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1
Frequent adaptive immune responses against arginase-1.
Oncoimmunology. 2017 Dec 26;7(3):e1404215. doi: 10.1080/2162402X.2017.1404215. eCollection 2018.
2
The metabolic enzyme arginase-2 is a potential target for novel immune modulatory vaccines.
Oncoimmunology. 2020 Jun 1;9(1):1771142. doi: 10.1080/2162402X.2020.1771142.
3
Arginase-1 targeting peptide vaccine in patients with metastatic solid tumors - A phase I trial.
Front Immunol. 2022 Oct 17;13:1023023. doi: 10.3389/fimmu.2022.1023023. eCollection 2022.
10
Myeloid-derived suppressor cells reveal radioprotective properties through arginase-induced l-arginine depletion.
Radiother Oncol. 2016 May;119(2):291-9. doi: 10.1016/j.radonc.2016.01.014. Epub 2016 Feb 10.

引用本文的文献

1
Amino Acid Metabolism and Immune Dysfunction in Urea Cycle Disorders: T and B Cell Perspectives.
J Inherit Metab Dis. 2025 Mar;48(2):e70009. doi: 10.1002/jimd.70009.
2
Arginase-1-specific T cells target and modulate tumor-associated macrophages.
J Immunother Cancer. 2025 Jan 29;13(1):e009930. doi: 10.1136/jitc-2024-009930.
3
4
The roles of arginases and arginine in immunity.
Nat Rev Immunol. 2025 Apr;25(4):266-284. doi: 10.1038/s41577-024-01098-2. Epub 2024 Oct 17.
5
Pathophysiology of Arginases in Cancer and Efforts in Their Pharmacological Inhibition.
Int J Mol Sci. 2024 Sep 10;25(18):9782. doi: 10.3390/ijms25189782.
6
Arginase-1 specific CD8+ T cells react toward malignant and regulatory myeloid cells.
Oncoimmunology. 2024 Feb 22;13(1):2318053. doi: 10.1080/2162402X.2024.2318053. eCollection 2024.
10
An arginase1- and PD-L1-derived peptide-based vaccine for myeloproliferative neoplasms: A first-in-man clinical trial.
Front Immunol. 2023 Feb 23;14:1117466. doi: 10.3389/fimmu.2023.1117466. eCollection 2023.

本文引用的文献

1
Detection of ABCB5 tumour antigen-specific CD8 T cells in melanoma patients and implications for immunotherapy.
Clin Exp Immunol. 2018 Jan;191(1):74-83. doi: 10.1111/cei.13053. Epub 2017 Oct 24.
2
A Relay Pathway between Arginine and Tryptophan Metabolism Confers Immunosuppressive Properties on Dendritic Cells.
Immunity. 2017 Feb 21;46(2):233-244. doi: 10.1016/j.immuni.2017.01.005. Epub 2017 Feb 14.
3
Identification of inhibitors of myeloid-derived suppressor cells activity through phenotypic chemical screening.
Oncoimmunology. 2016 Nov 29;6(1):e1258503. doi: 10.1080/2162402X.2016.1258503. eCollection 2017.
4
Immunosuppressive CD14HLA-DR monocytes are elevated in pancreatic cancer and "primed" by tumor-derived exosomes.
Oncoimmunology. 2016 Nov 2;6(1):e1252013. doi: 10.1080/2162402X.2016.1252013. eCollection 2017.
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Surgery-induced monocytic myeloid-derived suppressor cells expand regulatory T cells in lung cancer.
Oncotarget. 2017 Mar 7;8(10):17050-17058. doi: 10.18632/oncotarget.14991.
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Inflammatory bowel disease and cancer response due to anti-CTLA-4: is it in the flora?
Semin Immunopathol. 2017 Apr;39(3):327-331. doi: 10.1007/s00281-016-0613-x. Epub 2017 Jan 16.
7
Myeloid-derived suppressor cells and tumor escape from immune surveillance.
Semin Immunopathol. 2017 Apr;39(3):295-305. doi: 10.1007/s00281-016-0597-6. Epub 2016 Oct 27.
8
Anti-regulatory T cells.
Semin Immunopathol. 2017 Apr;39(3):317-326. doi: 10.1007/s00281-016-0593-x. Epub 2016 Sep 27.
9
The prognostic value of the myeloid-mediated immunosuppression marker Arginase-1 in classic Hodgkin lymphoma.
Oncotarget. 2016 Oct 11;7(41):67333-67346. doi: 10.18632/oncotarget.12024.

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