A Platinum(IV)-Ursolic Acid Conjugate Overcomes Cisplatin Resistance in Ovarian Cancer by Targeting XPO1 and PARP1

Abstract Cisplatin is a cornerstone chemotherapeutic for ovarian cancer, yet its clinical utility is constrained by severe systemic toxicity and acquired drug resistance. Here we report a novel platinum (IV) prodrug, US-CIS-OH, generated by conjugating cisplatin with ursolic acid (UA), a natural pentacyclic triterpenoid with intrinsic anticancer activity. US-CIS-OH, markedly increases platinum uptake and DNA platination in cisplatin-resistant ovarian cancer cells, induces S- and G2/M-phase arrest and apoptosis, and suppresses cell migration and clonogenic growth. Chemoproteomic profiling indicates that US-CIS-OH directly engages the XPO1 and PARP1, and is associated with increased levels of cleaved caspase-3. In a cisplatin-resistant ovarian cancer xenograft model, US-CIS−OH elicits marked tumor regression with minimal toxicity. This dual-acting system achieves synergistic effects from both the intact conjugated and bioreductively released cisplatin. Collectively, these results identify US-CIS−OH as a promising next-generation platinum-based agent to overcome cisplatin resistance by enhancing DNA damage, promoting apoptosis, and limiting metastatic traits.

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Publication Details

Journal
Journal of Medicinal Chemistry
Published
2026-09-24
DOI
https://doi.org/10.1021/acs.jmedchem.6c02041
Primary Topic
Chemotherapy-induced organ toxicity mitigation
Type
article
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article

A Platinum(IV)-Ursolic Acid Conjugate Overcomes Cisplatin Resistance in Ovarian Cancer by Targeting XPO1 and PARP1

Zhangjian Huang, Zhiying Qin, Shentian Zhuang, 金廷橞 et al.
Journal of Medicinal Chemistry
Chemotherapy-induced organ toxicity mitigation
article

A Platinum(IV)-Ursolic Acid Conjugate Overcomes Cisplatin Resistance in Ovarian Cancer by Targeting XPO1 and PARP1

Zhangjian Huang, Zhiying Qin, Shentian Zhuang, 金廷橞, Xijing Chen, Yueying Bian, Ziyu Qian, Di Zhao, Yongjie Zhang, Mengqi Sun, Ziqi Pan, Yuan Yin, Zhanbo Wang, Gui Han
article en

Abstract

Abstract Cisplatin is a cornerstone chemotherapeutic for ovarian cancer, yet its clinical utility is constrained by severe systemic toxicity and acquired drug resistance. Here we report a novel platinum (IV) prodrug, US-CIS-OH, generated by conjugating cisplatin with ursolic acid (UA), a natural pentacyclic triterpenoid with intrinsic anticancer activity. US-CIS-OH, markedly increases platinum uptake and DNA platination in cisplatin-resistant ovarian cancer cells, induces S- and G2/M-phase arrest and apoptosis, and suppresses cell migration and clonogenic growth. Chemoproteomic profiling indicates that US-CIS-OH directly engages the XPO1 and PARP1, and is associated with increased levels of cleaved caspase-3. In a cisplatin-resistant ovarian cancer xenograft model, US-CIS−OH elicits marked tumor regression with minimal toxicity. This dual-acting system achieves synergistic effects from both the intact conjugated and bioreductively released cisplatin. Collectively, these results identify US-CIS−OH as a promising next-generation platinum-based agent to overcome cisplatin resistance by enhancing DNA damage, promoting apoptosis, and limiting metastatic traits.

Journal of Medicinal Chemistry
Jiangnan University (CN), Xinjiang Medical University (CN), China Pharmaceutical University (CN), Guangdong Pharmaceutical University (CN), First Affiliated Hospital of Zhengzhou University (CN)
Good health and well-being
Openalex Percentile: Top 12%
Chemotherapy-induced organ toxicity mitigation
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