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April 14, 2017Cancer Discovery399 citationsOpen Access

Transdifferentiation as a Mechanism of Treatment Resistance in a Mouse Model of Castration-Resistant Prostate Cancer

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MZMin ZouRTRoxanne ToivanenAMAntonina Mitrofanova

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Abstract

Abstract Current treatments for castration-resistant prostate cancer (CRPC) that target androgen receptor (AR) signaling improve patient survival, yet ultimately fail. Here, we provide novel insights into treatment response for the antiandrogen abiraterone by analyses of a genetically engineered mouse (GEM) model with combined inactivation of Trp53 and Pten, which are frequently comutated in human CRPC. These NPp53 mice fail to respond to abiraterone and display accelerated progression to tumors resembling treatment-related CRPC with neuroendocrine differentiation (CRPC-NE) in humans. Cross-species computational analyses identify master regulators of adverse response that are conserved with human CRPC-NE, including the neural differentiation factor SOX11, which promotes neuroendocrine differentiation in cells derived from NPp53 tumors. Furthermore, abiraterone-treated NPp53 prostate tumors contain regions of focal and/or overt neuroendocrine differentiation, distinguished by their proliferative potential. Notably, lineage tracing in vivo provides definitive and quantitative evidence that focal and overt neuroendocrine regions arise by transdifferentiation of luminal adenocarcinoma cells. These findings underscore principal roles for TP53 and PTEN inactivation in abiraterone resistance and progression from adenocarcinoma to CRPC-NE by transdifferentiation. Significance: Understanding adverse treatment response and identifying patients likely to fail treatment represent fundamental clinical challenges. By integrating analyses of GEM models and human clinical data, we provide direct genetic evidence for transdifferentiation as a mechanism of drug resistance as well as for stratifying patients for treatment with antiandrogens. Cancer Discov; 7(7); 736–49. ©2017 AACR. See related commentary by Sinha and Nelson, p. 673. This article is highlighted in the In This Issue feature, p. 653

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Zou et al. (2017) studied this question.

synapsesocial.com/papers/6a0ceade0f2e12c3ee1f5984https://doi.org/10.1158/2159-8290.cd-16-1174
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Also Consider

Synapse has enriched 5 closely related papers on similar clinical questions. Consider them for comparative context:

  1. 1Biology of Progressive, Castration-Resistant Prostate Cancer: Directed Therapies Targeting the Androgen-Receptor Signaling Axis2005 · 1,034 citations
  2. 2Prevalence of Prostate Cancer Clinical States and Mortality in the United States: Estimates Using a Dynamic Progression Model2015 · 245 citations
  3. 3ERG gene rearrangements are common in prostatic small cell carcinomas2011 · 220 citations
  4. 4Linking the p53 tumour suppressor pathway to somatic cell reprogramming2009 · 1,128 citations
  5. 5Integrative Genomic Profiling of Human Prostate Cancer2010 · 3,831 citations