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Machine learning-based MRI imaging for prostate cancer diagnosis: systematic review and meta-analysis

Yusheng Zhao, Lei Zhang, Subo Zhang, Jiajing Li, Kaimin Shi, Di Yao, Qiong Li, Tao Zhang, Lei Xu, Lei Geng, Yi Sun, Jinxin Wan

2025Prostate Cancer and Prostatic Diseases10 citationsDOIOpen Access PDF

Abstract

OBJECTIVE: This study aims to evaluate the diagnostic value of machine learning-based MRI imaging in differentiating benign and malignant prostate cancer and detecting clinically significant prostate cancer (csPCa, defined as Gleason score ≥7) using systematic review and meta-analysis methods. METHODS: Electronic databases (PubMed, Web of Science, Cochrane Library, and Embase) were systematically searched for predictive studies using machine learning-based MRI imaging for prostate cancer diagnosis. Sensitivity, specificity, and area under the curve (AUC) were used to assess the diagnostic accuracy of machine learning-based MRI imaging for both benign/malignant prostate cancer and csPCa. RESULTS: A total of 12 studies met the inclusion criteria, with 3474 patients included in the meta-analysis. Machine learning-based MRI imaging demonstrated good diagnostic value for both benign/malignant prostate cancer and csPCa. The pooled sensitivity and specificity for diagnosing benign/malignant prostate cancer were 0.92 (95% CI: 0.83-0.97) and 0.90 (95% CI: 0.68-0.97), respectively, with a combined AUC of 0.96 (95% CI: 0.94-0.98). For csPCa diagnosis, the pooled sensitivity and specificity were 0.83 (95% CI: 0.77-0.87) and 0.73 (95% CI: 0.65-0.81), respectively, with a combined AUC of 0.86 (95% CI: 0.83-0.89). CONCLUSION: Machine learning-based MRI imaging shows good diagnostic accuracy for both benign/malignant prostate cancer and csPCa. Further in-depth studies are needed to validate these findings.

Topics & Concepts

MedicineProstate cancerMeta-analysisBenign prostatic hyperplasia (BPH)Magnetic resonance imagingProstatitisProstateOncologyRadiologyMedical physicsCancerInternal medicineProstate Cancer Diagnosis and TreatmentProstate Cancer Treatment and ResearchRadiomics and Machine Learning in Medical Imaging