Lipotoxicity, lipid peroxidation and ferroptosis: a dilemma in cancer therapy

被引:1
作者
Ma, Chuhan [1 ]
Hu, Huixin [1 ]
Liu, Hao [1 ]
Zhong, Chongli [1 ]
Wu, Baokang [1 ]
Lv, Chao [1 ]
Tian, Yu [1 ]
机构
[1] China Med Univ, Dept Gen Surg, Shengjing Hosp, Shenyang 110004, Liaoning, Peoples R China
基金
中国国家自然科学基金;
关键词
Lipid peroxidation; Ferroptosis; Active aldehyde; Oxidized lipid; Immune cells; HUMAN COLON-CANCER; OXIDATIVE STRESS; APOPTOTIC CELLS; OXIDIZED LIPIDS; FATTY-ACIDS; METABOLISM; ALDEHYDE; PHAGOCYTOSIS; ACTIVATION; RLIP76;
D O I
10.1007/s10565-025-10025-7
中图分类号
Q2 [细胞生物学];
学科分类号
071009 ; 090102 ;
摘要
The vulnerability of tumor cells to lipid peroxidation, driven by redox imbalance and lipid overabundance within the tumor microenvironment (TME), has become a focal point for novel antitumor strategies. Ferroptosis, a form of regulated cell death predicated on lipid peroxidation, is emerging as a promising approach. Beyond their role in directly eliminating tumor cells, lipid peroxidation and its products, such as 4-hydroxynonenal (HNE), exert an additional influence by damaging DNA and shaping an environment conducive to tumor growth and metastasis. This process polarizes macrophages towards a pro-inflammatory phenotype, dampens the antigen-presenting capacity of dendritic cells (DCs), and undermines the cytotoxic functions of T and NK cells. Furthermore, it transforms neutrophils into pro-tumorigenic polymorphonuclear myeloid-derived suppressor cells (PMN-MDSCs). The lipid peroxidation of stroma cells also contributes to tumor progression. Although advanced nanotherapies have shown the ability to target tumor cells precisely, they often overlook the nuanced effects of lipid peroxidation products. In this review, we highlight a synergistic mechanism in which lipid peroxidation products and ferroptosis contribute to an immunosuppressive state that is temporally distinct from cell death. This insight broadens our understanding of ferroptosis-derived immunosuppression, encompassing all types of immune cells within the TME. This review aims to catalyze further research in this underexplored area, emphasizing the potential of lipid peroxidation products to hinder the clinical translation of ferroptosis-based therapies.
引用
收藏
页数:23
相关论文
共 157 条
[1]   Peptidyl-prolyl cis/trans-Isomerase A1 (Pin1) Is a Target for Modification by Lipid Electrophiles [J].
Aluise, Christopher D. ;
Rose, Kristie ;
Boiani, Mariana ;
Reyzer, Michelle L. ;
Manna, Joseph D. ;
Tallman, Keri ;
Porter, Ned A. ;
Marnett, Lawrence J. .
CHEMICAL RESEARCH IN TOXICOLOGY, 2013, 26 (02) :270-279
[2]   Ferroptosis at the crossroads of cancer-acquired drug resistance and immune evasion [J].
Angeli, Jose Pedro Friedmann ;
Krysko, Dmitri, V ;
Conrad, Marcus .
NATURE REVIEWS CANCER, 2019, 19 (07) :405-414
[3]   Oxidized Phospholipid oxPAPC Alters Regulatory T-Cell Differentiation and Decreases Their Protective Function in Atherosclerosis in Mice [J].
Appleton, Brenna D. ;
Palmer, Sydney A. ;
Smith, Harrison P. ;
Stephens, Lilly E. ;
Major, Amy S. .
ARTERIOSCLEROSIS THROMBOSIS AND VASCULAR BIOLOGY, 2023, 43 (11) :2119-2132
[4]   Neutrophil extracellular traps in acrolein promoted hepatic ischemia reperfusion injury: Therapeutic potential of NOX2 and p38MAPK inhibitors [J].
Arumugam, Suyavaran ;
Girish, Kesthuru Subbiah ;
Kemparaju, Kempaiah ;
Thirunavukkarasu, Chinnasamy .
JOURNAL OF CELLULAR PHYSIOLOGY, 2018, 233 (04) :3244-3261
[5]   Compartmentalized regulation of lipid signaling in oxidative stress and inflammation: Plasmalogens, oxidized lipids and ferroptosis as new paradigms of bioactive lipid research [J].
Astudillo, Alma M. ;
Balboa, Maria A. ;
Balsinde, Jesus .
PROGRESS IN LIPID RESEARCH, 2023, 89
[6]   Oxidized LDL induced extracellular trap formation in human neutrophils via TLR-PKC-IRAK-MAPK and NADPH-oxidase activation [J].
Awasthi, Deepika ;
Nagarkoti, Sheela ;
Kumar, Amit ;
Dubey, Megha ;
Singh, Abhishek Kumar ;
Pathak, Priya ;
Chandra, Tulika ;
Barthwal, Manoj Kumar ;
Dikshit, Madhu .
FREE RADICAL BIOLOGY AND MEDICINE, 2016, 93 :190-203
[7]   4-Hydroxy-2(E)-nonenal Metabolism Differs in Apc+/+ Cells and in ApcMin/+ Cells: It May Explain Colon Cancer Promotion by Heme Iron [J].
Baradat, Maryse ;
Jouanin, Isabelle ;
Dalleau, Sabine ;
Tache, Sylviane ;
Gieules, Mathilde ;
Debrauwer, Laurent ;
Canlet, Cecile ;
Huc, Laurence ;
Dupuy, Jacques ;
Pierre, Fabrice H. F. ;
Gueraud, Francoise .
CHEMICAL RESEARCH IN TOXICOLOGY, 2011, 24 (11) :1984-1993
[8]   Role of 4-Hydroxynonenal-Protein Adducts in Human Diseases [J].
Barrera, Giuseppina ;
Pizzimenti, Stefania ;
Ciamporcero, Eric Stefano ;
Daga, Martina ;
Ullio, Chiara ;
Arcaro, Alessia ;
Cetrangolo, Giovanni Paolo ;
Ferretti, Carlo ;
Dianzani, Chiara ;
Lepore, Alessio ;
Gentile, Fabrizio .
ANTIOXIDANTS & REDOX SIGNALING, 2015, 22 (18) :1681-1702
[9]   Interferon-α Up-Regulates the Expression of PD-L1 Molecules on Immune Cells Through STAT3 and p38 Signaling [J].
Bazhin, Alexandr V. ;
von Ahn, Katharina ;
Fritz, Jasmin ;
Werner, Jens ;
Karakhanova, Svetlana .
FRONTIERS IN IMMUNOLOGY, 2018, 9
[10]   The CoQ oxidoreductase FSP1 acts parallel to GPX4 to inhibit ferroptosis [J].
Bersuker, Kirill ;
Hendricks, Joseph M. ;
Li, Zhipeng ;
Magtanong, Leslie ;
Ford, Breanna ;
Tang, Peter H. ;
Roberts, Melissa A. ;
Tong, Bingqi ;
Maimone, Thomas J. ;
Zoncu, Roberto ;
Bassik, Michael C. ;
Nomura, Daniel K. ;
Dixon, Scott J. ;
Olzmann, James A. .
NATURE, 2019, 575 (7784) :688-+