Radiotherapy programs neutrophils to an antitumor phenotype by inducing mesenchymal-epithelial transition

  • Liu, Q.; 
  • Hao, Y.; 
  • Du, R.; 
  • Hu, D.; 
  • Xie, J.; 
  • ... Rim, C.H.; 
  • 외 8명
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초록

Background: Neutrophils can play a pro-tumor or anti-tumor role depending on the tumor microenvironment. The effects of concurrent treatment with granulocyte colony-stimulating factor (G-CSF) and radiotherapy (RT) on neutrophils have not yet to be described. Methods: Hypofractionated radiation of 8 Gy ×3 fractions was administered with or without recombinant G-CSF to Lewis lung carcinoma tumor-bearing C57BL/6 model mice. The activation status of cytotoxic T cells in the mice was measured, along with the levels of tumor-associated neutrophils, cytotoxic T cells, and Treg cells. Tumor growth, survival, cytokine expression, and signaling pathways underlying antitumor effects of tumor-associated neutrophils after treatment were also studied. To ascertain the effects of concurrent RT and G-CSF on tumor-associated neutrophils, neutrophil depletion was performed. Results: RT affected early neutrophil infiltration, which is the first-line immune response. Subsequently, enhanced accumulation of lymphocytes, particularly CD8 cytotoxic T cells, was observed. Notably, lymphocytic infiltration was inhibited by neutrophil depletion but enhanced by G-CSF treatment. RT generated persistent DNA damage, as evidenced by an accumulation of phosphorylation of histone H2AX (γH2AX), and subsequently triggered inflammatory chemokine secretion. The chemokines CXCL1, CXCL2, and CCL5 were upregulated in both radiation-treated cells and the corresponding supernatants. Neutrophils that were newly recruited after RT improved radiosensitivity by inhibiting epithelial-mesenchymal transition via the reactive oxygen species-mediated PI3K/Akt/Snail signaling pathway, and G-CSF treatment enhanced this effect. Conclusions: The results of this study suggest that RT activates neutrophil recruitment and polarizes newly recruited neutrophils toward an antitumor phenotype, which is enhanced by the concurrent administration of G-CSF. Mesenchymal-epithelial transition induced by reactive oxygen species accumulation plays a major role in this process. Thus, the polarization of tumor-associated neutrophils might play a role in future cancer immunotherapies. © 2021 AME Publishing Company. All rights reserved.

키워드

Immunotherapy; Mesenchymal-epithelial transition; Radiation therapy; Radiosensitivity; Tumor-associated neutrophils; chloral hydrate; CXCL1 chemokine; CXCL2 chemokine; histone H2AX; phosphatidylinositol 3 kinase; protein kinase B; RANTES; reactive oxygen metabolite; recombinant granulocyte colony stimulating factor; transcription factor Snail; uvomorulin; vimentin; adaptive immunity; animal cell; animal experiment; animal model; animal tissue; antineoplastic activity; Article; cancer immunotherapy; controlled study; cytokine release; cytotoxic T lymphocyte; data analysis software; DNA damage; draining lymph node; epithelial mesenchymal transition; female; hypofractionated radiotherapy; immunohistochemistry; in vitro study; Lewis carcinoma; lymphocytic infiltration; mouse; neutrophil; neutrophil chemotaxis; nonhuman; overall survival; Pi3K/Akt signaling; polarization; protein phosphorylation; radiosensitivity; T lymphocyte activation; tumor associated leukocyte; tumor weight
제목
Radiotherapy programs neutrophils to an antitumor phenotype by inducing mesenchymal-epithelial transition
저자
Liu, Q.; Hao, Y.; Du, R.; Hu, D.; Xie, J.; Zhang, J.; Deng, G.; Liang, N.; Tian, T.; Käsmann, L.; Rades, D.; Rim, C.H.; Hu, P.; Zhang, J.
DOI
10.21037/tlcr-21-152
발행일
2021-03
유형
Article
저널명
Translational Lung Cancer Research
권
10
호
3
페이지
1424 ~ 1443