Cardiovascular risk in patients with type 2 diabetes: A systematic review of prediction models

医学 协变量 人口 糖尿病 预测建模 2型糖尿病 疾病 风险评估 梅德林 数据提取 重症监护医学 风险分析(工程) 内科学 计算机科学 机器学习 环境卫生 法学 内分泌学 计算机安全 政治学
作者
Arkaitz Galbete,Ibai Tamayo,Julián Librero,Mónica Enguita-Germán,Koldo Cambra,Berta Ibañez-Beroiz
出处
期刊:Diabetes Research and Clinical Practice [Elsevier BV]
卷期号:184: 109089-109089 被引量:7
标识
DOI:10.1016/j.diabres.2021.109089
摘要

To identify all cardiovascular disease risk prediction models developed in patients with type 2 diabetes or in the general population with diabetes as a covariate updating previous studies, describing model performance and analysing both their risk of bias and their applicability METHODS: A systematic search for predictive models of cardiovascular risk was performed in PubMed. The CHARMS and PROBAST guidelines for data extraction and for the assessment of risk of bias and applicability were followed. Google Scholar citations of the selected articles were reviewed to identify studies that conducted external validations.The titles of 10,556 references were extracted to ultimately identify 19 studies with models developed in a population with diabetes and 46 studies in the general population. Within models developed in a population with diabetes, only six were classified as having a low risk of bias, 17 had a favourable assessment of applicability, 11 reported complete model information, and also 11 were externally validated.There exists an overabundance of cardiovascular risk prediction models applicable to patients with diabetes, but many have a high risk of bias due to methodological shortcomings and independent validations are scarce. We recommend following the existing guidelines to facilitate their applicability.

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