TY - JOUR
T1 - Androgen receptor splice variants drive castration-resistant prostate cancer metastasis by activating distinct transcriptional programs
AU - Han, Dong
AU - Labaf, Maryam
AU - Zhao, Yawei
AU - Owiredu, Jude
AU - Zhang, Songqi
AU - Patel, Krishna
AU - Venkataramani, Kavita
AU - Steinfeld, Jocelyn S.
AU - Han, Wanting
AU - Li, Muqing
AU - Liu, Mingyu
AU - Wang, Zifeng
AU - Besschetnova, Anna
AU - Patalano, Susan
AU - Mulhearn, Michaela J.
AU - Macoska, Jill A.
AU - Yuan, Xin
AU - Balk, Steven P.
AU - Nelson, Peter S.
AU - Plymate, Stephen R.
AU - Gao, Shuai
AU - Siegfried, Kellee R.
AU - Liu, Ruihua
AU - Stangis, Mary M.
AU - Foxa, Gabrielle
AU - Czernik, Piotr J.
AU - Williams, Bart O.
AU - Zarringhalam, Kourosh
AU - Li, Xiaohong
AU - Cai, Changmeng
N1 - Publisher Copyright:
Copyright: © 2024, Han et al.
PY - 2024/6/3
Y1 - 2024/6/3
N2 - One critical mechanism through which prostate cancer (PCa) adapts to treatments targeting androgen receptor (AR) signaling is the emergence of ligand-binding domain–truncated and constitutively active AR splice variants, particularly AR-V7. While AR-V7 has been intensively studied, its ability to activate distinct biological functions compared with the full-length AR (AR-FL), and its role in regulating the metastatic progression of castration-resistant PCa (CRPC), remain unclear. Our study found that, under castrated conditions, AR-V7 strongly induced osteoblastic bone lesions, a response not observed with AR-FL overexpression. Through combined ChIP-seq, ATAC-seq, and RNA-seq analyses, we demonstrated that AR-V7 uniquely accesses the androgen-responsive elements in compact chromatin regions, activating a distinct transcription program. This program was highly enriched for genes involved in epithelial-mesenchymal transition and metastasis. Notably, we discovered that SOX9, a critical metastasis driver gene, was a direct target and downstream effector of AR-V7. Its protein expression was dramatically upregulated in AR-V7–induced bone lesions. Moreover, we found that Ser81 phosphorylation enhanced AR-V7’s pro-metastasis function by selectively altering its specific transcription program. Blocking this phosphorylation with CDK9 inhibitors impaired the AR-V7–mediated metastasis program. Overall, our study has provided molecular insights into the role of AR splice variants in driving the metastatic progression of CRPC.
AB - One critical mechanism through which prostate cancer (PCa) adapts to treatments targeting androgen receptor (AR) signaling is the emergence of ligand-binding domain–truncated and constitutively active AR splice variants, particularly AR-V7. While AR-V7 has been intensively studied, its ability to activate distinct biological functions compared with the full-length AR (AR-FL), and its role in regulating the metastatic progression of castration-resistant PCa (CRPC), remain unclear. Our study found that, under castrated conditions, AR-V7 strongly induced osteoblastic bone lesions, a response not observed with AR-FL overexpression. Through combined ChIP-seq, ATAC-seq, and RNA-seq analyses, we demonstrated that AR-V7 uniquely accesses the androgen-responsive elements in compact chromatin regions, activating a distinct transcription program. This program was highly enriched for genes involved in epithelial-mesenchymal transition and metastasis. Notably, we discovered that SOX9, a critical metastasis driver gene, was a direct target and downstream effector of AR-V7. Its protein expression was dramatically upregulated in AR-V7–induced bone lesions. Moreover, we found that Ser81 phosphorylation enhanced AR-V7’s pro-metastasis function by selectively altering its specific transcription program. Blocking this phosphorylation with CDK9 inhibitors impaired the AR-V7–mediated metastasis program. Overall, our study has provided molecular insights into the role of AR splice variants in driving the metastatic progression of CRPC.
UR - https://www.scopus.com/pages/publications/85195226659
UR - https://www.scopus.com/pages/publications/85195226659#tab=citedBy
U2 - 10.1172/JCI168649
DO - 10.1172/JCI168649
M3 - Article
C2 - 38687617
AN - SCOPUS:85195226659
SN - 0021-9738
VL - 134
JO - Journal of Clinical Investigation
JF - Journal of Clinical Investigation
IS - 11
M1 - e168649
ER -