Person: Liu, Shengwu
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Publication CD54-NOTCH1 axis controls tumor initiation and cancer stem cell functions in human prostate cancer
(Ivyspring International Publisher, 2017) Li, Chong; Liu, Shengwu; Yan, Ruping; Han, Ning; Wong, Kwok-Kin; Li, LeiCancer stem cells (CSCs) are considered one of the key contributors to chemoresistance and tumor recurrence. Therefore, the precise identification of reliable CSC markers and clarification of the intracellular signaling involved in CSCs remains a great challenge in fields relating to cancer biology. Here, we implemented a novel chemoresistant prostate cancer patient-derived xenograft (PDX) model in NOD/SCID mice and identified CD54 as a candidate gene among the most highly enriched gene expression profiles in prostate tumors exposed to chronic cisplatin administration. Additional in vitro and in vivo assays showed that CD54 played a critical role in the self-renewal and tumorigenesis of prostate CSCs. Moreover, silencing CD54 greatly reduced the tumorigenesis of prostate cancers both in vitro and in vivo and significantly extended the survival time of tumor-bearing mice in a prostate cancer xenograft model. Dissection of the molecular mechanism revealed that the p38-Notch1 axis was the main downstream signaling pathway in CD54-mediated regulation of CSCs in prostate cancers. Together, these results established that CD54 could be a novel reliable prostate CSC marker and provided a new potential therapeutic target in prostate cancer via CD54-Notch1 signaling.
Publication Prostate cancer-associated SPOP mutations confer resistance to BET inhibitors through stabilization of BRD4
(2017) Dai, Xiangpeng; Gan, Wenjian; Li, Xiaoning; Wang, Shangqian; Zhang, Wei; Huang, Ling; Liu, Shengwu; Zhong, Qing; Guo, Jianping; Zhang, Jinfang; Chen, Ting; Shimizu, Kouhei; Beca, Francisco; Blattner, Mirjam; Vasudevan, Divya; Buckley, Dennis L.; Qi, Jun; Buser, Lorenz; Liu, Pengda; Inuzuka, Hiroyuki; Beck, Andrew; Wang, Liewei; Wild, Peter J.; Garraway, Levi; Rubin, Mark A.; Barbieri, Christopher E.; Wong, Kwok-Kin; Muthuswamy, Senthil; Huang, Jiaoti; Chen, Yu; Bradner, James E; Wei, WenyiThe bromodomain and extra-terminal (BET) family of proteins, comprised of four members including BRD2, BRD3, BRD4 and the testis-specific isoform BRDT, largely function as transcriptional co-activators 1–3 and play critical roles in various cellular processes, including cell cycle, apoptosis, migration and invasion 4,5. As such, BET proteins enhance the oncogenic functions of major cancer drivers by either elevating their expression such as c-Myc in leukemia 6,7 or by promoting transcriptional activities of oncogenic factors such as AR and ERG in the prostate cancer setting 8. Pathologically, BET proteins are frequently overexpressed and clinically linked to various types of human cancers 5,9,10, therefore pursued as attractive therapeutic targets for selective inhibition in patients. To this end, a number of bromodomain inhibitors, including JQ1 and I-BET, have been developed 11,12 and shown promising outcomes in early clinical trials. Despite resistance to BET inhibitor has been documented in pre-clinical models 13–15 the molecular mechanisms underlying acquired resistance are largely unknown. Here, we report that Cullin 3SPOP earmarks BET proteins including BRD2, BRD3 and BRD4 for ubiquitination-mediated degradation. Pathologically, prostate cancer-associated SPOP mutants fail to interact with and promote the destruction of BET proteins, leading to their elevated abundance in SPOP-deficient prostate cancer. As a result, prostate cancer cells and prostate cancer patient-derived organoids harboring SPOP mutations are more resistant to BET inhibitor-induced cell growth arrest and apoptosis. Therefore, our results elucidate the tumor suppressor role of SPOP in prostate cancer by negatively controlling BET protein stability, and also provide a molecular mechanism for BET inhibitor resistance in prostate cancer patients bearing SPOP mutations.