Basic Research

CCR5 blockade reduces tumor growth by inducing apoptosis and impairing immunosuppression of tumor microenvironment

  • Wei HE ,
  • Liping LIU ,
  • Jingwei ZHUO ,
  • Xiaodong ZHANG ,
  • Tong YANG ,
  • Jubin. FENG
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  • The Second Affiliated Hospital,Guangzhou Medical University,Guangzhou 510260,China

Received date: 2024-02-06

  Online published: 2024-05-15

Abstract

Objective The present study aimed to explore the effects of CC?chemokine receptor 5 antagonism on tumor growth and immune microenvironment. Methods Cell Counting Kit?8 was used to detect in vitro anti?proliferation activity of maraviroc, a selective CC?chemokine receptor 5 inhibitor, on Lewis cells, a mouse lung adenocarcinoma cell strain. Flow cytometry and real?time quantitative PCR were respectively used to detect cell apoptosis and Caspase 8 gene expression. In a congenic mouse lung cancer model, the mice were intraperitoneally administered with maraviroc or vehicle. Tumor sizes were measured and tumor infiltrating CD4+, CD8+ and Foxp3+ cells were determined by immunofluorescent staining. Results Our results showed that maraviroc could inhibit the growth of Lewis cancer cells not only in vitro but also in vivo. This in?vitro inhibition was presumably attributable to apoptosis induction by the enhancement of Caspase 8 gene expression after maraviroc blockade. Additionally, more CD4+ and CD8+ cells but less Foxp3+ cells were detected in tumor mass from the mice administered with maraviroc. Conclusions Taken together, it can be speculated that CCR5 blockade may inhibit the growth of Lewis cells by inducing cell apoptosis and impairing the immunosuppressive tumor microenvironment. It is worthy of further investigation as a candidate for cancer therapy

Cite this article

Wei HE , Liping LIU , Jingwei ZHUO , Xiaodong ZHANG , Tong YANG , Jubin. FENG . CCR5 blockade reduces tumor growth by inducing apoptosis and impairing immunosuppression of tumor microenvironment[J]. The Journal of Practical Medicine, 2024 , 40(9) : 1204 -1210 . DOI: 10.3969/j.issn.1006-5725.2024.09.005

References

1 SIEGEL R L, MILLER K D, JEMAL A. Cancer statistics, 2018 [J]. CA Cancer J Clin, 2018, 68(1): 7-30. doi:10.3322/caac.21442
2 DO H T T, LEE C H, CHO J. Chemokines and their Receptors: Multifaceted Roles in Cancer Progression and Potential Value as Cancer Prognostic Markers [J]. Cancers (Basel), 2020, 12(2): 287-311. doi:10.3390/cancers12020287
3 LI H, WU M, ZHAO X. Role of chemokine systems in cancer and inflammatory diseases [J]. Med Comm (2020), 2022, 3(2): e147-87. doi:10.1002/mco2.147
4 WU Y, SHEN Y, CHANG J, et al. Autocrine CCL5 promotes tumor progression in esophageal squamous cell carcinoma in vitro [J]. Cytokine, 2018, 110(10): 94-103. doi:10.1016/j.cyto.2018.04.027
5 NAZEMI M, RAINERO E. Cross-Talk Between the Tumor Microenvironment, Extracellular Matrix, and Cell Metabolism in Cancer [J]. Front Oncol, 2020, 10(2): 239-245. doi:10.3389/fonc.2020.00239
6 ZENG Z, LAN T, WEI Y, et al. CCL5/CCR5 axis in human diseases and related treatments [J]. Genes Dis, 2022, 9(1): 12-27. doi:10.1016/j.gendis.2021.08.004
7 BLATTNER C, FLEMING V, WEBER R, et al. CCR5(+) Myeloid-Derived Suppressor Cells Are Enriched and Activated in Melanoma Lesions [J]. Cancer Res, 2018, 78(1): 157-167. doi:10.1158/0008-5472.can-17-0348
8 NIE Y, HUANG H, GUO M, et al. Breast Phyllodes Tumors Recruit and Repolarize Tumor-Associated Macrophages via Secreting CCL5 to Promote Malignant Progression, Which Can Be Inhibited by CCR5 Inhibition Therapy [J]. Clin Cancer Res, 2019, 25(13): 3873-3886. doi:10.1158/1078-0432.ccr-18-3421
9 GONZALEZ-MARTIN A, GOMEZ L, LUSTGARTEN J, et al. Maximal T cell-mediated antitumor responses rely upon CCR5 expression in both CD4(+) and CD8(+) T cells [J]. Cancer Res, 2011, 71(16): 5455-5466. doi:10.1158/0008-5472.can-11-1687
10 LIU J, MA X, CAI L, et al. Downregulation of both gene expression and activity of Hsp27 improved maturation of mouse oocyte in vitro [J]. Reprod Biol Endocrinol, 2010, 8(5): 47-58. doi:10.1186/1477-7827-8-47
11 HE W, YANG T, GONG X, et al. Targeting CXC motif chemokine receptor 4 inhibits the proliferation, migration and angiogenesis of lung cancer cells [J]. Oncol Lett, 2018, 16(3): 3976-3982. doi:10.3892/ol.2018.9076
12 LIU H, YANG Z, LU W, et al. Chemokines and chemokine receptors: A new strategy for breast cancer therapy [J]. Cancer Med, 2020, 9(11): 3786-3799. doi:10.1002/cam4.3014
13 CASAGRANDE N, BORGHESE C, VISSER L, et al. CCR5 antagonism by maraviroc inhibits Hodgkin lymphoma microenvironment interactions and xenograft growth [J]. Haematologica, 2019, 104(3): 564-575. doi:10.3324/haematol.2018.196725
14 XU J, LI J, CHEN Q, et al. Advances in Research on the Effects and Mechanisms of Chemokines and Their Receptors in Cancer [J]. Front Pharmacol, 2022, 13(6): 920779. doi:10.3389/fphar.2022.920779
15 VELASCO-VELAZQUEZ M, XOLALPA W, PESTELL R G. The potential to target CCL5/CCR5 in breast cancer [J]. Expert Opin Ther Targets, 2014, 18(11): 1265-1275. doi:10.1517/14728222.2014.949238
16 HAWILA E, RAZON H, WILDBAUM G, et al. CCR5 Directs the Mobilization of CD11b(+)Gr1(+)Ly6C(low) Polymorphonuclear Myeloid Cells from the Bone Marrow to the Blood to Support Tumor Development [J]. Cell Rep, 2017, 21(8): 2212-2222. doi:10.1016/j.celrep.2017.10.104
17 NISHIKAWA G, KAWADA K, NAKAGAWA J, et al. Bone marrow- derived mesenchymal stem cells promote colorectal cancer progression via CCR5 [J]. Cell Death Dis, 2019, 10(4): 264-276. doi:10.1038/s41419-019-1508-2
18 SINGH S K, MISHRA M K, ELTOUM I A, et al. CCR5/CCL5 axis interaction promotes migratory and invasiveness of pancreatic cancer cells [J]. Sci Rep, 2018, 8(1): 1323-1334. doi:10.1038/s41598-018-19643-0
19 YANG L, WANG B, QIN J, et al. Blockade of CCR5-mediated myeloid derived suppressor cell accumulation enhances anti-PD1 efficacy in gastric cancer [J]. Immunopharmacol Immunotoxicol, 2018, 40(1): 91-97. doi:10.1080/08923973.2017.1417997
20 TANABE Y, SASAKI S, MUKAIDA N, et al. Blockade of the chemokine receptor, CCR5, reduces the growth of orthotopically injected colon cancer cells via limiting cancer-associated fibroblast accumulation [J]. Oncotarget, 2016, 7(30): 48335-48345. doi:10.18632/oncotarget.10227
21 叶美凤,苏珊,岑文昌,等. 粟粒型肺癌的肿瘤微环境及其与EGFR-TKI疗效的关系[J]. 实用医学杂志,2021,37(2):250-254. doi:10.3969/j.issn.1006-5725.2021.02.023
22 MORAN C J, ARENBERG D A, HUANG C, et al. RANTES expression is a predictor of survival in stage I lung adenocarcinoma [J]. Clin Cancer Res, 2002, 8(12): 3803-3812.
23 TANG J, RAMIS-CABRER D, CURULL V, et al. Immune Cell Subtypes and Cytokines in Lung Tumor Microenvironment: Influence of COPD [J]. Cancers (Basel), 2020, 12(5): 1217-1231. doi:10.3390/cancers12051217
24 SEDIGHZADEH S S, KHOSHBIN A P, RAZI S, et al. A narrative review of tumor-associated macrophages in lung cancer: regulation of macrophage polarization and therapeutic implications [J]. Transl Lung Cancer Res, 2021, 10(4): 1889-1916. doi:10.21037/tlcr-20-1241
25 SELIGER B, MASSA C. Immune Therapy Resistance and Immune Escape of Tumors [J]. Cancers (Basel), 2021, 13(3): 551-565. doi:10.3390/cancers13030551
26 HASLAM A, PRASAD V. Estimation of the Percentage of US Patients With Cancer Who Are Eligible for and Respond to Checkpoint Inhibitor Immunotherapy Drugs [J]. JAMA Netw Open 2019, 2(5): e192535. doi:10.1001/jamanetworkopen.2019.2535
27 WANG J, SAUNG M T, LI K, et al. CCR2/CCR5 inhibitor permits the radiation-induced effector T cell infiltration in pancreatic adenocarcinoma [J]. J Exp Med, 2022, 219(5): e20211631. doi:10.1084/jem.20211631
28 HAAG G M, SPRINGFELD C, GRUN B, et al. Pembrolizumab and maraviroc in refractory mismatch repair proficient/ microsatellite-stable metastatic colorectal cancer-The PICCASSO phase I trial [J]. Eur J Cancer, 2022, 167(5): 112-122. doi:10.1016/j.ejca.2022.03.017
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