scholarly journals Abstract 3959: CCL18-recruited naïve CD4+T cells are converted to tumor-infiltrating regulatory T cells in breast cancer and suppress antitumor immunity

Author(s):  
Shicheng Su ◽  
Jianyou Liao ◽  
Jiang Liu ◽  
Qiang Liu ◽  
Erwei Song
2017 ◽  
Vol 35 (7_suppl) ◽  
pp. 114-114
Author(s):  
Shicheng Su ◽  
Jianyou Liao ◽  
Jiang Liu ◽  
Qiang Liu ◽  
Erwei Song

114 Background: Tumor-infiltrating regulatory T cells (Tregs) play a central role in tumor immunosuppression. However, it remains unclear whether they are directly recruited from peripheral blood or converted from infiltrating naive T cells. Methods: We use full-length TCR ¦Á/¦Â repertoire to analyse the difference of T cell subsets from peripheral blood, primary tumors and draining lymph nodes in patents. Results: Infiltration of naive CD4+ T cells and Tregs are closely correlated, both indicating poor prognosis for breast cancer patients. Naive CD4+ T cells in the tumors are recruited by tumor-associated macrophages (TAMs) via CCL18. In addition, naive T cells and memory T cells exhibit distinctive chemotactic response due to different expression of regulator of G-protein signaling 1(RGS1). Specific silencing CCL18 receptor-PITPNM3 in naive CD4+ T cells using CD4 aptamer-siRNA blocks their chemotaxis, and thus reduces infiltrating Tregs and inhibits tumor progression in humanized mice. By comparison, silencing RGS1 in memory CD8+ T cells using CD8 aptamer-siRNA enhance their recruitment to tumors and anti-tumor immune response in vivo. Conclusions: These findings provide mechanistic insights for Treg enrichment in breast cancer and suggest that modification of the CCL18-PITPNM3-RGS1 signaling pathway may be an attractive strategy for anticancer immunotherapy.


2019 ◽  
Vol 7 (12) ◽  
pp. 1998-2012
Author(s):  
Yingzi Ge ◽  
Hans-Henning Böhm ◽  
Anchana Rathinasamy ◽  
Maria Xydia ◽  
Xiaoying Hu ◽  
...  

2021 ◽  
Vol 22 (13) ◽  
pp. 7010
Author(s):  
Shicheng Wang ◽  
Man Cheng ◽  
Peng Peng ◽  
Yue Lou ◽  
Aili Zhang ◽  
...  

Macrophages play critical roles in both innate and adaptive immunity and are known for their high plasticity in response to various external signals. Macrophages are involved in regulating systematic iron homeostasis and they sequester iron by phagocytotic activity, which triggers M1 macrophage polarization and typically exerts antitumor effects. We previously developed a novel cryo-thermal therapy that can induce the mass release of tumor antigens and damage-associated molecular patterns (DAMPs), promoting M1 macrophage polarization. However, that study did not examine whether iron released after cryo-thermal therapy induced M1 macrophage polarization; this question still needed to be addressed. We hypothesized that cryo-thermal therapy would cause the release of a large quantity of iron to augment M1 macrophage polarization due to the disruption of tumor cells and blood vessels, which would further enhance antitumor immunity. In this study, we investigated iron released in primary tumors, the level of iron in splenic macrophages after cryo-thermal therapy and the effect of iron on macrophage polarization and CD4+ T cell differentiation in metastatic 4T1 murine mammary carcinoma. We found that a large amount of iron was released after cryo-thermal therapy and could be taken up by splenic macrophages, which further promoted M1 macrophage polarization by inhibiting ERK phosphorylation. Moreover, iron promoted DC maturation, which was possibly mediated by iron-induced M1 macrophages. In addition, iron-induced M1 macrophages and mature DCs promoted the differentiation of CD4+ T cells into the CD4 cytolytic T lymphocytes (CTL) subset and inhibited differentiation into Th2 and Th17 cells. This study explains the role of iron in cryo-thermal therapy-induced antitumor immunity from a new perspective.


2008 ◽  
Vol 180 (5) ◽  
pp. 3158-3165 ◽  
Author(s):  
Dongqing Li ◽  
Yanmei Li ◽  
Xianglei Wu ◽  
Qiao Li ◽  
Jing Yu ◽  
...  

2017 ◽  
Vol 66 (5) ◽  
pp. 593-603 ◽  
Author(s):  
Anchana Rathinasamy ◽  
Christoph Domschke ◽  
Yingzi Ge ◽  
Hans-Henning Böhm ◽  
Steffen Dettling ◽  
...  

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