., Kawaguchi, T. and Tajima, N. (2006) Glycated Albumin Is Low in Obese, Non-Diabetic Children. Diabetes Research and Clinical Practice, 71, 334-338. http://dx.doi.org/10.1016/j.diabres.2005.07.008
Fontvieille, A.M., Rizkalla, S.W., Penfornis, A., Acosta, M., Bornet, F.R. and Slama, G. (1992) The Use of Low Glycaemic Index Foods Improves Metabolic Control of Diabetic Patients over Five Weeks. Diabetic Medicine, 9, 444-450. http://dx.doi.org/10.1111/j.1464-5491.1992.tb01815.x
Jarvi, A.E., Karlstrom, B.E., Granfeldt, Y.E., Bjorck, I.E., Asp, N.G. and Vessby, B.O. (1999) Improved Glycemic Control and Lipid Profile and Normalized Fibrinolytic Activity on a Low-Glycemic Index Diet in Type 2 Diabetic Patients. Diabetes Care, 22, 10-18. http://dx.doi.org/10.2337/diacare.22.1.10