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Advanced proteomics procedure as a detection tool for predictive screening in type 2 pre-Diabetes

机译:先进的蛋白质组学程序作为2型糖尿病前期预测筛查的检测工具

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摘要

It has been suggested that a more precise selection of predictive biomarkers may prove useful in the early diagnosis of type 2 diabetes (T2D), even when glucose tolerance is normal. This is vital since many T2D cases may be preventable by avoiding those factors that trigger the disease process (primary prevention) or by use of therapy that modulates the disease process before the onset of clinical symptoms (secondary prevention) occurs. The selection of predictive markers must be carefully assessed and depends mainly on three important parameters: sensitivity, specificity and positive predictive value. Unfortunately, biomarkers with ideal specificity and sensitivity are difficult to find. One potential solution is to use the combinatorial power of different biomarkers, each of which alone may not offer satisfactory specificity and sensitivity. Recent technological advances in proteomics and bioinformatics offer a great opportunity for the discovery of different potential predictive markers. In this review, we described a cellular T2D model as an example with the intent of providing specific enrichment and new identification strategies, which might have the potential to improve predictive biomarker identification and to bring accuracy in disease diagnosis and classification, as well as therapeutic monitoring in the early phase of T2D.
机译:已经提出,即使在葡萄糖耐量正常的情况下,更精确地选择预测性生物标志物也可能对2型糖尿病(T2D)的早期诊断有用。这很重要,因为许多T2D病例可以通过避免触发疾病过程的因素(一级预防)或在临床症状发作之前使用调节疾病过程的疗法(二级预防)来预防。预测标记的选择必须仔细评估,并且主要取决于三个重要参数:敏感性,特异性和阳性预测值。不幸的是,很难找到具有理想特异性和敏感性的生物标记。一种潜在的解决方案是使用不同生物标志物的组合功能,每种单独的标志物都可能无法提供令人满意的特异性和敏感性。蛋白质组学和生物信息学的最新技术进步为发现不同的潜在预测标记物提供了巨大的机会。在这篇综述中,我们以细胞T2D模型为例,旨在提供特定的富集和新的鉴定策略,这可能具有改善预测性生物标志物鉴定,提高疾病诊断和分类以及治疗监测的准确性的潜力。在T2D的早期阶段。

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