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CD8+ T cells regulate tumour ferroptosis during cancer immunotherapy

Author

Listed:
  • Weimin Wang

    (University of Michigan School of Medicine
    University of Michigan Rogel Cancer Center, University of Michigan School of Medicine)

  • Michael Green

    (University of Michigan Rogel Cancer Center, University of Michigan School of Medicine
    University of Michigan School of Medicine)

  • Jae Eun Choi

    (University of Michigan Rogel Cancer Center, University of Michigan School of Medicine
    University of Michigan School of Medicine
    University of Michigan School of Medicine)

  • Miguel Gijón

    (Cayman Chemical Company)

  • Paul D. Kennedy

    (Cayman Chemical Company)

  • Jeffrey K. Johnson

    (Cayman Chemical Company)

  • Peng Liao

    (University of Michigan School of Medicine
    University of Michigan Rogel Cancer Center, University of Michigan School of Medicine)

  • Xueting Lang

    (University of Michigan School of Medicine
    University of Michigan Rogel Cancer Center, University of Michigan School of Medicine
    University of Michigan School of Medicine)

  • Ilona Kryczek

    (University of Michigan School of Medicine
    University of Michigan Rogel Cancer Center, University of Michigan School of Medicine)

  • Amanda Sell

    (University of Michigan School of Medicine
    University of Michigan Rogel Cancer Center, University of Michigan School of Medicine)

  • Houjun Xia

    (University of Michigan School of Medicine
    University of Michigan Rogel Cancer Center, University of Michigan School of Medicine)

  • Jiajia Zhou

    (University of Michigan School of Medicine
    University of Michigan Rogel Cancer Center, University of Michigan School of Medicine)

  • Gaopeng Li

    (University of Michigan School of Medicine
    University of Michigan Rogel Cancer Center, University of Michigan School of Medicine)

  • Jing Li

    (University of Michigan School of Medicine
    University of Michigan Rogel Cancer Center, University of Michigan School of Medicine)

  • Wei Li

    (University of Michigan School of Medicine
    University of Michigan Rogel Cancer Center, University of Michigan School of Medicine)

  • Shuang Wei

    (University of Michigan School of Medicine
    University of Michigan Rogel Cancer Center, University of Michigan School of Medicine)

  • Linda Vatan

    (University of Michigan School of Medicine
    University of Michigan Rogel Cancer Center, University of Michigan School of Medicine)

  • Hongjuan Zhang

    (University of Michigan School of Medicine
    University of Michigan Rogel Cancer Center, University of Michigan School of Medicine)

  • Wojciech Szeliga

    (University of Michigan School of Medicine
    University of Michigan Rogel Cancer Center, University of Michigan School of Medicine)

  • Wei Gu

    (Columbia University)

  • Rebecca Liu

    (University of Michigan School of Medicine)

  • Theodore S. Lawrence

    (University of Michigan School of Medicine)

  • Candice Lamb

    (University of Texas at Austin
    University of Texas at Austin)

  • Yuri Tanno

    (University of Texas at Austin
    University of Texas at Austin)

  • Marcin Cieslik

    (University of Michigan School of Medicine
    University of Michigan School of Medicine)

  • Everett Stone

    (University of Texas at Austin
    University of Texas at Austin)

  • George Georgiou

    (University of Texas at Austin
    University of Texas at Austin)

  • Timothy A. Chan

    (Memorial Sloan Kettering Cancer Center)

  • Arul Chinnaiyan

    (University of Michigan School of Medicine
    University of Michigan School of Medicine
    University of Michigan School of Medicine)

  • Weiping Zou

    (University of Michigan School of Medicine
    University of Michigan Rogel Cancer Center, University of Michigan School of Medicine
    University of Michigan School of Medicine
    University of Michigan School of Medicine)

Abstract

Cancer immunotherapy restores or enhances the effector function of CD8+ T cells in the tumour microenvironment1,2. CD8+ T cells activated by cancer immunotherapy clear tumours mainly by inducing cell death through perforin–granzyme and Fas–Fas ligand pathways3,4. Ferroptosis is a form of cell death that differs from apoptosis and results from iron-dependent accumulation of lipid peroxide5,6. Although it has been investigated in vitro7,8, there is emerging evidence that ferroptosis might be implicated in a variety of pathological scenarios9,10. It is unclear whether, and how, ferroptosis is involved in T cell immunity and cancer immunotherapy. Here we show that immunotherapy-activated CD8+ T cells enhance ferroptosis-specific lipid peroxidation in tumour cells, and that increased ferroptosis contributes to the anti-tumour efficacy of immunotherapy. Mechanistically, interferon gamma (IFNγ) released from CD8+ T cells downregulates the expression of SLC3A2 and SLC7A11, two subunits of the glutamate–cystine antiporter system xc−, impairs the uptake of cystine by tumour cells, and as a consequence, promotes tumour cell lipid peroxidation and ferroptosis. In mouse models, depletion of cystine or cysteine by cyst(e)inase (an engineered enzyme that degrades both cystine and cysteine) in combination with checkpoint blockade synergistically enhanced T cell-mediated anti-tumour immunity and induced ferroptosis in tumour cells. Expression of system xc− was negatively associated, in cancer patients, with CD8+ T cell signature, IFNγ expression, and patient outcome. Analyses of human transcriptomes before and during nivolumab therapy revealed that clinical benefits correlate with reduced expression of SLC3A2 and increased IFNγ and CD8. Thus, T cell-promoted tumour ferroptosis is an anti-tumour mechanism, and targeting this pathway in combination with checkpoint blockade is a potential therapeutic approach.

Suggested Citation

  • Weimin Wang & Michael Green & Jae Eun Choi & Miguel Gijón & Paul D. Kennedy & Jeffrey K. Johnson & Peng Liao & Xueting Lang & Ilona Kryczek & Amanda Sell & Houjun Xia & Jiajia Zhou & Gaopeng Li & Jing, 2019. "CD8+ T cells regulate tumour ferroptosis during cancer immunotherapy," Nature, Nature, vol. 569(7755), pages 270-274, May.
  • Handle: RePEc:nat:nature:v:569:y:2019:i:7755:d:10.1038_s41586-019-1170-y
    DOI: 10.1038/s41586-019-1170-y
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    Citations

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    Cited by:

    1. Wenqing Xu & Guanheng Huang & Zhan Yang & Ziqi Deng & Chen Zhou & Jian-An Li & Ming-De Li & Tao Hu & Ben Zhong Tang & David Lee Phillips, 2024. "Nucleic-acid-base photofunctional cocrystal for information security and antimicrobial applications," Nature Communications, Nature, vol. 15(1), pages 1-9, December.
    2. Mingming Wu & Xiao Zhang & Weijie Zhang & Yi Shiou Chiou & Wenchang Qian & Xiangtian Liu & Min Zhang & Hong Yan & Shilan Li & Tao Li & Xinghua Han & Pengxu Qian & Suling Liu & Yueyin Pan & Peter E. Lo, 2022. "Cancer stem cell regulated phenotypic plasticity protects metastasized cancer cells from ferroptosis," Nature Communications, Nature, vol. 13(1), pages 1-16, December.
    3. Di-Yang Sun & Wen-Bin Wu & Jian-Jin Wu & Yu Shi & Jia-Jun Xu & Shen-Xi Ouyang & Chen Chi & Yi Shi & Qing-Xin Ji & Jin-Hao Miao & Jiang-Tao Fu & Jie Tong & Ping-Ping Zhang & Jia-Bao Zhang & Zhi-Yong Li, 2024. "Pro-ferroptotic signaling promotes arterial aging via vascular smooth muscle cell senescence," Nature Communications, Nature, vol. 15(1), pages 1-22, December.
    4. Li-Kai Chu & Xu Cao & Lin Wan & Qiang Diao & Yu Zhu & Yu Kan & Li-Li Ye & Yi-Ming Mao & Xing-Qiang Dong & Qian-Wei Xiong & Ming-Cui Fu & Ting Zhang & Hui-Ting Zhou & Shi-Zhong Cai & Zhou-Rui Ma & Ssu-, 2023. "Autophagy of OTUD5 destabilizes GPX4 to confer ferroptosis-dependent kidney injury," Nature Communications, Nature, vol. 14(1), pages 1-17, December.
    5. Zhigui Zuo & Hao Yin & Yu Zhang & Congying Xie & Qinyang Wang, 2023. "A cytotoxic T cell inspired oncolytic nanosystem promotes lytic cell death by lipid peroxidation and elicits antitumor immune responses," Nature Communications, Nature, vol. 14(1), pages 1-18, December.
    6. Dadi Jiang & Youming Guo & Tianyu Wang & Liang Wang & Yuelong Yan & Ling Xia & Rakesh Bam & Zhifen Yang & Hyemin Lee & Takao Iwawaki & Boyi Gan & Albert C. Koong, 2024. "IRE1α determines ferroptosis sensitivity through regulation of glutathione synthesis," Nature Communications, Nature, vol. 15(1), pages 1-16, December.
    7. Bujamin H. Vokshi & Guillaume Davidson & Nassim Tawanaie Pour Sedehi & Alexandra Helleux & Marc Rippinger & Alexandre R. Haller & Justine Gantzer & Jonathan Thouvenin & Philippe Baltzinger & Rachida B, 2023. "SMARCB1 regulates a TFCP2L1-MYC transcriptional switch promoting renal medullary carcinoma transformation and ferroptosis resistance," Nature Communications, Nature, vol. 14(1), pages 1-19, December.
    8. Pranavi Koppula & Guang Lei & Yilei Zhang & Yuelong Yan & Chao Mao & Lavanya Kondiparthi & Jiejun Shi & Xiaoguang Liu & Amber Horbath & Molina Das & Wei Li & Masha V. Poyurovsky & Kellen Olszewski & B, 2022. "A targetable CoQ-FSP1 axis drives ferroptosis- and radiation-resistance in KEAP1 inactive lung cancers," Nature Communications, Nature, vol. 13(1), pages 1-16, December.
    9. Ying Xue & Fujia Lu & Zhenzhen Chang & Jing Li & Yuan Gao & Jie Zhou & Ying Luo & Yongfeng Lai & Siyuan Cao & Xiaoxiao Li & Yuhan Zhou & Yan Li & Zheng Tan & Xiang Cheng & Xiong Li & Jing Chen & Weimi, 2023. "Intermittent dietary methionine deprivation facilitates tumoral ferroptosis and synergizes with checkpoint blockade," Nature Communications, Nature, vol. 14(1), pages 1-21, December.
    10. Zhihong Wang & He Wang & Yan Zhou & Lu Li & Mengge Lyu & Chunlong Wu & Tianen He & Lingling Tan & Yi Zhu & Tiannan Guo & Hongkun Wu & Hao Zhang & Yaoting Sun, 2024. "An individualized protein-based prognostic model to stratify pediatric patients with papillary thyroid carcinoma," Nature Communications, Nature, vol. 15(1), pages 1-13, December.

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