论文 · 综述
前列腺癌精准诊断:美国当代实践中生物标志物、影像、基因组学与人工智能的整合
Precision Diagnostics in Prostate Cancer: Integrating Biomarkers, Imaging, Genomics, and Artificial Intelligence in Contemporary United States Practice
作者:Moustafa Kardjadj
Med Sci (Basel) · 2026年9月2日 · Kardjadj
不需要生物学背景,多打比方
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摘要Abstract
Prostate cancer is the most commonly diagnosed non-cutaneous malignancy among men in the United States and remains a leading cause of cancer-related mortality. Its marked biological, molecular, and histopathological heterogeneity creates a central diagnostic challenge: identifying clinically significant disease while limiting unnecessary biopsy and overdiagnosis of tumors unlikely to affect survival or quality of life. Although prostate-specific antigen (PSA) remains the foundation of early detection, its limited cancer specificity has driven the development of increasingly risk-adapted diagnostic pathways. Contemporary evaluation integrates clinical risk assessment and PSA-derived measures with selectively used blood- and urine-based biomarkers, multiparametric magnetic resonance imaging (mpMRI), image-guided biopsy, histopathological classification, genomic risk assessment, and molecular imaging. Biomarkers such as the Prostate Health Index, 4Kscore, IsoPSA, MiCheck, SelectMDx, and ExoDx may refine biopsy decisions in appropriately selected patients but should be interpreted according to the clinical setting, decision threshold, and surrounding diagnostic pathway. Prostate MRI and PI-RADS-based assessment have become central to pre-biopsy evaluation, while MRI-targeted biopsy improves detection of Grade Group ≥ 2 disease. Increasing use of the transperineal biopsy route offers comparable cancer detection with a lower infectious risk. Following diagnosis, Grade Group, adverse histological features, clinical risk models, and selected tissue-based genomic classifiers provide complementary prognostic information. PSMA PET/CT has further improved staging of selected patients with higher-risk disease and localization of biochemical recurrence. Precision diagnostics must also account for disease phenotypes that may not be adequately represented by conventional PSA- and imaging-based pathways, including intraductal carcinoma, cribriform architecture, ductal adenocarcinoma, and neuroendocrine prostate cancer. Emerging approaches, including artificial intelligence-assisted MRI interpretation, digital pathology, high-frequency micro-ultrasound, liquid biopsy, alternative molecular radiotracers, and multi-omic integration, show increasing potential but remain at different stages of validation and clinical adoption. This review critically examines contemporary prostate cancer diagnostics within United States clinical practice, distinguishing established guideline-supported approaches from selectively used adjuncts and emerging technologies. Particular emphasis is placed on diagnostic performance in context, clinical utility, external validation, healthcare equity, regulatory considerations, and the need to demonstrate that increasing diagnostic complexity translates into meaningful improvements in patient care.
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