Non-coding RNAs and ferroptosis: potential implications for cancer therapy

被引:111
作者
Balihodzic, Amar [1 ,2 ]
Prinz, Felix [1 ,2 ]
Dengler, Michael A. [1 ]
Calin, George A. [3 ]
Jost, Philipp J. [1 ,4 ]
Pichler, Martin [1 ,2 ,5 ]
机构
[1] Med Univ Graz, Div Oncol, Dept Internal Med, A-8036 Graz, Austria
[2] Med Univ Graz, Div Oncol, Res Unit Noncoding RNAs & Genome Editing Canc, A-8036 Graz, Austria
[3] Univ Texas MD Anderson Canc Ctr, Dept Translat Mol Pathol, Houston, TX 77030 USA
[4] Tech Univ Munich, TUM Sch Med, Med Dept Hematol & Oncol 3, Munich, Germany
[5] Univ Texas MD Anderson Canc Ctr, Dept Expt Therapeut, Houston, TX 77030 USA
基金
奥地利科学基金会;
关键词
CELL-DEATH; CISPLATIN RESISTANCE; PROMOTES FERROPTOSIS; DEPENDENT MANNER; DRUG-RESISTANCE; TARGET; AXIS; AUTOPHAGY; PROLIFERATION; ACTIVATION;
D O I
10.1038/s41418-022-00998-x
中图分类号
Q5 [生物化学]; Q7 [分子生物学];
学科分类号
071010 ; 081704 ;
摘要
Ferroptosis is a recently defined form of regulated cell death, which is biochemically and morphologically distinct from traditional forms of programmed cell death such as apoptosis or necrosis. It is driven by iron, reactive oxygen species, and phospholipids that are oxidatively damaged, ultimately resulting in mitochondrial damage and breakdown of membrane integrity. Numerous cellular signaling pathways and molecules are involved in the regulation of ferroptosis, including enzymes that control the cellular redox status. Alterations in the ferroptosis-regulating network can contribute to the development of various diseases, including cancer. Evidence suggests that ferroptosis is commonly suppressed in cancer cells, allowing them to survive and progress. However, cancer cells which are resistant to common chemotherapeutic drugs seem to be highly susceptible to ferroptosis inducers, highlighting the great potential of pharmacologic modulation of ferroptosis for cancer treatment. Non-coding RNAs (ncRNAs) are considered master regulators of various cellular processes, particularly in cancer where they have been implicated in all hallmarks of cancer. Recent work also demonstrated their involvement in the molecular control of ferroptosis. Hence, ncRNA-based therapeutics represent an exciting alternative to modulate ferroptosis for cancer therapy. This review summarizes the ncRNAs implicated in the regulation of ferroptosis in cancer and highlights their underlying molecular mechanisms in the light of potential therapeutic applications.
引用
收藏
页码:1094 / 1106
页数:13
相关论文
共 182 条
[11]   CircGFRA1 facilitates the malignant progression of HER-2-positive breast cancer via acting as a sponge of miR-1228 and enhancing AIFM2 expression [J].
Bazhabayi, Meiheban ;
Qiu, Xingsheng ;
Li, Xing ;
Yang, Anli ;
Wen, Wei ;
Zhang, Xiaoli ;
Xiao, Xiangsheng ;
He, Rongfang ;
Liu, Peng .
JOURNAL OF CELLULAR AND MOLECULAR MEDICINE, 2021, 25 (21) :10248-10256
[12]   Emerging connectivity of programmed cell death pathways and its physiological implications [J].
Bedoui, Sammy ;
Herold, Marco J. ;
Strasser, Andreas .
NATURE REVIEWS MOLECULAR CELL BIOLOGY, 2020, 21 (11) :678-695
[13]   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-+
[14]   Tryparedoxin peroxidase-deficiency commits trypanosomes to ferroptosis-type cell death [J].
Bogacz, Marta ;
Krauth-Siegel, R. Luise .
ELIFE, 2018, 7
[15]   Modelling Competing Endogenous RNA Networks [J].
Bosia, Carla ;
Pagnani, Andrea ;
Zecchina, Riccardo .
PLOS ONE, 2013, 8 (06)
[16]   Endogenous miRNA and Target Concentrations Determine Susceptibility to Potential ceRNA Competition [J].
Bosson, Andrew D. ;
Zamudio, Jesse R. ;
Sharp, Phillip A. .
MOLECULAR CELL, 2014, 56 (03) :347-359
[17]   Prominin2 Drives Ferroptosis Resistance by Stimulating Iron Export [J].
Brown, Caitlin W. ;
Amante, John J. ;
Chhoy, Peter ;
Elaimy, Ameer L. ;
Liu, Haibo ;
Zhu, Lihua Julie ;
Baer, Christina E. ;
Dixon, Scott J. ;
Mercurio, Arthur M. .
DEVELOPMENTAL CELL, 2019, 51 (05) :575-+
[18]   Frequent deletions and down-regulation of micro-RNA genes miR15 and miR16 at 13q14 in chronic lymphocytic leukemia [J].
Calin, GA ;
Dumitru, CD ;
Shimizu, M ;
Bichi, R ;
Zupo, S ;
Noch, E ;
Aldler, H ;
Rattan, S ;
Keating, M ;
Rai, K ;
Rassenti, L ;
Kipps, T ;
Negrini, M ;
Bullrich, F ;
Croce, CM .
PROCEEDINGS OF THE NATIONAL ACADEMY OF SCIENCES OF THE UNITED STATES OF AMERICA, 2002, 99 (24) :15524-15529
[19]   MiR-15a and miR-16-1 cluster functions in human leukemia [J].
Calin, George A. ;
Cimmino, Amelia ;
Fabbri, Muller ;
Ferracin, Manuela ;
Wojcik, Sylwia E. ;
Shimizu, Masayoshi ;
Taccioli, Cristian ;
Zanesi, Nicola ;
Garzon, Ramiro ;
Aqeilan, Rami I. ;
Alder, Hansjuerg ;
Volinia, Stefano ;
Rassenti, Laura ;
Liu, Xiuping ;
Liu, Chang-gong ;
Kipps, Thomas J. ;
Negrini, Massimo ;
Croce, Carlo M. .
PROCEEDINGS OF THE NATIONAL ACADEMY OF SCIENCES OF THE UNITED STATES OF AMERICA, 2008, 105 (13) :5166-5171
[20]   The Noncoding RNA Revolution-Trashing Old Rules to Forge New Ones [J].
Cech, Thomas R. ;
Steitz, Joan A. .
CELL, 2014, 157 (01) :77-94