MicroRNA determinants of neuroendocrine differentiation in metastatic castration-resistant prostate cancer
Divya Bhagirath1, Michael Liston2, Nikhil Patel3
1Department of Biochemistry and Molecular Biology, Augusta University, Augusta, GA, USA.
Abstract:
Therapy-induced neuroendocrine prostate cancer (NEPC), an extremely aggressive variant of castration-resistant prostate cancer (CRPC), is increasing in incidence with the widespread use of highly potent androgen receptor (AR)-pathway inhibitors (APIs) such as Enzalutamide (ENZ) and Abiraterone and arises via a reversible trans-differentiation process, referred to as neuroendocrine differentiation (NED). The molecular basis of NED is not completely understood leading to a lack of effective molecular markers for its diagnosis. Here, we demonstrate for the first time, that lineage switching to NE states is accompanied by key miRNA alterations including downregulation of miR-106a~363 cluster and upregulation of miR-301a and miR-375. To systematically investigate the key miRNAs alterations driving therapy-induced NED, we performed small RNA-NGS in a retrospective cohort of human metastatic CRPC clinical samples + PDX models with adenocarcinoma features (CRPC-adeno) vs those with neuroendocrine features (CRPC-NE). Further, with the application of machine learning algorithms to sequencing data, we trained a 'miRNA classifier' that could robustly classify 'CRPC-NE' from 'CRPC-Adeno' cases. The performance of classifier was validated in an additional cohort of mCRPC patients and publicly available PCa cohorts. Importantly, we demonstrate that miR-106a~363 cluster pleiotropically regulate cardinal nodal proteins instrumental in driving NEPC including Aurora Kinase A, N-Myc, E2F1 and STAT3. Our study has important clinical implications and transformative potential as our 'miRNA classifier' can be used as a molecular tool to stratify mCRPC patients into those with/without NED and guide treatment decisions. Further, we identify novel miRNA NED drivers that can be exploited for NEPC therapeutic targeting.
Insights
This study identifies key microRNA (miRNA) changes, like miR-106a~363 downregulation, driving aggressive neuroendocrine prostate cancer (NEPC) after therapy. A novel miRNA classifier can now distinguish NEPC subtypes for better treatment decisions.
Area of Science:
- Oncology
- Molecular Biology
- Genetics
Background:
- Therapy-induced neuroendocrine prostate cancer (NEPC) is an aggressive variant of castration-resistant prostate cancer (CRPC).
- NEPC arises from neuroendocrine differentiation (NED), a process not fully understood, lacking diagnostic molecular markers.
- Current treatments like Enzalutamide (ENZ) and Abiraterone can induce this aggressive subtype.
Purpose of the Study:
- To identify key microRNA (miRNA) alterations associated with therapy-induced NED in CRPC.
- To develop a machine learning-based miRNA classifier for distinguishing NEPC from adenocarcinoma prostate cancer (CRPC-adeno).
- To investigate the role of specific miRNAs in regulating NEPC-driving proteins.
Main Methods:
- Small RNA next-generation sequencing (NGS) was performed on metastatic CRPC (mCRPC) clinical samples and patient-derived xenograft (PDX) models.
- Machine learning algorithms were applied to sequencing data to train a miRNA classifier.
- The classifier's performance was validated in independent patient cohorts and public datasets.
Main Results:
- Key miRNA alterations identified include downregulation of the miR-106a~363 cluster and upregulation of miR-301a and miR-375 in NEPC.
- A trained 'miRNA classifier' robustly distinguished CRPC-NE from CRPC-adeno cases.
- The miR-106a~363 cluster was found to regulate key NEPC-driving proteins such as Aurora Kinase A, N-Myc, E2F1, and STAT3.
Conclusions:
- The study identifies specific miRNAs as drivers of therapy-induced NED and NEPC.
- The developed miRNA classifier serves as a potential molecular tool for stratifying mCRPC patients and guiding treatment.
- These findings offer novel therapeutic targets for exploiting miRNA pathways in NEPC treatment.
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