Neutrophils as tumor microenviroment member
PDF (Русский)

Keywords

neutrophils
tumor microenvironment
immune system

How to Cite

, & . (2016). Neutrophils as tumor microenviroment member. Voprosy Onkologii, 62(1), 35–44. https://doi.org/10.37469/0507-3758-2016-62-1-35-44

Abstract

Conception of the neutrophils role in the immune system has been changed significantly in the recent time. Many studies prove important and diversified role of this cells in the cancer biology in the last few years. It was shown that their presence in tumor microenvironment has mixed role on cancer growth. This review summaries evidence of neutrophils heterogeneity, plasticity and ability to differentiate into other myeloid types of cells despite formed proinflammatory potential. Prognostic value of tumor-associated neutrophils and high neutrophil level in peripheral blood in patients with different type of malignancies (i.e. renal cell cancer, melanoma, colorectal cancer, hepatocellular cancer, cholangiocarcinoma, glioblastoma, gastrointestinal stromal tumors, gastric cancer, lung cancer, ovarian cancer, head and neck cancer) is discussed. More sophisticated study of existence and functional activity of pro- and antitumor abilities of neutrophils is needed for finding new diagnostic and therapeutic approaches in oncology.
https://doi.org/10.37469/0507-3758-2016-62-1-35-44
PDF (Русский)

References

Блиндарь В.Н., Зубрихина Г.Н. Современное представление о роли нейтрофилов в противоопухолевом иммунитете (обзор литературы) // Клин. лаб. диагност. - 2005. - № 8. - С. 51-54.

Герасимов И.Г. Функциональная неоднородность нейтрофилов // Клин. лаб. диагност. - 2006. - № 2. - С. 34-36.

Мальцева В.Н., Сафронова В.Г. Неоднозначность роли нейтрофилов в генезе опухоли // Цитология. - 2009. - Т. 51. - № 6. - С. 467-474.

Abi Abdallah D.S., Egan C.E., Butcher B.A., Denkers E.Y Mouse neutrophils are professional antigen-presenting cells programmed to instruct Th1 and Th17 T-cell differentiation // Int. Immunol. - 2011. - Vol. 23. - P. 317-326.

Araki H., Katayama N., Yamashita Y et al. Reprogramming of human postmitotic neutrophils into macrophages by growth factors // Blood. - 2004. - Vol. 103 (8). - P. 2973-2980.

Banerjee S., Rustin G., Paul J. et al. A multicenter, randomized trial of flat dosing versus intrapatient dose escalation of single-agent carboplatin as first-line chemotherapy for advanced ovarian cancer: an SGCTG (SCOTROC 4) and ANZGOG study on be half of GCIG // Ann. Oncology. - 2013. - Vol. 24. - P. 679-687.

Berger-Achituv S., Brinkmann V., Abu Abed U. et al. A proposed role for neutrophil extracellular traps in cancer immunoediting // Front. Immunol. - 2013. - Vol. 4. - P. 1-5.

Borregaard N., Sorensen O.E., Theilgaard-Monch K. Neutrophil granules: a library of innate immunity proteins // Trends in Immunology. - 2007. - Vol. 28. - P. 340-345.

Bowers N.L., Helton E.S., Huijbregts R.P. et al. Immune suppression by neutrophils in HIV-1 infection: role of PD-L1/PD-1 pathway // PLoS Pathog. - 2014. - Vol. 10 (3). - P.e 1003993.

Brandau S., Dumitru C.A., Lang S. Protumor and antitumor functions of neutrophil granulocytes // Semin. Immunopathol. - 2013. - Vol. 35 (2). - P. 163-176.

Brinkmann V., Zychlinsky A. Neutrophil extracellular traps: is immunity the second func- tion of chromatin? // J. Cell Biol. - 2012. - Vol. 198. - P. 773-783.

Carmona-Rivera C., Kaplan M.J. Low-density granulocytes: a distinct class of neutrophils in systemic autoimmunity // Semin. Immunopathol. - 2013. - Vol. 35 (4). - P. 455-463.

Choi J., Suh B., Ahn YO., et al. CD151+/CD16low human granulocytes from terminal cancer patients: granulocytic myeloid-derived suppressor cells that have suppressive function // Tumour Biol. - 2012. - Vol. 33 (1). - P. 121129.

Chua W., Charles K.A., Baracos V.E., Clarke S.J. Neutrophil/lymphocyte ratio predicts chemotherapy outcomes in patients with advanced colorectal cancer // Br. J. Cancer. - 2011. - Vol. 104. - P. 1288-1295.

Curiel T.J., Coukos G., Zou L. et al. Specific recruitment of regulatory T cells in ovarian carcinoma fosters immune privilege and predicts reduced survival // Nat. Med. -2004. - Vol. 10. - P. 942-949.

Curran C.S., Evans M.D., Bertics P.J. GM-CSF production by glioblastoma cells has a functional role in eosinophil survival, activation, and growth factor production for enhanced tumor cell proliferation // J. Immunol. - 2011. - Vol. 187 (3). - P. 1254-1263.

Donskov F. Immunomonitoring and prognostic relevance of neutrophils in clinical trials // Semin. Cancer Biol. -2013. - Vol. 23 (3). - P. 200-207.

Donskov F., von der Maase H. Impact of immune parameters on long-term survival in metastatic renal cell carcinoma // J. Clin. Oncol. - 2006. - Vol. 24. - P. 1997-2005.

Dumitru C.A., Gholaman H., Trellakis S. et al. Tumor-derived macrophage migration inhibitory factor modulates the biology of head and neck cancer cells via neutrophil activation // Int. J. Cancer. - 2011. - Vol. 129. - P. 859-869.

Dumitru C.A., Lang S., Brandau S. Modulation of neutrophil granulocytes in the tumor microenvironment: Mechanisms and consequences for tumor progression // Seminars in Cancer Biology. - 2013. - Vol. 23. - P. 141-148.

Dumitru C.A., Moses K., Trellakis S. et al. Neutrophils and granulocytic myeloid-derived suppressor cells: immunophenotyping, cell biology and clinical relevance in human oncology // Cancer Immunol. Immunother. - 2012. - Vol. 61 (8). - P. 1155-1167.

Dyugovskaya L., Berger S., Polyakov A., Lavie L. The development of giant phagocytes in longterm neutrophil cultures // J Leukoc Biol. - 2014. - Vol. 96 (4). - P. 511-521.

Eash K.J., Greenbaum A.M., Gopalan P.K., Link D.C. CXCR2 and CXCR4 antagonistically regulate neutrophil trafficking from murine bone marrow // J. Clin. Invest. - 2010. - Vol. 120 (7). - P. 2423-2431.

Florey O., Haskard D.O. Sphingosine 1-phosphate enhances Fc gamma receptor-mediated neutrophil activation and recruitment under flow conditions // J. Immunol. - 2009. - Vol. 183. - P. 2330-2336.

Fridlender Z.G., Albelda S.M. Tumor-associated neutrophils: friend or foe? // Carcinogenesis. - 2012. - Vol. 33 (5). - P. 949-955.

Fridlender Z.G., Sun J., Kim S. et al. Polarization of tumor-associated neutrophil phenotype by TGF-beta: N1 versus N2 TAN // Cancer Cell. - 2009. - Vol. 16. - P. 183-194.

Fridlender Z.G., Sun J., Mishalian I. et al. Transcriptomic analysis comparing tumor-associated neutrophils with granulocytic myeloid-derived suppressor cells and normal neutrophils // PLoS One. - 2012. - Vol. 7. - P e31524.

Fuchs T., Puellmann K., Scharfenstein O., et al. The neutrophil recombinatorial TCR-like immune receptor is expressed across the entire human life span but repertoire diversity declines in old age // Biochem. Biophys. Res. Commun. - 2012. - Vol. 419 (2). - P. 309-315.

Galdiero M.R., Bonavita E., Barajon I. et al. Tumor associated macrophages and neutrophils in cancer // Immunobiology. - 2013. - Vol. 218. - P 1402-1410.

Gao Q., Zhao Y.J., Wang X.Y et al. CXCR6 upregulation contributes to a proinflammatory tumor microenvironment that drives metastasis and poor patient outcomes in hepatocellular carcinoma // Cancer Res. - 2012. - Vol. 72. - P. 3546-3556.

Gault C.R., Obeid L.M. Still benched on its way to the bedside: sphingosine kinase 1 as an emerging target in cancer chemotherapy // Critical Reviews in Biochemistry and Molecular Biology. - 2011. - Vol. 46. - P 342-351.

Gregory A.D., Houghton A.M. Tumor-Associated Neutrophils: New Targets for Cancer Therapy // Cancer Res. - 2011. - Vol. 71 (7). - P. 2411-2416.

Hao S., Andersen M., Yu H. Detection of immune suppressive neutrophils in peripheral blood samples of cancer patients // Am. J. Blood Res. - 2013. - Vol. 3 (3). - P. 239-245.

Houghton A.M. The paradox of tumor-associated neutrophils: fueling tumor growth with cytotoxic substances // Cell Cycle. - Vol. 9 (9). - 2010. - P. 1732-1737.

Imai Y, Kubota Y, Yamamoto S. et al. Neutrophils enhance invasion activity of human cholangiocellular carcinoma and hepatocellular carcinoma cells: an in vitro study // J. Gastroenterol. Hepatol. - 2005. - Vol. 20. - P 287-293.

Jablonska J., Leschner S., Westphal K. et al. Neutrophils responsive to endogenous IFN-beta regulate tumor angiogenesis and growth in a mouse tumor model // J. Clin. Invest. - 2010. - Vol. 120. - P. 1151-1164.

Jensen TO., Schmidt H., Moller H.J. et al. Intratumoral neutrophils and plasmacytoid dendritic cells indicate poor prognosis and are associated with pSTAT3 expression in AJCC stage I/ II melanoma // Cancer. - 2012. - Vol. 118. - P. 2476-2485.

Kabayashi Y The role of chemokines in neutrophil biology // Front. Biosci. - 2008. - Vol. 13. - P 2400-2407.

Khajah M., Millen B., Cara D.C., Waterhouse C., McCafferty D.M. Granulocyte-macrophage colony-stimulating factor (GM-CSF): a chemoattractive agent for murine leukocytes in vivo // J. Leukoc. Biol. - 2011. - Vol. 89 (6). - P. 945-953.

Kolaczkowska E, Kubes P. Neutrophil recruitment and function in health and inflammation // Nat. Rev. Immunol. - 2013. - Vol. 13 (3). - P. 159-175.

Luo H.R., Loison F. Constitutive neutrophil apoptosis: mechanisms and regulation // Am. J. Hematol. - 2008. - Vol. 83. - P 288-295.

Luyckx A., Schouppe E, Rutgeerts O. et al. G-CSF stem cell mobilization in human donors induces polymorpho nuclear and mononuclear myeloid-derived suppressor cells // Clin. Immunol. - 2012. - Vol. 143 (1). - P. 83-87.

Mantovani A., Allavena.P, Sica A., Balkwill F. Cancer-related inflammation // Nature. - 2008. - Vol. 454. - P. 436-444.

Matsushima H., Geng S., Lu R. et al. Neutrophil differentiation into a unique hybrid population exhibiting dual phenotype and functionality of neutrophils and dendritic cells // Blood. - 2013. - Vol. 121 (10). - P 1677-1689.

Mayadas T.N., Cullere X., Lowell C.A. The multifaceted functions of neutrophils // Annu Rev. Pathol. - 2014. -Vol. 9. - P 181-218.

Medler.T.R., Coussens L.M. Duality of the Immune Response in Cancer: Lessons Learned from Skin // J. Invest. Dermatol. - 2014. - Vol. 134 (e1). - P. E23-E28.

Nathan C. Neutrophils and immunity: challenges and opportunities // Nat. Rev. Immunol. - 2006. - Vol. 6. - P. 173-182.

Nebiker C.A., Han J., Eppenberger-Castori S. et al. GM-CSF Production by Tumor Cells Is Associated with Improved Survival in Colorectal Cancer // Clin. Cancer Res. - 2014. - Vol. 20 (12). - P3094-3106.

Negrier S., Escudier B., Gomez F. et al. Prognostic factors of survival and rapid progression in 782 patients with metastatic renal carcinomas treated by cytokines: a report from the Groupe Francais d‘Immunotherapie // Ann. Oncol. -2002. - Vol. 13. - P. 1460-1468.

Orlova V.V., Choi E.Y, Xie C. et al. A novel pathway of HMGB1-mediated inflammatory cell recruitment that requires Mac-1-integrin // EMBO Journal. - 2007. - Vol. 26. - P. 1129-1139.

Pelletier M., Maggi L., Micheletti A. et al. Evidence for a cross-talk between human neutrophils and Th17 cells // Blood. - 2010. - Vol. 115 (2). - P 335-343.

Pelletier M., Micheletti A., Cassatella M.A. Modulation of human neutrophil survival and antigen expression by activated CD4+ and CD8+ T cells // J. Leukocyte Biology. - 2010. - Vol. 88. - P. 1163-1170.

Peng H.H., Liang S., Henderson A.J., Dong C. Regulation of interleukin-8 expression in melanoma-stimulated neutrophil inflammatory response // Exp. Cell Res. - 2007. - Vol. 313. - P. 551-559.

Peranzoni E., Zilio S., Marigo I. et al. Myeloid-derived suppressor cell heterogeneity and subset definition // Curr.Opin.Immunol. - 2010. - Vol. 22. - P. 238-244.

Piccard H., Muschel R.J., Opdenakker G. On the dual roles and polarized phenotypes of neutrophils in tumor development and progression // Crit. Rev. Oncol. Hematol. - 2012. - Vol. 82 (3). - P 296-309.

Pillay J., Kamp V.M., van Hoffen E. et al. A subset of neutrophils in human systemic inflammation inhibits T cell responses through Mac-1 // J. Clin. Invest. - 2012. - Vol. 122 (1). - P. 327-336.

Pillay J., Tak T., Kamp V.M., Koenderman L. Immune suppression by neutrophils and granulocytic myeloid-derived suppressor cells: similarities and differences // Cell Mol. Life Sci. - 2013. - Vol. 70 (20). - P 3813-3827.

Queen M.M., Ryan R.E., Holzer R.G. et al. Breast cancer cells stimulate neutrophils to produce oncostatin M: potential implications for tumor progression // Cancer Res. - 2005. - Vol. 65. - P. 8896-8904.

Rao H.L., Chen J.W., Li M. et al. Increased intratumoral neutrophil in colorectal carcinomas correlates closely with malignant phenotype and predicts patients’ adverse prognosis // PLoS ONE. - 2012. - Vol. 7 (1). -P. e30806.

Rotondo R., Barisione G., Mastracci L. et al. IL-8 induces exocytosis of arginase 1 by neutrophil polymorphonuclears in nonsmall cell lung cancer // Int. J. Cancer. - 2009. - Vol. 125. - P. 887-893.

Ryckman C., Vandal K., Rouleau P. et al. Proinflammatory activities of S100: proteins S100A8, S100A9, and S100A8/A9 induce neutrophil chemotaxis and adhesion // J. Immunol. - 2003. - Vol. 170. - P. 3233-3242.

Sato H., Tsubosa Y, Kawano T. Correlation between the pretherapeutic neutrophil to lymphocyte ratio and the pathologic response to neoadjuvant chemotherapy in patients with advanced esophageal cancer // World J. Surg. - 20112. - Vol. 36. - P. 617-622.

Scapini P., Cassatella M.A. Social networking of human neutrophils within the immune system // Blood. - 2014. - Vol. 124 (5). - P. 710- 719.

Schmidt H., Suciu S., Punt C.J. et al. Pretreatment levels of peripheral neutrophils and leukocytes as independent predictors of overall survival in patients with American Joint Committee on Cancer Stage IV Melanoma: results of the EORTC 18951 Biochemotherapy Trial // J. Clin. Oncol. - 2007. - Vol. 25. - P. 1562-1569.

Shoenfeld Y, Tal A., Berliner S., Pinkhas J. Leukocytosis in non hematological malignancies - a possible tumor-associated marker // J. Cancer Res. Clin. Oncol. - 1986. - Vol. 11. - P. 54-58.

Sionov R.V., Fridlender Z.G., Granot Z. The Multifaceted Roles Neutrophils Play in the Tumor Microenvironment // Cancer Microenviron. - 2014. - DOI 10.1007/s12307-014-0147-5.

Smith H.A., Kang Y The metastasis-promoting roles of tumor-associated immune cells // J. Mol. Med. (Berl). - 2013. - Vol. 91 (4). - P. 411-429.

Tazzyman S., Lewis C.E., Murdoch C. Neutrophils: key mediators of tumour angiogenesis // Int. J. Exp. Pathol. - 2009. - Vol. 90. - P. 222-231.

Templeton A.J., McNamara M.G., Seruga B. et al. Prognostic role of neutrophil-to-lymphocyte ratio in solid tumors: a systematic review and meta-analysis // J. Natl. Cancer Inst. - 2014. - Vol. 106 (6). - P. dju124.

Teramukai S., Kitano T., Kishida Y et al. Pretreatment neutrophil count as an independent prognostic factor in advanced non-small-cell lung cancer: an analysis of Japan Multinational Trial Organisation LC00-03 // Eur. J. Cancer. - 2009. - Vol. 45. - P. 1950-1958.

Trellakis S., Bruderek K., Dumitru C.A. et al. Polymorphonuclear granulocytes in human head and neck cancer: enhanced inflammatory activity, modulation by cancer cells and expansion in advanced disease // Int. J. Cancer. - 2011. - Vol. 129. - P. 2183-2193.

Trellakis S., Farjah H., Bruderek K. et al. Peripheral blood neutrophil granulocytes from patients with head and neck squamous cell carcinoma functionally differ from their counterparts in healthy donors // Int. J. Immunopathol. Pharmacol. - 2011. - Vol. 24. - P. 683-693.

Tsuda Y, Fukui H., Asai A., et al. An immunosuppressive subtype of neutrophils identified in patients with hepatocellular carcinoma // J. Clin. Biochem. Nutr. - 2012. - Vol. 51 (3). - P. 204-212.

Walmsley S.R., Print C., Farahi N. et al. Hypoxia-induced neutrophil survival is mediated by HIF-1alpha-dependent NF-kappaB activity // J. Exp. Med. - 2005. - Vol. 201. - P. 105-115.

Wang L., Ge S., Agustian A. et al. Surface receptor CD177/NB1 does not confer a recruitment advantage to neutrophilic granulocytes during human peritonitis // Eur. J. Haematol. - 2013. - Vol. 90 (5). - P. 436-437.

Welch D.R., Schissel D.J., Howrey R.P., Aeed P.A. Tumor-elicited polymorphonuclear cells, in contrast to “normal” circulating polymorphonuclear cells, stimulate invasive and metastatic potentials of rat mammary adenocarcinoma cells // Proc. Natl. Acad. Sci. USA. - 1989. - Vol. 86. - P. 5859-5863.

Welin A., Amirbeagi F., Christenson K. et al. The human neutrophil subsets defined by the presence or absence of OLFM4 both transmigrate into tissue in vivo and give rise to distinct NETs in vitro // PLoS ONE. - 2013. - Vol. 8 (7). - P. e69575.

Wilke C.M., Kryczek I., Wei S. et al. Th17 cells in cancer: help or hindrance? // Carcinogenesis. - 2011. - Vol. 32 (5). - P. 643-649.

Wislez M., Rabbe N., Marchal J. et al. Hepatocyte growth factor production by neutrophils infiltrating bronchioloalveolar subtype pulmonary adenocarcinoma: role in tumor progression and death // Cancer Res. - 2003. - Vol. 63. - P. 1405-1412.

Wu Y, Zhao Q., Peng C. et al. Neutrophils promote motility of cancer cells via a hyaluronan-mediated TLR4/ PI3K activation loop // J. Pathol. - 2011. - Vol. 225. - P. 438-447.

Zhou S.L., Dai Z., Zhoi Z.J. et al. Overexpression of CXCL5 mediates neutrophil infiltration and indicates poor prognosis for hepatocellular carcinoma // Hepatology. - 2012. - Vol. 56. - P. 2242-2254.

All the Copyright statements for authors are present in the standart Publishing Agreement (Public Offer) to Publish an Article in an Academic Periodical 'Problems in oncology' ...