Targeting IRG1 reverses the immunosuppressive function of tumor-associated macrophages and enhances cancer immunotherapy
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Y. Xiong | K. Guan | H. Saiyin | G. Zhu | D. Ye | Lei-lei Chen | Yu-Jia Chen | Jinye Zhang | Yiping Sun | Yong Yang | Zhen Yang | Cheng Zhang | Xudong Wang | Jin Zhang | M. Fu | Guan-Nan Li | Zhou-Li Cheng | Xian-Jing Li | Wenwei Zhu | Weiren Liu | Lin-Xing Wei
[1] K. Flaherty,et al. Myeloid-derived itaconate suppresses cytotoxic CD8+ T cells and promotes tumour growth. , 2022, Nature metabolism.
[2] R. Offringa,et al. The expanding role for small molecules in immuno-oncology , 2022, Nature Reviews Drug Discovery.
[3] P. Sharma,et al. Myeloid cell-targeted therapies for solid tumours , 2022, Nature Reviews Immunology.
[4] Binzhi Qian,et al. Macrophage diversity in cancer revisited in the era of single-cell omics. , 2022, Trends in immunology.
[5] Y. Zeng,et al. Itaconate is a lysosomal inducer that promotes antibacterial innate immunity. , 2022, Molecular cell.
[6] Weiguo Zou,et al. Discovery and Application of Postnatal Nucleus Pulposus Progenitors Essential for Intervertebral Disc Homeostasis and Degeneration , 2022, Advanced science.
[7] A. Chen,et al. Single-cell RNA-Seq analysis of diabetic wound macrophages in STZ-induced mice , 2021, Journal of Cell Communication and Signaling.
[8] Yuan Zhang,et al. The allergy mediator histamine confers resistanceto immunotherapy in cancer patients via activationof the macrophage histamine receptor H1. , 2021, Cancer cell.
[9] Matthew D. Smith,et al. Itaconate inhibits TET DNA dioxygenases to dampen inflammatory responses , 2021, Nature Cell Biology.
[10] T. Gerasimova,et al. Macrophages Derived From Human Induced Pluripotent Stem Cells: The Diversity of Protocols, Future Prospects, and Outstanding Questions , 2021, Frontiers in Cell and Developmental Biology.
[11] K. Zen,et al. Intratumoral SIRPα-deficient macrophages activate tumor antigen-specific cytotoxic T cells under radiotherapy , 2021, Nature Communications.
[12] Martin L. Miller,et al. Promises and challenges of adoptive T-cell therapies for solid tumours , 2021, British Journal of Cancer.
[13] V. Pillarisetty,et al. Key chemokines direct migration of immune cells in solid tumors , 2021, Cancer gene therapy.
[14] H. Dweep,et al. Analysis of classical neutrophils and polymorphonuclear myeloid-derived suppressor cells in cancer patients and tumor-bearing mice , 2021, The Journal of experimental medicine.
[15] Xueda Hu,et al. A pan-cancer single-cell transcriptional atlas of tumor infiltrating myeloid cells , 2021, Cell.
[16] T. Maher,et al. Itaconate controls the severity of pulmonary fibrosis , 2020, Science Immunology.
[17] J. Barton,et al. In vivo anticancer activity of a rhodium metalloinsertor in the HCT116 xenograft tumor model , 2020, Proceedings of the National Academy of Sciences.
[18] Deepali V. Sawant,et al. Single-Cell Analyses Inform Mechanisms of Myeloid-Targeted Therapies in Colon Cancer , 2020, Cell.
[19] Martha E. Zeeman,et al. Human chimeric antigen receptor macrophages for cancer immunotherapy , 2020, Nature Biotechnology.
[20] T. Billiar,et al. Immune‐Responsive Gene 1/Itaconate Activates Nuclear Factor Erythroid 2–Related Factor 2 in Hepatocytes to Protect Against Liver Ischemia–Reperfusion Injury , 2020, Hepatology.
[21] Michael A. Durante,et al. Single-cell analysis reveals new evolutionary complexity in uveal melanoma , 2020, Nature Communications.
[22] Anthony M. Haag,et al. Phagocytosis by macrophages depends on histamine H2 receptor signaling and scavenger receptor 1 , 2019, MicrobiologyOpen.
[23] Yanling Zhang,et al. S-glycosylation-based cysteine profiling reveals regulation of glycolysis by itaconate , 2019, Nature Chemical Biology.
[24] C. Peano,et al. Neutrophils Driving Unconventional T Cells Mediate Resistance against Murine Sarcomas and Selected Human Tumors , 2019, Cell.
[25] M. M. Parisi,et al. Attenuated inflammatory response of monocyte-derived macrophage from patients with BD: a preliminary report , 2019, International Journal of Bipolar Disorders.
[26] T. Chan,et al. The evolving landscape of biomarkers for checkpoint inhibitor immunotherapy , 2019, Nature Reviews Cancer.
[27] J. Locasale,et al. The Nucleotide Sensor ZBP1 and Kinase RIPK3 Induce the Enzyme IRG1 to Promote an Antiviral Metabolic State in Neurons , 2019, Immunity.
[28] Y. Xiong,et al. SNIP1 Recruits TET2 to Regulate c-MYC Target Genes and Cellular DNA Damage Response , 2018, Cell reports.
[29] J. Pollard,et al. Targeting macrophages: therapeutic approaches in cancer , 2018, Nature Reviews Drug Discovery.
[30] Maxim N. Artyomov,et al. Irg1 expression in myeloid cells prevents immunopathology during M. tuberculosis infection , 2018, The Journal of experimental medicine.
[31] Maxim N. Artyomov,et al. Electrophilic properties of itaconate and derivatives regulate the IκBζ–ATF3 inflammatory axis , 2018, Nature.
[32] Edward T Chouchani,et al. Itaconate is an anti-inflammatory metabolite that activates Nrf2 via alkylation of KEAP1 , 2018, Nature.
[33] Jingqin Luo,et al. Tissue‐Resident Macrophages in Pancreatic Ductal Adenocarcinoma Originate from Embryonic Hematopoiesis and Promote Tumor Progression , 2017, Immunity.
[34] Icgc,et al. Pan-cancer analysis of whole genomes , 2017, bioRxiv.
[35] Maxim N. Artyomov,et al. Itaconate Links Inhibition of Succinate Dehydrogenase with Macrophage Metabolic Remodeling and Regulation of Inflammation. , 2016, Cell metabolism.
[36] Zhigang Zhao,et al. The catalytic activity of TET2 is essential for its myeloid malignancy-suppressive function in hematopoietic stem/progenitor cells , 2016, Leukemia.
[37] Jun S. Liu,et al. The Genotype-Tissue Expression (GTEx) pilot analysis: Multitissue gene regulation in humans , 2015, Science.
[38] Kathryn E. Crosier,et al. Immunoresponsive gene 1 augments bactericidal activity of macrophage-lineage cells by regulating β-oxidation-dependent mitochondrial ROS production. , 2013, Cell metabolism.
[39] R. Balling,et al. Immune-responsive gene 1 protein links metabolism to immunity by catalyzing itaconic acid production , 2013, Proceedings of the National Academy of Sciences.
[40] A. Mantovani,et al. Macrophage plasticity and interaction with lymphocyte subsets: cancer as a paradigm , 2010, Nature Immunology.