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miRNAs 的表达分析及其作为前列腺癌检测生物标志物的潜在作用。

Expression Analysis of miRNAs and Their Potential Role as Biomarkers for Prostate Cancer Detection.

机构信息

Posgrado en Ciencias Biomédicas, Facultad de Ciencias Químico Biológicas, Universidad Autónoma de Sinaloa, Culiacán Rosales, México.

Laboratorio de Genética y Biología Molecular, Facultad de Ciencias Químico Biológicas, Universidad Autónoma de Sinaloa, Culiacán Rosales, México.

出版信息

Am J Mens Health. 2022 Sep-Oct;16(5):15579883221120989. doi: 10.1177/15579883221120989.

Abstract

Prostate cancer (PCa) is the second most frequent cancer diagnosed in men worldwide. The detection methods for PCa are either unreliable, like prostate-specific antigen (PSA), or extremely invasive, such as in the case of biopsies. Therefore, there is an urgent necessity for reliable and less invasive detection procedures that can differentiate between patients with benign diseases and those with cancer. In this matter, microRNAs (miRNAs) are suggested as potential biomarkers for cancer. MiRNAs have been found to be dysregulated in several different cancers, and these genetic alterations may present specific signatures for a given malignancy. Here, we examined the expression of miR141-3p, miR145-5p, miR146a-5p, and miR148b-3p in human tissue samples of PCa ( = 41) and benign prostatic diseases (BPD) ( = 30) using reverse transcription-quantitative polymerase chain reaction (RT-qPCR). We combined the expression results with patient clinicopathological characteristics in logistic regression models to create accurate PCa predictive models. A model including information of miR148b-3p and patient age showed relevant prediction results (area under the curve [AUC] = 0.818, precision = 0.763, specificity = 0.762, and accuracy = 0.762). A model including all four miRNAs and patient age presented outstanding prediction results (AUC = 0.918, precision = 0.861, specificity = 0.861, and accuracy = 0.857). Our results represent a potential novel procedure based on logistic regression models that utilize miRNA expressions and patient age to assist with PCa diagnosis.

摘要

前列腺癌 (PCa) 是全球男性第二大常见癌症。PCa 的检测方法要么不可靠,如前列腺特异性抗原 (PSA),要么极具侵入性,如活检。因此,迫切需要可靠且微创的检测程序,以便将患有良性疾病的患者与患有癌症的患者区分开来。在这方面,microRNAs (miRNAs) 被认为是癌症的潜在生物标志物。已经发现 miRNAs 在几种不同的癌症中失调,这些遗传改变可能为特定的恶性肿瘤呈现特定的特征。在这里,我们使用逆转录定量聚合酶链反应 (RT-qPCR) 检查了 41 例人 PCa 组织样本和 30 例良性前列腺疾病 (BPD) 中 miR141-3p、miR145-5p、miR146a-5p 和 miR148b-3p 的表达。我们将表达结果与患者的临床病理特征结合在逻辑回归模型中,创建了准确的 PCa 预测模型。包括 miR148b-3p 信息和患者年龄的模型显示出相关的预测结果(曲线下面积 [AUC] = 0.818,精度 = 0.763,特异性 = 0.762,准确性 = 0.762)。包括所有四个 miRNAs 和患者年龄的模型呈现出出色的预测结果(AUC = 0.918,精度 = 0.861,特异性 = 0.861,准确性 = 0.857)。我们的结果代表了一种基于逻辑回归模型的潜在新程序,该程序利用 miRNA 表达和患者年龄来辅助 PCa 诊断。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/8218/9465588/fe9603ceae76/10.1177_15579883221120989-fig1.jpg

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