RHAMM drives formation of polyploid cancer cells and confers resistance to ER-targeted therapy in breast cancer

Endocrine resistance in ER + breast cancer remains a major clinical challenge. Here, we identify RHAMM as a key driver of resistance by orchestrating polyploid cancer cell (PCC) formation. Single-cell transcriptomics uncovered a G2/M-enriched, RHAMM + subpopulation in endocrine-resistant tumors. Mechanistically, RHAMM binds Septin9/10 to promote aberrant cytoskeleton polymerization, activating YAP independent of Hippo signaling, which induces cytokinesis failure and facilitates PCC generation. Concurrently, RHAMM destabilizes p21 mRNA, enabling cell cycle progression despite genomic instability. The RHAMM–p21 axis serves as a bypass mechanism supporting polyploidization. Upon endocrine treatment, RHAMM is transcriptionally up-regulated by Slug. Clinically, RHAMM high signatures are enriched in metastatic and recurrent ER + tumors and correlate with poor prognosis, highlighting its therapeutic relevance. Importantly, targeting RHAMM or YAP abrogates PCC formation and restores fulvestrant sensitivity. These findings reveal RHAMM-mediated polyploidization as an adaptive mechanism underlying endocrine resistance, suggesting the therapeutic potential of targeting the RHAMM–YAP axis.

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Publication Details

Journal
Proceedings of the National Academy of Sciences
Published
2026-09-16
DOI
https://doi.org/10.1073/pnas.2535342123
Primary Topic
Hippo pathway signaling and YAP/TAZ
Type
article
Field-Weighted Citation Impact
0.00

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article

RHAMM drives formation of polyploid cancer cells and confers resistance to ER-targeted therapy in breast cancer

Shiyi Wu, Cuixia Yang, Qian Guo, Yan Du et al.
Proceedings of the National Academy of Sciences
Hippo pathway signaling and YAP/TAZ
article

RHAMM drives formation of polyploid cancer cells and confers resistance to ER-targeted therapy in breast cancer

Shiyi Wu, Cuixia Yang, Qian Guo, Yan Du, Feng Gao, Yiwen Liu, Bohan Liu, Siyue Yang, Yongming Xu, Yiqing He, Jiajie Hu, Qinqing Liu, Si Chen, Fen Tang, Yuting Liu, Guoliang Zhang
article en

Abstract

Endocrine resistance in ER + breast cancer remains a major clinical challenge. Here, we identify RHAMM as a key driver of resistance by orchestrating polyploid cancer cell (PCC) formation. Single-cell transcriptomics uncovered a G2/M-enriched, RHAMM + subpopulation in endocrine-resistant tumors. Mechanistically, RHAMM binds Septin9/10 to promote aberrant cytoskeleton polymerization, activating YAP independent of Hippo signaling, which induces cytokinesis failure and facilitates PCC generation. Concurrently, RHAMM destabilizes p21 mRNA, enabling cell cycle progression despite genomic instability. The RHAMM–p21 axis serves as a bypass mechanism supporting polyploidization. Upon endocrine treatment, RHAMM is transcriptionally up-regulated by Slug. Clinically, RHAMM high signatures are enriched in metastatic and recurrent ER + tumors and correlate with poor prognosis, highlighting its therapeutic relevance. Importantly, targeting RHAMM or YAP abrogates PCC formation and restores fulvestrant sensitivity. These findings reveal RHAMM-mediated polyploidization as an adaptive mechanism underlying endocrine resistance, suggesting the therapeutic potential of targeting the RHAMM–YAP axis.

Proceedings of the National Academy of SciencesVol. 123(38)
Shanghai Jiao Tong University (CN), Shanghai Sixth People's Hospital (CN)
National Natural Science Foundation of China
Good health and well-being
Openalex Percentile: Top 14%
Hippo pathway signaling and YAP/TAZ
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