Uric acid is associated with type 2 diabetes: data mining approaches

被引:0
|
作者
Mansoori, Amin [1 ,10 ]
Tanbakuchi, Davoud [1 ]
Fallahi, Zahra [2 ]
Rezae, Fatemeh Asgharian [3 ]
Vahabzadeh, Reihaneh [4 ]
Soflaei, Sara Saffar [5 ]
Sahebi, Reza [5 ]
Hashemzadeh, Fatemeh [6 ]
Nikravesh, Susan [7 ]
Rajabalizadeh, Fatemeh [7 ]
Ferns, Gordon [8 ]
Esmaily, Habibollah [1 ,9 ]
Ghayour-Mobarhan, Majid [5 ]
机构
[1] Mashhad Univ Med Sci, Sch Hlth, Dept Biostat, Mashhad, Iran
[2] Mashhad Univ Med Sci, Sch Nursing & Midwifery, Mashhad, Iran
[3] Mashhad Univ Med Sci, Student Res Comm, Fac Pharm, Mashhad, Iran
[4] Mashhad Univ Med Sci, Student Res Comm, Paramed Fac, Mashhad, Iran
[5] Mashhad Univ Med Sci, Int UNESCO Ctr Hlth Related Basic Sci & Human Nutr, Mashhad 9919991766, Iran
[6] Islamic Azad Univ, Fac Sci, Dept Biol, Mashhad Branch, Mashhad, Iran
[7] Varastegan Inst Med Sci, Dept Nutr Sci, Mashhad, Iran
[8] Brighton & Sussex Med Sch, Div Med Educ, Brighton, England
[9] Mashhad Univ Med Sci, Social Determinants Hlth Res Ctr, Sch Hlth, Dept Biostat, Mashhad, Iran
[10] Ferdowsi Univ Mashhad, Sch Math Sci, Dept Appl Math, Mashhad, Iran
关键词
Biochemical factors; Type; 2; diabetes; Data mining; Decision tree; Uric acid; TyG index; BLOOD UREA NITROGEN; WAIST CIRCUMFERENCE; MENDELIAN RANDOMIZATION; MELLITUS; RISK; INDEX; SERUM; MASS;
D O I
10.1007/s13340-024-00701-0
中图分类号
R5 [内科学];
学科分类号
1002 ; 100201 ;
摘要
Background Several blood biomarkers have been related to the risk of type 2 diabetes mellitus (T2D); however, their predictive value has seldom been assessed using data mining algorithms. Methods This cohort study was conducted on 9704 participants recruited from the Mashhad Stroke and Heart Atherosclerotic disorders (MASHAD) study from 2010 to 2020. Individuals who were not between the ages of 35 and 65 were excluded. Serum levels of biochemical factors such as creatinine (Cr), high-sensitivity C reactive protein (hs-CRP), Uric acid, alanine aminotransferase (ALT), aspartate aminotransferase (AST), direct and total bilirubin (BIL.D, BIL.T), lipid profile, besides body mass index (BMI), waist circumference (WC), blood pressure, and age were evaluated through Logistic Regression (LR) and Decision Tree (DT) methods to develop a predicting model for T2D. Results The comparison between diabetic and non-diabetic participants represented higher levels of triglyceride (TG), LDL, cholesterol, ALT, BIL.D, and Uric acid in diabetic cases (p-value < 0.05). The LR model indicated a significant association between TG, Uric acid, and hs-CRP, besides age, sex, WC, and blood pressure, hypertension and dyslipidemia history with T2D development. DT algorithm demonstrated dyslipidemia history as the most determining factor in T2D prediction, followed by age, hypertension history, Uric acid, and TG. Conclusion There was a significant association between hypertension and dyslipidemia history, TG, Uric acid, and hs-CRP with T2D development, along with age, WC, and blood pressure through the LR and DT methods.
引用
收藏
页码:518 / 527
页数:10
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