High-adhesion ovarian cancer cell resistance to ferroptosis: The activation of NRF2/FSP1 pathway by junctional adhesion molecule JAM3.

IF 7.1 2区 生物学 Q1 BIOCHEMISTRY & MOLECULAR BIOLOGY Free Radical Biology and Medicine Pub Date : 2025-02-16 Epub Date: 2024-12-18 DOI:10.1016/j.freeradbiomed.2024.12.040
Ning Wang, Min Chen, Manting Wu, Yuan Liao, Qing Xia, Zheyou Cai, Chengsi He, Qing Tang, Yuan Zhou, Lei Zhao, Zhengzhi Zou, Yibing Chen, Liping Han
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Abstract

Ovarian cancer remains a significant challenge due to the lack of effective treatment and the resistance to conventional therapies. Ferroptosis, a form of regulated cell death characterized by iron-depend and lipid peroxidation, has emerged as a potential therapeutic target in cancer. Ovarian cancer has been reported to exert an "iron addiction" phenotype which makes it is susceptible to ferroptosis inducers. However, we found here that high-adhesion ovarian cancer cells were resistant to ferroptosis. Mechanistically, by PCR array, we identified junctional adhesion molecule 3 (JAM3) as a key mediator of ferroptosis resistance in high-adhesion ovarian cancer cells. Knockdowning and blocking JAM3 sensitized cancer cells to ferroptosis inducers RSL3 and erastin, while JAM3 overexpression conferred resistance to these agents. In addition, JAM3 also promoted ovarian cancer cells resistance to chemotherapeutic agent cisplatin in vitro and in vivo by inhibiting ferroptosis. Furthermore, we demonstrated that JAM3 promoted ferroptosis resistance through NRF2-induced upregulation of FSP1, a critical suppressor of lipid peroxidation. Inhibition of the NRF2/FSP1 pathway eliminated high-adhesion, JAM3 overexpressed ovarian cancer cells resistance to ferroptosis, and decreased cancer cells resistance to cisplatin. Moreover, JAM3 high expression was associated with poor prognosis in patients with ovarian cancer. Altogether, this study provided novel insights into the molecular mechanisms underlying ferroptosis resistance and identify JAM3 as a potential therapeutic target for combating drug resistance in ovarian cancer.

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高黏附卵巢癌细胞对铁凋亡的抗性:连接黏附分子JAM3激活NRF2/FSP1通路
由于缺乏有效的治疗方法和对传统疗法的耐药性,卵巢癌仍然是一个重大挑战。铁下垂是一种以铁依赖性和脂质过氧化为特征的调节细胞死亡形式,已成为癌症的潜在治疗靶点。据报道,卵巢癌具有“铁成瘾”表型,这使得它对铁下垂诱导剂敏感。然而,我们发现高黏附卵巢癌细胞对铁下垂具有抗性。在机制上,通过PCR阵列,我们确定了连接粘附分子3 (JAM3)是高粘附性卵巢癌细胞中铁凋亡抗性的关键介质。敲除和阻断JAM3使癌细胞对铁凋亡诱导剂RSL3和erastin敏感,而JAM3过表达使癌细胞对这些药物产生耐药性。此外,在体外和体内,JAM3还通过抑制铁下垂促进卵巢癌细胞对化疗药物顺铂的耐药。此外,我们证明JAM3通过nrf2诱导的FSP1上调来促进铁凋亡抵抗,FSP1是脂质过氧化的关键抑制因子。抑制NRF2/FSP1通路消除了高粘附,JAM3过表达卵巢癌细胞对铁下垂的耐药性,降低了癌细胞对顺铂的耐药性。此外,JAM3高表达与卵巢癌患者预后不良相关。总之,这项研究为揭示铁下垂耐药的分子机制提供了新的见解,并确定了JAM3作为对抗卵巢癌耐药的潜在治疗靶点。
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来源期刊
Free Radical Biology and Medicine
Free Radical Biology and Medicine 医学-内分泌学与代谢
CiteScore
14.00
自引率
4.10%
发文量
850
审稿时长
22 days
期刊介绍: Free Radical Biology and Medicine is a leading journal in the field of redox biology, which is the study of the role of reactive oxygen species (ROS) and other oxidizing agents in biological systems. The journal serves as a premier forum for publishing innovative and groundbreaking research that explores the redox biology of health and disease, covering a wide range of topics and disciplines. Free Radical Biology and Medicine also commissions Special Issues that highlight recent advances in both basic and clinical research, with a particular emphasis on the mechanisms underlying altered metabolism and redox signaling. These Special Issues aim to provide a focused platform for the latest research in the field, fostering collaboration and knowledge exchange among researchers and clinicians.
期刊最新文献
Interaction mechanism of lipid metabolism remodeling, oxidative stress, and immune response mediated by Epinephelus coioides SRECII. Corrigendum to "Melatonin alleviates early brain injury by inhibiting the NRF2-mediated ferroptosis pathway after subarachnoid hemorrhage" [Free Radic. Biol. Med. 208 (2023) 555-570]. CircMETTL9 targets CCAR2 to induce neuronal oxidative stress and apoptosis via mitochondria-mediated pathways following traumatic brain injury. High-adhesion ovarian cancer cell resistance to ferroptosis: The activation of NRF2/FSP1 pathway by junctional adhesion molecule JAM3. Relevance of the Platelet-activating factor system in chemical warfare agents-induced effects.
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