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PMID: 26269531 Published · ppublish English Journal Article Research Support, Non-U.S. Gov't

Perivascular M2 Macrophages Stimulate Tumor Relapse after Chemotherapy.

Cancer research ·Vol. 75 ·No. 17 ·2015-09-01 ·Pages 3479-91

Hughes R, Qian BZ, Rowan C, Muthana M, Keklikoglou I, Olson OC, Tazzyman S, Danson S, Addison C, Clemons M, Gonzalez-Angulo AM, Joyce JA, De Palma M, Pollard JW, Lewis CE

Abstract

Tumor relapse after chemotherapy-induced regression is a major clinical problem, because it often involves inoperable metastatic disease. Tumor-associated macrophages (TAM) are known to limit the cytotoxic effects of chemotherapy in preclinical models of cancer. Here, we report that an alternatively activated (M2) subpopulation of TAMs (MRC1(+)TIE2(Hi)CXCR4(Hi)) accumulate around blood vessels in tumors after chemotherapy, where they promote tumor revascularization and relapse, in part, via VEGF-A release. A similar perivascular, M2-related TAM subset was present in human breast carcinomas and bone metastases after chemotherapy. Although a small proportion of M2 TAMs were also present in hypoxic tumor areas, when we genetically ablated their ability to respond to hypoxia via hypoxia-inducible factors 1 and 2, tumor relapse was unaffected. TAMs were the predominant cells expressing immunoreactive CXCR4 in chemotherapy-treated mouse tumors, with the highest levels expressed by MRC1(+) TAMs clustering around the tumor vasculature. Furthermore, the primary CXCR4 ligand, CXCL12, was upregulated in these perivascular sites after chemotherapy, where it was selectively chemotactic for MRC1(+) TAMs. Interestingly, HMOX-1, a marker of oxidative stress, was also upregulated in perivascular areas after chemotherapy. This enzyme generates carbon monoxide from the breakdown of heme, a gas known to upregulate CXCL12. Finally, pharmacologic blockade of CXCR4 selectively reduced M2-related TAMs after chemotherapy, especially those in direct contact with blood vessels, thereby reducing tumor revascularization and regrowth. Our studies rationalize a strategy to leverage chemotherapeutic efficacy by selectively targeting this perivascular, relapse-promoting M2-related TAM cell population.

MeSH Terms
Animals Breast Neoplasms/drug therapy,genetics,pathology Carcinoma, Lewis Lung/drug therapy,genetics,pathology Chemokine CXCL12/biosynthesis,genetics Female Gene Expression Regulation, Neoplastic Humans Macrophages/metabolism,pathology Mice Neoplasm Recurrence, Local/drug therapy,genetics,pathology Neoplasms, Experimental/drug therapy,genetics,pathology Neovascularization, Pathologic/drug therapy,genetics Receptors, CXCR4/antagonists & inhibitors,biosynthesis,genetics Signal Transduction/drug effects Tamoxifen/administration & dosage Vascular Endothelial Growth Factor A/biosynthesis,genetics
Chemicals
CXCL12 protein, human CXCR4 protein, human Chemokine CXCL12 Receptors, CXCR4 Vascular Endothelial Growth Factor A Tamoxifen
Authors & Affiliations
15 authors, click to expand affiliations / ORCID
Hughes Russell
Department of Oncology, University of Sheffield Medical School, Sheffield, United Kingdom.
Qian Bin-Zhi
MRC Centre for Reproductive Health, Queen's Medical Research Institute, University of Edinburgh, Edinburgh, Scotland, United Kingdom.
Rowan Charlotte
Department of Oncology, University of Sheffield Medical School, Sheffield, United Kingdom.
Muthana Munitta
Department of Oncology, University of Sheffield Medical School, Sheffield, United Kingdom.
Keklikoglou Ioanna
Swiss Institute for Experimental Cancer Research (ISREC), School of Life Sciences, École Polytechnique Fédérale de Lausanne (EPFL), Lausanne, Switzerland.
Olson Oakley C
Cancer Biology and Genetics Program, Memorial Sloan Kettering Cancer Center, New York, New York.
Tazzyman Simon
Department of Oncology, University of Sheffield Medical School, Sheffield, United Kingdom.
Danson Sarah
Department of Oncology, University of Sheffield Medical School, Sheffield, United Kingdom.
Addison Christina
Cancer Therapeutics Program, Ottawa Hospital Research Institute, and Department of Medicine, University of Ottawa, Ontario, Canada.
Clemons Mark
Cancer Therapeutics Program, Ottawa Hospital Research Institute, and Department of Medicine, University of Ottawa, Ontario, Canada.
Gonzalez-Angulo Ana Maria
Breast Medical Oncology, The University of Texas MD Anderson Cancer Center, Houston, Texas.
Joyce Johanna A
Cancer Biology and Genetics Program, Memorial Sloan Kettering Cancer Center, New York, New York.
De Palma Michele
Swiss Institute for Experimental Cancer Research (ISREC), School of Life Sciences, École Polytechnique Fédérale de Lausanne (EPFL), Lausanne, Switzerland.
Pollard Jeffrey W
MRC Centre for Reproductive Health, Queen's Medical Research Institute, University of Edinburgh, Edinburgh, Scotland, United Kingdom. Department of Developmental and Molecular Biology, Albert Einstein College of Medicine, New York, New York.
Lewis Claire E
Department of Oncology, University of Sheffield Medical School, Sheffield, United Kingdom. claire.lewis@sheffield.ac.uk.
Conflict of Interest

of Potential Conflicts of Interest No potential conflicts of interest were disclosed.

References (50)
50 references, click to expand
  1. Drug resistance by evasion of antiangiogenic targeting of VEGF signaling in late-stage pancreatic islet tumors.
    Cancer Cell. 2005 Oct;8(4):299-309 PMID: 16226705
  2. Increased circulating myeloid-derived suppressor cells correlate with clinical cancer stage, metastatic tumor burden, and doxorubicin-cyclophosphamide chemotherapy.
    Cancer Immunol Immunother. 2009 Jan;58(1):49-59 PMID: 18446337
  3. Anti-PlGF inhibits growth of VEGF(R)-inhibitor-resistant tumors without affecting healthy vessels.
    Cell. 2007 Nov 2;131(3):463-75 PMID: 17981115
  4. CXCR7 (RDC1) promotes breast and lung tumor growth in vivo and is expressed on tumor-associated vasculature.
    Proc Natl Acad Sci U S A. 2007 Oct 2;104(40):15735-40 PMID: 17898181
  5. Cell type-specific expression of angiopoietin-1 and angiopoietin-2 suggests a role in glioblastoma angiogenesis.
    Am J Pathol. 1998 Nov;153(5):1459-66 PMID: 9811337
  6. The role of oxidative stress in acrolein-induced DNA damage in HepG2 cells.
    Free Radic Res. 2008 Apr;42(4):354-61 PMID: 18404534
  7. Role of angiopoietin-2 in adaptive tumor resistance to VEGF signaling blockade.
    Cell Rep. 2014 Aug 7;8(3):696-706 PMID: 25088418
  8. Direct visualization of macrophage-assisted tumor cell intravasation in mammary tumors.
    Cancer Res. 2007 Mar 15;67(6):2649-56 PMID: 17363585
  9. Inhibition of vasculogenesis, but not angiogenesis, prevents the recurrence of glioblastoma after irradiation in mice.
    J Clin Invest. 2010 Mar;120(3):694-705 PMID: 20179352
  10. VEGF-induced adult neovascularization: recruitment, retention, and role of accessory cells.
    Cell. 2006 Jan 13;124(1):175-89 PMID: 16413490
  11. CCL2 recruits inflammatory monocytes to facilitate breast-tumour metastasis.
    Nature. 2011 Jun 08;475(7355):222-5 PMID: 21654748
  12. Tumor refractoriness to anti-VEGF treatment is mediated by CD11b+Gr1+ myeloid cells.
    Nat Biotechnol. 2007 Aug;25(8):911-20 PMID: 17664940
  13. Imaging tumor-stroma interactions during chemotherapy reveals contributions of the microenvironment to resistance.
    Cancer Cell. 2012 Apr 17;21(4):488-503 PMID: 22516258
  14. Different tumor microenvironments contain functionally distinct subsets of macrophages derived from Ly6C(high) monocytes.
    Cancer Res. 2010 Jul 15;70(14):5728-39 PMID: 20570887
  15. Tumor-associated macrophages: from mechanisms to therapy.
    Immunity. 2014 Jul 17;41(1):49-61 PMID: 25035953
  16. Macrophages and cathepsin proteases blunt chemotherapeutic response in breast cancer.
    Genes Dev. 2011 Dec 1;25(23):2465-79 PMID: 22156207
  17. Inhibition of Mac-1 (CD11b/CD18) enhances tumor response to radiation by reducing myeloid cell recruitment.
    Proc Natl Acad Sci U S A. 2010 May 4;107(18):8363-8 PMID: 20404138
  18. Leukocyte complexity predicts breast cancer survival and functionally regulates response to chemotherapy.
    Cancer Discov. 2011 Jun;1(1):54-67 PMID: 22039576
  19. Tie2 identifies a hematopoietic lineage of proangiogenic monocytes required for tumor vessel formation and a mesenchymal population of pericyte progenitors.
    Cancer Cell. 2005 Sep;8(3):211-26 PMID: 16169466
  20. Heme oxygenase-1 promotes neovascularization in ischemic heart by coinduction of VEGF and SDF-1.
    J Mol Cell Cardiol. 2008 Jul;45(1):44-55 PMID: 18534615
  21. Macrophage plasticity and polarization in tissue repair and remodelling.
    J Pathol. 2013 Jan;229(2):176-85 PMID: 23096265
  22. Tumor-associated macrophages: effectors of angiogenesis and tumor progression.
    Biochim Biophys Acta. 2009 Aug;1796(1):11-8 PMID: 19269310
  23. Deletion of vascular endothelial growth factor in myeloid cells accelerates tumorigenesis.
    Nature. 2008 Dec 11;456(7223):814-8 PMID: 18997773
  24. A novel chemoimmunomodulating property of docetaxel: suppression of myeloid-derived suppressor cells in tumor bearers.
    Clin Cancer Res. 2010 Sep 15;16(18):4583-94 PMID: 20702612
  25. Treatment-induced host-mediated mechanisms reducing the efficacy of antitumor therapies.
    Oncogene. 2014 Mar 13;33(11):1341-7 PMID: 23524584
  26. Hypoxia-inducible factors 1 and 2 are important transcriptional effectors in primary macrophages experiencing hypoxia.
    Blood. 2009 Jul 23;114(4):844-59 PMID: 19454749
  27. Locally advanced pancreatic cancer. Looking beyond traditional chemotherapy and radiation.
    JOP. 2013 Jul 10;14(4):337-9 PMID: 23846922
  28. Cessation of CCL2 inhibition accelerates breast cancer metastasis by promoting angiogenesis.
    Nature. 2014 Nov 6;515(7525):130-3 PMID: 25337873
  29. Recruitment of myeloid but not endothelial precursor cells facilitates tumor regrowth after local irradiation.
    Cancer Res. 2010 Jul 15;70(14):5679-85 PMID: 20631066
  30. Induction of heme oxygenase-1 with hemin reduces obesity-induced adipose tissue inflammation via adipose macrophage phenotype switching.
    Mediators Inflamm. 2014;2014:290708 PMID: 25477711
  31. TIE2-expressing macrophages limit the therapeutic efficacy of the vascular-disrupting agent combretastatin A4 phosphate in mice.
    J Clin Invest. 2011 May;121(5):1969-73 PMID: 21490397
  32. A distinguishing gene signature shared by tumor-infiltrating Tie2-expressing monocytes, blood "resident" monocytes, and embryonic macrophages suggests common functions and developmental relationships.
    Blood. 2009 Jul 23;114(4):901-14 PMID: 19383967
  33. Poor prognosis patients with inoperable locally advanced NSCLC and large tumors benefit from palliative chemoradiotherapy: a subset analysis from a randomized clinical phase III trial.
    J Thorac Oncol. 2014 Jun;9(6):825-33 PMID: 24807158
  34. Targeting CXCL12 from FAP-expressing carcinoma-associated fibroblasts synergizes with anti-PD-L1 immunotherapy in pancreatic cancer.
    Proc Natl Acad Sci U S A. 2013 Dec 10;110(50):20212-7 PMID: 24277834
  35. Macrophage regulation of tumor responses to anticancer therapies.
    Cancer Cell. 2013 Mar 18;23(3):277-86 PMID: 23518347
  36. Mechanisms regulating the recruitment of macrophages into hypoxic areas of tumors and other ischemic tissues.
    Blood. 2004 Oct 15;104(8):2224-34 PMID: 15231578
  37. Mena invasive (Mena(INV)) and Mena11a isoforms play distinct roles in breast cancer cell cohesion and association with TMEM.
    Clin Exp Metastasis. 2011 Aug;28(6):515-27 PMID: 21484349
  38. Plasticity of macrophage function during tumor progression: regulation by distinct molecular mechanisms.
    J Immunol. 2008 Feb 15;180(4):2011-7 PMID: 18250403
  39. Positron emission tomography imaging of tumors expressing the human chemokine receptor CXCR4 in mice with the use of 64Cu-AMD3100.
    Mol Imaging Biol. 2012 Feb;14 (1):106-14 PMID: 21347799
  40. Collateral damage in cancer chemotherapy: oxidative stress in nontargeted tissues.
    Mol Interv. 2007 Jun;7(3):147-56 PMID: 17609521
  41. B cells regulate macrophage phenotype and response to chemotherapy in squamous carcinomas.
    Cancer Cell. 2014 Jun 16;25(6):809-21 PMID: 24909985
  42. Elusive identities and overlapping phenotypes of proangiogenic myeloid cells in tumors.
    Am J Pathol. 2010 Apr;176(4):1564-76 PMID: 20167863
  43. Targeting the ANG2/TIE2 axis inhibits tumor growth and metastasis by impairing angiogenesis and disabling rebounds of proangiogenic myeloid cells.
    Cancer Cell. 2011 Apr 12;19(4):512-26 PMID: 21481792
  44. Antiangiogenic scheduling of chemotherapy improves efficacy against experimental drug-resistant cancer.
    Cancer Res. 2000 Apr 1;60(7):1878-86 PMID: 10766175
  45. Acquisition of metastatic tissue from patients with bone metastases from breast cancer.
    Breast Cancer Res Treat. 2011 Oct;129(3):761-5 PMID: 21113656
  46. Hypoxia-induced production of stromal cell-derived factor 1 (CXCL12) and vascular endothelial growth factor by synovial fibroblasts.
    Arthritis Rheum. 2002 Oct;46(10 ):2587-97 PMID: 12384916
  47. Macrophage diversity enhances tumor progression and metastasis.
    Cell. 2010 Apr 2;141(1):39-51 PMID: 20371344
  48. Macrophages regulate the angiogenic switch in a mouse model of breast cancer.
    Cancer Res. 2006 Dec 1;66(23):11238-46 PMID: 17114237
  49. A phase I trial of LY2510924, a CXCR4 peptide antagonist, in patients with advanced cancer.
    Clin Cancer Res. 2014 Jul 1;20(13):3581-8 PMID: 24727324
  50. Rapid chemotherapy-induced acute endothelial progenitor cell mobilization: implications for antiangiogenic drugs as chemosensitizing agents.
    Cancer Cell. 2008 Sep 9;14(3):263-73 PMID: 18772115
Article Info
Journal
Cancer research
Abbr.
Cancer Res
ISSN
1538-7445
Published
2015-09-01
Epub
2015-00-12
Pages
3479-91
Language
English
Region
United States
NLM ID
2984705R
PMCID
PMC5024531
Subset
IM
Grants
Wellcome Trust · 101067 · United Kingdom
Cancer Research UK · 13028 · United Kingdom
Medical Research Council · G1002033 · United Kingdom
NCI NIH HHS · P01 CA100324 · United States
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