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May 18, 20260 citations

Targeting RANKL-independent osteoclastogenesis overcomes denosumab resistance in models of ER+ breast cancer bone metastasis.

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QLQ F LinJLJinpeng LuoZDZhuxi Duan

Key Points

  • This research aims to uncover mechanisms of resistance to RANKL inhibitors in ER+ breast cancer and identify alternative therapeutic approaches.
  • Identified RANKL-independent osteoclast activation pathway via the CRKL/circCCDC50/NFATc1 axis.
  • Investigated pharmacological inhibition of CARM1 (TP-064) in denosumab-resistant models.
  • Analyzed the role of circCCDC50 in osteoclast precursor activation and subsequent bone metastasis.
  • CRKL promoted EIF4A3-dependent circCCDC50 biogenesis, enhancing osteoclast activation.
  • Pharmacological inhibition of CARM1 (TP-064) significantly suppressed osteoclastogenesis and bone metastasis in resistant models.
  • Targeting the CRKL/circCCDC50/NFATc1 pathway revealed a novel mechanism to overcome RANKL blockade.

Abstract

Bone metastasis remains a major cause of morbidity in estrogen receptor-positive breast cancer, with RANKL inhibitor resistance emerging as a critical clinical challenge. Nearly 40% of patients develop progressive skeletal lesions despite denosumab therapy, highlighting an urgent need to identify resistance mechanisms and alternative therapeutic strategies. We identified a RANKL-independent osteoclast activation pathway mediated by the CRKL/circCCDC50/NFATc1 axis. Mechanistically, CRKL promoted EIF4A3-dependent circCCDC50 biogenesis, which was packaged into large oncosomes and transferred to osteoclast precursors. Nuclear circCCDC50 recruited CARM1 to epigenetically activate NFATc1 transcription, establishing a self-reinforcing loop that sustained osteolysis despite RANKL blockade. Pharmacological inhibition of CARM1 (TP-064) effectively suppressed osteoclastogenesis and bone metastasis in denosumab-resistant models. These findings revealed a targetable resistance mechanism and provided a clinically actionable strategy to overcome microenvironment-driven metastasis through dual targeting of tumor and bone niches.

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Cite This Study

Lin et al. (2026) studied this question.

synapsesocial.com/papers/6a0aacb35ba8ef6d83b7012ehttps://doi.org/10.1172/jci199285
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