Inhibition of OXPHOS induces metabolic rewiring and reduces hypoxia in murine tumor models

被引:5
作者
Boreel, Daan F. [1 ,2 ]
Beerkens, Anne P. M. [1 ,2 ]
Heskamp, Sandra [2 ]
Boswinkel, Milou [2 ]
Peters, Johannes P. W. [1 ]
Adema, Gosse J. [1 ]
Span, Paul N. [1 ]
Bussink, Johan [1 ]
机构
[1] Radiotherapy & OncoImmunol Lab, Dept Radiat Oncol, Nijmegen, Netherlands
[2] Radboudumc, Dept Med Imaging, Geert Grooteplein zuid 10, NL-6525 GA Nijmegen, Netherlands
关键词
Hypoxia; Metabolism; OXPHOS; IACS-010759; Metformin; Atovaquone; OXIDATIVE-PHOSPHORYLATION; CANCER; RADIOTHERAPY; OXYGENATION; EXPRESSION; PREDICTS; EFFICACY; GLUCOSE;
D O I
10.1016/j.ctro.2024.100875
中图分类号
R73 [肿瘤学];
学科分类号
100214 ;
摘要
Introduction: Tumor hypoxia is a feature of many solid malignancies and is known to cause radio resistance. In recent years it has become clear that hypoxic tumor regions also foster an immunosuppressive phenotype and are involved in immunotherapy resistance. It has been proposed that reducing the tumors' oxygen consumption will result in an increased oxygen concentration in the tissue and improve radio- and immunotherapy efficacy. The aim of this study is to investigate the metabolic rewiring of cancer cells by pharmacological attenuation of oxidative phosphorylation (OXPHOS) and subsequently reduce tumor hypoxia. Material and methods: The metabolic effects of three OXPHOS inhibitors IACS-010759, atovaquone and metformin were explored by measuring oxygen consumption rate, extra cellular acidification rate, and [18F]FDG uptake in 2D and 3D cell culture. Tumor cell growth in 2D cell culture and hypoxia in 3D cell culture were analyzed by live cell imaging. Tumor hypoxia and [18F]FDG uptake in vivo following treatment with IACS-010759 was determined by immunohistochemistry and ex vivo biodistribution respectively. Results: In vitro experiments show that tumor cell metabolism is heterogeneous between different models. Upon OXPHOS inhibition, metabolism shifts from oxygen consumption through OXPHOS towards glycolysis, indicated by increased acidification and glucose uptake. Inhibition of OXPHOS by IACS-010759 treatment reduced diffusion limited tumor hypoxia in both 3D cell culture and in vivo. Although immune cell presence was lower in hypoxic areas compared with normoxic areas, it is not altered following short term OXPHOS inhibition. Discussion: These results show that inhibition of OXPHOS causes a metabolic shift from OXPHOS towards increased glycolysis in 2D and 3D cell culture. Moreover, inhibition of OXPHOS reduces diffusion limited hypoxia in 3D cell culture and murine tumor models. Reduced hypoxia by OXPHOS inhibition might enhance therapy efficacy in future studies. However, caution is warranted as systemic metabolic rewiring can cause adverse effects.
引用
收藏
页数:11
相关论文
共 52 条
[21]  
Joiner M.C., 2018, Basic clinical radiobiology, DOI DOI 10.1201/9780429490606
[22]   Glutamine blockade induces divergent metabolic programs to overcome tumor immune evasion [J].
Leone, Robert D. ;
Zhao, Liang ;
Englert, Judson M. ;
Sun, Im-Meng ;
Oh, Min-Hee ;
Sun, Im-Hong ;
Arwood, Matthew L. ;
Bettencourt, Ian A. ;
Patel, Chirag H. ;
Wen, Jiayu ;
Tam, Ada ;
Blosser, Richard L. ;
Prchalova, Eva ;
Alt, Jesse ;
Rais, Rana ;
Slusher, Barbara S. ;
Powell, Jonathan D. .
SCIENCE, 2019, 366 (6468) :1013-+
[23]   Targeting glucose and glutamine metabolism combined with radiation therapy in non-small cell lung cancer [J].
Meijer, Tineke W. H. ;
Peeters, Wenny J. M. ;
Dubois, Ludwig J. ;
van Gisbergen, Marike W. ;
Biemans, Rianne ;
Venhuizen, Jan-Hendrik ;
Span, Paul N. ;
Bussink, Johan .
LUNG CANCER, 2018, 126 :32-40
[24]   Targeting Hypoxia, HIF-1, and Tumor Glucose Metabolism to Improve Radiotherapy Efficacy [J].
Meijer, Tineke W. H. ;
Kaanders, Johannes H. A. M. ;
Span, Paul N. ;
Bussink, Johan .
CLINICAL CANCER RESEARCH, 2012, 18 (20) :5585-5594
[25]   An inhibitor of oxidative phosphorylation exploits cancer vulnerability [J].
Molina, Jennifer R. ;
Sun, Yuting ;
Protopopova, Marina ;
Gera, Sonal ;
Bandi, Madhavi ;
Bristow, Christopher ;
McAfoos, Timothy ;
Morlacchi, Pietro ;
Ackroyd, Jeffrey ;
Agip, Ahmed-Noor A. ;
Al-Atrash, Gheath ;
Asara, John ;
Bardenhagen, Jennifer ;
Carrillo, Caroline C. ;
Carroll, Christopher ;
Chang, Edward ;
Ciurea, Stefan ;
Cross, Jason B. ;
Czako, Barbara ;
Deem, Angela ;
Daver, Naval ;
de Groot, John Frederick ;
Dong, Jian-Wen ;
Feng, Ningping ;
Gao, Guang ;
Gay, Jason ;
Do, Mary Geck ;
Greer, Jennifer ;
Giuliani, Virginia ;
Han, Jing ;
Han, Lina ;
Henry, Verlene K. ;
Hirst, Judy ;
Huang, Sha ;
Jiang, Yongying ;
Kang, Zhijun ;
Khor, Tin ;
Konoplev, Sergej ;
Lin, Yu-Hsi ;
Liu, Gang ;
Lodi, Alessia ;
Lofton, Timothy ;
Ma, Helen ;
Mahendra, Mikhila ;
Matre, Polina ;
Mullinax, Robert ;
Peoples, Michael ;
Petrocchi, Alessia ;
Rodriguez-Canale, Jaime ;
Serreli, Riccardo .
NATURE MEDICINE, 2018, 24 (07) :1036-+
[26]   Different Tumor Microenvironments Contain Functionally Distinct Subsets of Macrophages Derived from Ly6C(high) Monocytes [J].
Movahedi, Kiavash ;
Laoui, Damya ;
Gysemans, Conny ;
Baeten, Martijn ;
Stange, Geert ;
Van den Bossche, Jan ;
Mack, Matthias ;
Pipeleers, Daniel ;
Veld, Peter In't ;
De Baetselier, Patrick ;
Van Ginderachter, Jo A. .
CANCER RESEARCH, 2010, 70 (14) :5728-5739
[27]   Generation of multicellular tumor spheroids of breast cancer cells: How to go three-dimensional [J].
Nagelkerke, Anika ;
Bussink, Johan ;
Sweep, Fred C. G. J. ;
Span, Paul N. .
ANALYTICAL BIOCHEMISTRY, 2013, 437 (01) :17-19
[28]   Tumor cell oxidative metabolism as a barrier to PD-1 blockade immunotherapy in melanoma [J].
Najjar, Yana G. ;
Menk, Ashley, V ;
Sander, Cindy ;
Rao, Uma ;
Karunamurthy, Arivarasan ;
Bhatia, Roma ;
Zhai, Shuyan ;
Kirkwood, John M. ;
Delgoffe, Greg M. .
JCI INSIGHT, 2019, 4 (05)
[29]   Inhibition of glycolysis and mitochondrial respiration promotes radiosensitisation of neuroblastoma and glioma cells [J].
Nile, Donna L. ;
Rae, Colin ;
Walker, David J. ;
Waddington, Joe Canning ;
Vincent, Isabel ;
Burgess, Karl ;
Gaze, Mark N. ;
Mairs, Robert J. ;
Chalmers, Anthony J. .
CANCER & METABOLISM, 2021, 9 (01)
[30]   Simultaneous targeting of glycolysis and oxidative phosphorylation as a therapeutic strategy to treat diffuse large B-cell lymphoma [J].
Noble, Richard A. ;
Thomas, Huw ;
Zhao, Yan ;
Herendi, Lili ;
Howarth, Rachel ;
Dragoni, Ilaria ;
Keun, Hector C. ;
Vellano, Christopher P. ;
Marszalek, Joseph R. ;
Wedge, Stephen R. .
BRITISH JOURNAL OF CANCER, 2022, 127 (05) :937-947