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Morrissey, C. M.

Publications and source records attributed to Morrissey, C. M..

2 recordsLinked to original sources

Single Cell Analysis of Treatment-Resistant Prostate Cancer: Implications of Cell State Changes for Cell Surface Antigen Targeted Therapies

Targeting cell surface molecules using radioligand and antibody-based therapies has yielded considerable success across cancers. However, it remains unclear how the expression of putative lineage markers, particularly cell surface molecules, varies in the process of lineage plasticity, wherein tumor cells alter their identity and acquire new oncogenic properties. A notable example of lineage plasticity is the transformation of prostate adenocarcinoma (PRAD) to neuroendocrine prostate cancer (NEPC)--a growing resistance mechanism that results in the loss of responsiveness to androgen blockade and portends dismal patient survival. To understand how lineage markers vary across the evolution of lineage plasticity in prostate cancer, we applied single cell analyses to 21 human prostate tumor biopsies and two genetically engineered mouse models, together with tissue microarray analysis (TMA) on 131 tumor samples. Not only did we observe a higher degree of phenotypic heterogeneity in castrate-resistant PRAD and NEPC than previously anticipated, but also found that the expression of molecules targeted therapeutically, namely PSMA, STEAP1, STEAP2, TROP2, CEACAM5, and DLL3, varied within a subset of gene-regulatory networks (GRNs). We also noted that NEPC and small cell lung cancer (SCLC) subtypes shared a set of GRNs, indicative of conserved biologic pathways that may be exploited therapeutically across tumor types. While this extreme level of transcriptional heterogeneity, particularly in cell surface marker expression, may mitigate the durability of clinical responses to novel antigen-directed therapies, its delineation may yield signatures for patient selection in clinical trials, potentially across distinct cancer types. SIGNIFICANCE STATEMENTTreatment of prostate cancer is rapidly evolving with several promising new drugs targeting different cell surface antigens. Selection of patients most likely to benefit from these therapies requires an understanding of how expression of these cell surface antigens varies across patients and how they change during disease progression, particularly in tumors that undergo lineage plasticity. Using immunohistochemistry and single cell mRNA sequencing, we reveal heterogeneity of cell states across a cohort of advanced disease prostate cancer patients; this heterogeneity is not captured by conventional histology-based designations of adenocarcinoma and neuroendocrine prostate cancer. We show these cell states can be identified by gene regulatory networks that could provide additional diagnostic precision based on their correlation with clinically relevant cell surface antigen expression.

cancer biology↗

Discovery and characterization of a first-in-field transcription factor BRN2 inhibitor for the treatment of neuroendocrine prostate cancer.

The increased incidence of treatment-emergent neuroendocrine prostate cancer (NEPC) is particularly alarming as this diagnosis is associated with poor prognosis. Despite initial responses to platinum-based chemotherapy, relapses are common and there is no effective second line therapy for NEPC. We previously identified that neuronal transcription factor BRN2 (POU3F2) is a potent driver of neuroendocrine differentiation and an attractive target for NEPC. Utilizing a combination of in silico modeling and X-ray crystallography followed by structure-based lead optimization, we have developed the first potent, specific and orally bioavailable BRN2 inhibitor (B18-94), which inhibits the interaction between BRN2 and DNA. This loss of BRN2 on the chromatin drastically reduces its transcriptional output resulting in downregulation of several known targets in NEPC such as SOX2, ASCL1 and PEG10. Additionally, B18-94 reduces specifically cell proliferation specifically in multiple NEPC models with no effect on adenocarcinoma and other BRN2 negative prostate cancer models. Importantly, the consistency in the transcriptomic changes driven by B18-94 and or CRISPR/Cas9 mediated BRN2 knockout confirmed the on-target specificity, with both methods of BRN2 inhibition downregulating pathways involved in cellular plasticity and proliferation. Finally, we have demonstrated that B18-94, the first-in-field POU-domain transcription factor inhibitor, significantly reduced tumor growth in several NEPC xenograft models with no observable toxicity, suggesting potential for therapeutic intervention of NEPC.

cancer biology↗