journal article Open Access Apr 28, 2020

Radiation Potentiates Monocyte Infiltration into Tumors by Ninjurin1 Expression in Endothelial Cells

Cells Vol. 9 No. 5 pp. 1086 · MDPI AG
View at Publisher Save 10.3390/cells9051086
Abstract
Radiation is a widely used treatment for cancer patients, with over half the cancer patients receiving radiation therapy during their course of treatment. Considerable evidence from both preclinical and clinical studies show that tumor recurrence gets restored following radiotherapy, due to the influx of circulating cells consisting primarily of monocytes. The attachment of monocyte to endothelial cell is the first step of the extravasation process. However, the exact molecules that direct the transmigration of monocyte from the blood vessels to the tumors remain largely unknown. The nerve injury-induced protein 1 (Ninjurin1 or Ninj1) gene, which encodes a homophilic adhesion molecule and cell surface protein, was found to be upregulated in inflammatory lesions, particularly in macrophages/monocytes, neutrophils, and endothelial cells. More recently Ninj1 was reported to be regulated following p53 activation. Considering p53 has been known to be activated by radiation, we wondered whether Ninj1 could be increased in the endothelial cells by radiation and it might contribute to the recruiting of monocytes in the tumor. Here we demonstrate that radiation-mediated up-regulation of Ninj1 in endothelial cell lines such as human umbilical vein endothelial cells (HUVECs), EA.hy926, and immortalized HUVECs. Consistent with this, we found over-expressed Ninj1 in irradiated xenograft tumors, and increased monocyte infiltration into tumors. Radiation-induced Ninj1 was transcriptionally regulated by p53, as confirmed by transfection of p53 siRNA. In addition, Ninj1 over-expression in endothelial cells accelerated monocyte adhesion. Irradiation-induced endothelial cells and monocyte interaction was inhibited by knock-down of Ninj1. Furthermore, over-expressed Ninj1 stimulated MMP-2 and MMP-9 expression in monocyte cell lines, whereas the MMP-2 and MMP-9 expression were attenuated by Ninj1 knock-down in monocytes. Taken together, we provide evidence that Ninj1 is a key molecule that generates an interaction between endothelial cells and monocytes. This result suggests that radiation-mediated Ninj1 expression in endothelial cells could be involved in the post-radiotherapy recurrence mechanism.
Topics

No keywords indexed for this article. Browse by subject →

References
40
[1]
Yoshimura "Microenvironment and radiation therapy" BioMed Res. Int. (2013) 10.1155/2013/685308
[2]
Grabham "The effects of radiation on angiogenesis" Vasc. Cell (2013) 10.1186/2045-824x-5-19
[3]
Monteiro "Ionizing radiation modulates human macrophages towards a pro-inflammatory phenotype preserving their pro-invasive and pro-angiogenic capacities" Sci. Rep. (2016) 10.1038/srep18765
[4]
Woo "Daurinol Enhances the Efficacy of Radiotherapy in Lung Cancer via Suppression of Aurora Kinase A/B Expression" Mol. Cancer Ther. (2015) 10.1158/1535-7163.mct-14-0960
[5]
Oh "Radiation-induced angiogenic signaling pathway in endothelial cells obtained from normal and cancer tissue of human breast" Oncogene (2014) 10.1038/onc.2013.70
[6]
Park "Radiation-induced vascular damage in tumors: Implications of vascular damage in ablative hypofractionated radiotherapy (SBRT and SRS)" Radiat. Res. (2012) 10.1667/rr2773.1
[7]
Fang "Targeting the tumor microenvironment: From understanding pathways to effective clinical trials" Cancer Res. (2013) 10.1158/0008-5472.can-13-0661
[8]
Folkman "Angiogenesis in cancer, vascular, rheumatoid and other disease" Nat. Med. (1995) 10.1038/nm0195-27
[9]
Paris "Endothelial apoptosis as the primary lesion initiating intestinal radiation damage in mice" Science (2001) 10.1126/science.1060191
[10]
McLaughlin "Inflammatory microenvironment remodelling by tumour cells after radiotherapy" Nat. Rev. Cancer (2020) 10.1038/s41568-020-0246-1
[11]
Cassetta "Targeting macrophages: Therapeutic approaches in cancer" Nat. Rev. Drug Discov. (2018) 10.1038/nrd.2018.169
[12]
Quaranta, V., and Schmid, M.C. (2019). Macrophage-Mediated Subversion of Anti-Tumour Immunity. Cells, 8. 10.3390/cells8070747
[13]
Russell "The irradiated tumor microenvironment: Role of tumor-associated macrophages in vascular recovery" Front. Physiol. (2013) 10.3389/fphys.2013.00157
[14]
Lewis "Macrophage regulation of tumor responses to anticancer therapies" Cancer Cell (2013) 10.1016/j.ccr.2013.02.013
[15]
Rahat "The regulation of angiogenesis by tissue cell-macrophage interactions" Front. Physiol. (2014) 10.3389/fphys.2014.00262
[16]
Sofia Vala, I., Martins, L.R., Imaizumi, N., Nunes, R.J., Rino, J., Kuonen, F., Carvalho, L.M., Ruegg, C., Grillo, I.M., and Barata, J.T. (2010). Low doses of ionizing radiation promote tumor growth and metastasis by enhancing angiogenesis. PLoS ONE, 5. 10.1371/journal.pone.0011222
[17]
Araki "Mechanism of homophilic binding mediated by ninjurin, a novel widely expressed adhesion molecule" J. Biol. Chem. (1997) 10.1074/jbc.272.34.21373
[18]
Araki "Ninjurin, a novel adhesion molecule, is induced by nerve injury and promotes axonal growth" Neuron (1996) 10.1016/s0896-6273(00)80166-x
[19]
Choi "Ninjurin1 Plays a Crucial Role in Pulmonary Fibrosis by Promoting Interaction between Macrophages and Alveolar Epithelial Cells" Sci. Rep. (2018) 10.1038/s41598-018-35997-x
[20]
Ifergan "Role of Ninjurin-1 in the migration of myeloid cells to central nervous system inflammatory lesions" Ann. Neurol. (2011) 10.1002/ana.22519
[21]
Ahn "Ninjurin1 deficiency attenuates susceptibility of experimental autoimmune encephalomyelitis in mice" J. Biol. Chem. (2014) 10.1074/jbc.m113.498212
[22]
Koike "Characterization of Ninjurin and TSC22 induction after X-irradiation of normal human skin cells" J. Dermatol. (2008) 10.1111/j.1346-8138.2007.00404.x-i1
[23]
Cho "Ninjurin1, a target of p53, regulates p53 expression and p53-dependent cell survival, senescence, and radiation-induced mortality" Proc. Natl. Acad. Sci. USA (2013) 10.1073/pnas.1221242110
[24]
Jang "Ninjurin1 suppresses metastatic property of lung cancer cells through inhibition of interleukin 6 signaling pathway" Int. J. Cancer (2016) 10.1002/ijc.30021
[25]
Kang "Inhibition of STAT3 signaling induces apoptosis and suppresses growth of lung cancer: Good and bad" Lab. Anim. Res. (2019) 10.1186/s42826-019-0030-0
[26]
Choi "Tumour-vasculature development via endothelial-to-mesenchymal transition after radiotherapy controls CD44v6(+) cancer cell and macrophage polarization" Nat. Commun. (2018) 10.1038/s41467-018-07470-w
[27]
Abdulkarim "Endothelial-cell apoptosis and tumour response to radiotherapy" Lancet Oncol. (2004) 10.1016/s1470-2045(03)01317-2
[28]
Cao "Radiosensitization of lung cancer by nutlin, an inhibitor of murine double minute 2" Mol. Cancer Ther. (2006) 10.1158/1535-7163.mct-05-0356
[29]
Burdelya "Inhibition of p53 response in tumor stroma improves efficacy of anticancer treatment by increasing antiangiogenic effects of chemotherapy and radiotherapy in mice" Cancer Res. (2006) 10.1158/0008-5472.can-06-1223
[30]
Yang "Ninjurin 1 has two opposing functions in tumorigenesis in a p53-dependent manner" Proc. Natl. Acad. Sci. USA (2017) 10.1073/pnas.1711814114
[31]
Ahn "Matrix metalloproteinase-9 is required for tumor vasculogenesis but not for angiogenesis: Role of bone marrow-derived myelomonocytic cells" Cancer Cell (2008) 10.1016/j.ccr.2007.11.032
[32]
Lee "Ninjurin1 mediates macrophage-induced programmed cell death during early ocular development" Cell Death Differ. (2009) 10.1038/cdd.2009.78
[33]
Woo "Ninjurin1 inhibits colitis-mediated colon cancer development and growth by suppression of macrophage infiltration through repression of FAK signaling" Oncotarget (2016) 10.18632/oncotarget.9020
[34]
Shin "Ninjurin1 regulates lipopolysaccharide-induced inflammation through direct binding" Int. J. Oncol. (2016) 10.3892/ijo.2015.3296
[35]
Matsuki "Ninjurin1 is a novel factor to regulate angiogenesis through the function of pericytes" Circ. J. (2015) 10.1253/circj.cj-14-1376
[36]
Galliera "Matrix metalloproteases MMP-2 and MMP-9: Are they early biomarkers of bone remodelling and healing after arthroscopic acromioplasty?" Injury (2010) 10.1016/j.injury.2010.09.024
[37]
Masson "Roles of serine proteases and matrix metalloproteinases in tumor invasion and angiogenesis" Bull. Mem. Acad. R. Med. Belg. (2006)
[38]
Matejczyk "Matrix metalloproteinases (MMPs), the main extracellular matrix (ECM) enzymes in collagen degradation, as a target for anticancer drugs" J. Enzyme Inhib. Med. Chem. (2016) 10.3109/14756366.2016.1161620
[39]
Li "Activation of MMP-9 by membrane type-1 MMP/MMP-2 axis stimulates tumor metastasis" Cancer Sci. (2017) 10.1111/cas.13134
[40]
Webb, A.H., Gao, B.T., Goldsmith, Z.K., Irvine, A.S., Saleh, N., Lee, R.P., Lendermon, J.B., Bheemreddy, R., Zhang, Q., and Brennan, R.C. (2017). Inhibition of MMP-2 and MMP-9 decreases cellular migration, and angiogenesis in in vitro models of retinoblastoma. BMC Cancer, 17. 10.1186/s12885-017-3418-y
Metrics
17
Citations
40
References
Details
Published
Apr 28, 2020
Vol/Issue
9(5)
Pages
1086
License
View
Funding
National Research Foundation of Korea Award: NRF-2019M3A9D5A01101025
Cite This Article
Ju-Hee Kang, Jong Kyu Woo, Young-Joon JANG, et al. (2020). Radiation Potentiates Monocyte Infiltration into Tumors by Ninjurin1 Expression in Endothelial Cells. Cells, 9(5), 1086. https://doi.org/10.3390/cells9051086