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探索转移耐药性癌症中细胞复苏与线粒体活性氧介导的铁死亡之间的关系:呼吁开展研究。

Exploring the relationship between anastasis and mitochondrial ROS-mediated ferroptosis in metastatic chemoresistant cancers: a call for investigation.

作者信息

Cao Yu, Lu Chang, Beeraka Narasimha M, Efetov Sergey, Enikeev Mikhail, Fu Yu, Yang Xinyi, Basappa Basappa, He Mingze, Li Zhi

机构信息

I.M. Sechenov First Moscow State Medical University of the Ministry of Health of the Russian Federation, Moscow, Russia.

Herman B. Wells Center for Pediatric Research, Department of Pediatrics, Indiana University School of Medicine, Indianapolis, IN, United States.

出版信息

Front Immunol. 2024 Jul 2;15:1428920. doi: 10.3389/fimmu.2024.1428920. eCollection 2024.

DOI:10.3389/fimmu.2024.1428920
PMID:39015566
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC11249567/
Abstract

Ferroptosis induces significant changes in mitochondrial morphology, including membrane condensation, volume reduction, cristae alteration, and outer membrane rupture, affecting mitochondrial function and cellular fate. Recent reports have described the intrinsic cellular iron metabolism and its intricate connection to ferroptosis, a significant kind of cell death characterized by iron dependence and oxidative stress regulation. Furthermore, updated molecular insights have elucidated the significance of mitochondria in ferroptosis and its implications in various cancers. In the context of cancer therapy, understanding the dual role of anastasis and ferroptosis in chemoresistance is crucial. Targeting the molecular pathways involved in anastasis may enhance the efficacy of ferroptosis inducers, providing a synergistic approach to overcome chemoresistance. Research into how DNA damage response (DDR) proteins, metabolic changes, and redox states interact during anastasis and ferroptosis can offer new insights into designing combinatorial therapeutic regimens against several cancers associated with stemness. These treatments could potentially inhibit anastasis while simultaneously inducing ferroptosis, thereby reducing the likelihood of cancer cells evading death and developing resistance to chemotherapy. The objective of this study is to explore the intricate interplay between anastasis, ferroptosis, EMT and chemoresistance, and immunotherapeutics to better understand their collective impact on cancer therapy outcomes. We searched public research databases including google scholar, PubMed, relemed, and the national library of medicine related to this topic. In this review, we discussed the interplay between the tricarboxylic acid cycle and glycolysis implicated in modulating ferroptosis, adding complexity to its regulatory mechanisms. Additionally, the regulatory role of reactive oxygen species (ROS) and the electron transport chain (ETC) in ferroptosis has garnered significant attention. Lipid metabolism, particularly involving GPX4 and System Xc- plays a significant role in both the progression of ferroptosis and cancer. There is a need to investigate the intricate interplay between anastasis, ferroptosis, and chemoresistance to better understand cancer therapy clinical outcomes. Integrating anastasis, and ferroptosis into strategies targeting chemoresistance and exploring its potential synergy with immunotherapy represent promising avenues for advancing chemoresistant cancer treatment. Understanding the intricate interplay among mitochondria, anastasis, ROS, and ferroptosis is vital in oncology, potentially revolutionizing personalized cancer treatment and drug development.

摘要

铁死亡会引起线粒体形态的显著变化,包括膜凝聚、体积减小、嵴改变和外膜破裂,从而影响线粒体功能和细胞命运。最近的报道描述了细胞内铁代谢及其与铁死亡的复杂联系,铁死亡是一种以铁依赖性和氧化应激调节为特征的重要细胞死亡类型。此外,最新的分子见解阐明了线粒体在铁死亡中的重要性及其在各种癌症中的意义。在癌症治疗背景下,了解复苏和铁死亡在化疗耐药中的双重作用至关重要。针对复苏过程中涉及的分子途径可能会增强铁死亡诱导剂的疗效,提供一种协同方法来克服化疗耐药性。研究DNA损伤反应(DDR)蛋白、代谢变化和氧化还原状态在复苏和铁死亡过程中如何相互作用,可以为设计针对几种与干性相关癌症的联合治疗方案提供新的见解。这些治疗方法可能会抑制复苏,同时诱导铁死亡,从而降低癌细胞逃避死亡和产生化疗耐药性的可能性。本研究的目的是探索复苏、铁死亡、上皮-间质转化(EMT)和化疗耐药性以及免疫治疗之间的复杂相互作用,以更好地了解它们对癌症治疗结果的综合影响。我们搜索了包括谷歌学术、PubMed、relemed和国家医学图书馆在内的与该主题相关的公共研究数据库。在本综述中,我们讨论了三羧酸循环与糖酵解之间的相互作用,其与调节铁死亡有关,增加了其调节机制的复杂性。此外,活性氧(ROS)和电子传递链(ETC)在铁死亡中的调节作用也备受关注。脂质代谢,特别是涉及谷胱甘肽过氧化物酶4(GPX4)和胱氨酸/谷氨酸反向转运体系统(System Xc-),在铁死亡和癌症进展中都起着重要作用。有必要研究复苏、铁死亡和化疗耐药性之间的复杂相互作用,以更好地了解癌症治疗的临床结果。将复苏和铁死亡纳入针对化疗耐药性的策略,并探索其与免疫治疗的潜在协同作用,是推进化疗耐药性癌症治疗的有前景的途径。了解线粒体、复苏、ROS和铁死亡之间的复杂相互作用在肿瘤学中至关重要,可能会彻底改变个性化癌症治疗和药物开发。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/8cf0/11249567/e523ae93a43d/fimmu-15-1428920-g004.jpg
https://cdn.ncbi.nlm.nih.gov/pmc/blobs/8cf0/11249567/e4842905de17/fimmu-15-1428920-g001.jpg
https://cdn.ncbi.nlm.nih.gov/pmc/blobs/8cf0/11249567/8dd21c65533a/fimmu-15-1428920-g002.jpg
https://cdn.ncbi.nlm.nih.gov/pmc/blobs/8cf0/11249567/3351283300a2/fimmu-15-1428920-g003.jpg
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https://cdn.ncbi.nlm.nih.gov/pmc/blobs/8cf0/11249567/e4842905de17/fimmu-15-1428920-g001.jpg
https://cdn.ncbi.nlm.nih.gov/pmc/blobs/8cf0/11249567/8dd21c65533a/fimmu-15-1428920-g002.jpg
https://cdn.ncbi.nlm.nih.gov/pmc/blobs/8cf0/11249567/3351283300a2/fimmu-15-1428920-g003.jpg
https://cdn.ncbi.nlm.nih.gov/pmc/blobs/8cf0/11249567/e523ae93a43d/fimmu-15-1428920-g004.jpg

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