Unmasking Neuroendocrine Prostate Cancer with a Machine Learning-Driven Seven-Gene Stemness Signature That Predicts Progression

被引:1
作者
Sabater, Agustina [1 ,2 ,3 ]
Sanchis, Pablo [1 ,2 ,3 ]
Seniuk, Rocio [1 ,2 ]
Pascual, Gaston [1 ,2 ]
Anselmino, Nicolas [4 ,5 ]
Alonso, Daniel F. [6 ]
Cayol, Federico [7 ]
Vazquez, Elba [1 ,2 ]
Marti, Marcelo [1 ,2 ]
Cotignola, Javier [1 ,2 ]
Toro, Ayelen [1 ,2 ]
Labanca, Estefania [4 ,5 ]
Bizzotto, Juan [1 ,2 ,3 ]
Gueron, Geraldine [1 ,2 ]
机构
[1] Univ Buenos Aires, Fac Ciencias Exactas & Nat, Dept Quim Biol, C1428EGA, Buenos Aires, Argentina
[2] Univ Buenos Aires, Inst Quim Biol, Fac Ciencias Exactas & Nat IQUIBICEN, CONICET, C1428EGA, Buenos Aires, Argentina
[3] Univ Argentina Empresa UADE, Inst Tecnol INTEC, C1073AAO, Buenos Aires, Argentina
[4] Univ Texas MD Anderson Canc Ctr, Dept Genitourinary Med Oncol, Houston, TX 77030 USA
[5] Univ Texas MD Anderson Canc Ctr, David H Koch Ctr Appl Res Genitourinary Canc, Houston, TX 77030 USA
[6] Univ Nacl Quilmes, Ctr Oncol Mol & Traslac Plataforma, Serv Biotecnol, Dept Ciencia & Tecnol, B1876BXD, Bernal, Argentina
[7] Hosp Italiano Buenos Aires, Sect Oncol Clin, RA-C1199ABB Buenos Aires, Argentina
关键词
prostate cancer; stemness; gene signature; prognosis; machine learning; neuroendocrine transdifferentiation; large cell neuroendocrine carcinoma; RISK STRATIFICATION; CELLS; OVEREXPRESSION; CLASSIFICATION; IDENTIFICATION; VALIDATION; EVOLUTION; CARCINOMA; GENOMICS; FEATURES;
D O I
10.3390/ijms252111356
中图分类号
Q5 [生物化学]; Q7 [分子生物学];
学科分类号
071010 ; 081704 ;
摘要
Prostate cancer (PCa) poses a significant global health challenge, particularly due to its progression into aggressive forms like neuroendocrine prostate cancer (NEPC). This study developed and validated a stemness-associated gene signature using advanced machine learning techniques, including Random Forest and Lasso regression, applied to large-scale transcriptomic datasets. The resulting seven-gene signature (KMT5C, DPP4, TYMS, CDC25B, IRF5, MEN1, and DNMT3B) was validated across independent cohorts and patient-derived xenograft (PDX) models. This signature demonstrated strong prognostic value for progression-free, disease-free, relapse-free, metastasis-free, and overall survival. Importantly, the signature not only identified specific NEPC subtypes, such as large-cell neuroendocrine carcinoma, which is associated with very poor outcomes, but also predicted a poor prognosis for PCa cases that exhibit this molecular signature, even when they were not histopathologically classified as NEPC. This dual prognostic and classifier capability makes the seven-gene signature a robust tool for personalized medicine, providing a valuable resource for predicting disease progression and guiding treatment strategies in PCa management.
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页数:18
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