Home LiteratureArticle Details
PMID: 22215137 Published · ppublish English Journal Article Research Support, N.I.H., Extramural

Pancreatic adenocarcinoma induces bone marrow mobilization of myeloid-derived suppressor cells which promote primary tumor growth.

Cancer immunology, immunotherapy : CII ·Vol. 61 ·No. 9 ·2012-09-00 ·Pages 1373-85

Porembka MR, Mitchem JB, Belt BA, Hsieh CS, Lee HM, Herndon J, Gillanders WE, Linehan DC, Goedegebuure P

Abstract

Myeloid-derived suppressor cells (MDSC) are a heterogeneous population of immunosuppressive cells that are upregulated in cancer. Little is known about the prevalence and importance of MDSC in pancreas adenocarcinoma (PA). Peripheral blood, bone marrow, and tumor samples were collected from pancreatic cancer patients, analyzed for MDSC (CD15(+)CD11b(+)) by flow cytometry and compared to cancer-free controls. The suppressive capacity of MDSC (CD11b(+)Gr-1(+)) and the effectiveness of MDSC depletion were assessed in C57BL/6 mice inoculated with Pan02, a murine PA, and treated with placebo or zoledronic acid, a potent aminobisphosphonate previously shown to target MDSC. The tumor microenvironment was analyzed for MDSC (Gr1(+)CD11b(+)), effector T cells, and tumor cytokine levels. Patients with PA demonstrated increased frequency of MDSC in the bone marrow and peripheral circulation which correlated with disease stage. Normal pancreas tissue showed no MDSC infiltrate, while human tumors avidly recruited MDSC. Murine tumors similarly recruited MDSC that suppressed CD8(+) T cells in vitro and accelerated tumor growth in vivo. Treatment with zoledronic acid impaired intratumoral MDSC accumulation resulting in delayed tumor growth rate, prolonged median survival, and increased recruitment of T cells to the tumor. This was associated with a more robust type 1 response with increased levels of IFN-γ and decreased levels of IL-10. MDSC are important mediators of tumor-induced immunosuppression in pancreatic cancer. Inhibiting MDSC accumulation with zoledronic acid improves the host anti-tumor response in animal studies suggesting that efforts to block MDSC may represent a novel treatment strategy for pancreatic cancer.

MeSH Terms
Adenocarcinoma/immunology,pathology Animals Bone Marrow Cells/drug effects,immunology,pathology Cell Differentiation/drug effects,physiology Diphosphonates/pharmacology Disease Models, Animal Humans Imidazoles/pharmacology Mice Mice, Inbred C57BL Myeloid Cells/drug effects,immunology,pathology Pancreatic Neoplasms/immunology,pathology Tumor Microenvironment Up-Regulation Zoledronic Acid
Chemicals
Diphosphonates Imidazoles Zoledronic Acid
Authors & Affiliations
9 authors, click to expand affiliations / ORCID
Porembka Matthew R
Department of Surgery, Washington University School of Medicine, 660 S Euclid Avenue, Box 8109, Saint Louis, MO 63110, USA.
Mitchem Jonathan B
Belt Brian A
Hsieh Chyi-Song
Lee Hyang-Mi
Herndon John
Gillanders William E
Linehan David C
Goedegebuure Peter
References (76)
76 references, click to expand
  1. Circulating and tumor-infiltrating myeloid cell subsets in patients with bladder cancer.
    Int J Cancer. 2012 Mar 1;130(5):1109-19 PMID: 21480223
  2. Normal human monocytes exposed to glioma cells acquire myeloid-derived suppressor cell-like properties.
    Neuro Oncol. 2010 Apr;12(4):351-65 PMID: 20308313
  3. Tumor-induced tolerance and immune suppression depend on the C/EBPbeta transcription factor.
    Immunity. 2010 Jun 25;32(6):790-802 PMID: 20605485
  4. Disruption of CCR5-dependent homing of regulatory T cells inhibits tumor growth in a murine model of pancreatic cancer.
    J Immunol. 2009 Feb 1;182(3):1746-55 PMID: 19155524
  5. In vivo suppressive function of myeloid-derived suppressor cells is limited to the inflammatory site.
    Eur J Immunol. 2011 Mar;41(3):749-59 PMID: 21287554
  6. Repeated intermittent low-dose therapy with zoledronic acid induces an early, sustained, and long-lasting decrease of peripheral vascular endothelial growth factor levels in cancer patients.
    Clin Cancer Res. 2007 Aug 1;13(15 Pt 1):4482-6 PMID: 17671133
  7. Depletion of CD4+CD25+ regulatory T cells promotes a tumor-specific immune response in pancreas cancer-bearing mice.
    Ann Surg Oncol. 2006 Sep;13(9):1252-8 PMID: 16952047
  8. Reversal of myeloid cell-mediated immunosuppression in patients with metastatic renal cell carcinoma.
    Clin Cancer Res. 2008 Dec 15;14(24):8270-8 PMID: 19088044
  9. The effect of zoledronic acid on the function and differentiation of myeloid cells.
    Haematologica. 2006 Sep;91(9):1165-71 PMID: 16956814
  10. Gr-1+CD115+ immature myeloid suppressor cells mediate the development of tumor-induced T regulatory cells and T-cell anergy in tumor-bearing host.
    Cancer Res. 2006 Jan 15;66(2):1123-31 PMID: 16424049
  11. Myeloid-derived suppressor cells in the peripheral blood of cancer patients contain a subset of immature neutrophils with impaired migratory properties.
    J Leukoc Biol. 2011 Feb;89(2):311-7 PMID: 21106641
  12. Derangement of immune responses by myeloid suppressor cells.
    Cancer Immunol Immunother. 2004 Feb;53(2):64-72 PMID: 14593498
  13. Zoledronic-acid-induced circulating level modifications of angiogenic factors, metalloproteinases and proinflammatory cytokines in metastatic breast cancer patients.
    Oncology. 2005;69(1):35-43 PMID: 16088233
  14. Identification of discrete tumor-induced myeloid-derived suppressor cell subpopulations with distinct T cell-suppressive activity.
    Blood. 2008 Apr 15;111(8):4233-44 PMID: 18272812
  15. CCL2/CCR2 pathway mediates recruitment of myeloid suppressor cells to cancers.
    Cancer Lett. 2007 Jul 8;252(1):86-92 PMID: 17257744
  16. Oxidative stress regulates expression of VEGFR1 in myeloid cells: link to tumor-induced immune suppression in renal cell carcinoma.
    J Immunol. 2008 Jul 1;181(1):346-53 PMID: 18566400
  17. Myeloid suppressor lines inhibit T cell responses by an NO-dependent mechanism.
    J Immunol. 2002 Jan 15;168(2):689-95 PMID: 11777962
  18. Bisphosphonates in breast cancer: antitumor effects.
    Clin Adv Hematol Oncol. 2011 Apr;9(4):292-9 PMID: 21558988
  19. Zoledronic acid modulates antitumoral responses of prostate cancer-tumor associated macrophages.
    Cancer Immunol Immunother. 2008 Oct;57(10):1451-9 PMID: 18297280
  20. Biodistribution and plasma protein binding of zoledronic acid.
    Drug Metab Dispos. 2008 Oct;36(10):2043-9 PMID: 18625688
  21. Zoledronic acid repolarizes tumour-associated macrophages and inhibits mammary carcinogenesis by targeting the mevalonate pathway.
    J Cell Mol Med. 2010 Dec;14(12):2803-15 PMID: 19818098
  22. Subsets of myeloid-derived suppressor cells in tumor-bearing mice.
    J Immunol. 2008 Oct 15;181(8):5791-802 PMID: 18832739
  23. Myeloid cell diversification and complexity: an old concept with new turns in oncology.
    Cancer Metastasis Rev. 2011 Mar;30(1):27-43 PMID: 21267772
  24. Erlotinib plus gemcitabine compared with gemcitabine alone in patients with advanced pancreatic cancer: a phase III trial of the National Cancer Institute of Canada Clinical Trials Group.
    J Clin Oncol. 2007 May 20;25(15):1960-6 PMID: 17452677
  25. Increase in frequency of myeloid-derived suppressor cells in mice with spontaneous pancreatic carcinoma.
    Immunology. 2009 Sep;128(1):141-9 PMID: 19689743
  26. Characterization of cytokine-induced myeloid-derived suppressor cells from normal human peripheral blood mononuclear cells.
    J Immunol. 2010 Aug 15;185(4):2273-84 PMID: 20644162
  27. Activated granulocytes and granulocyte-derived hydrogen peroxide are the underlying mechanism of suppression of t-cell function in advanced cancer patients.
    Cancer Res. 2001 Jun 15;61(12):4756-60 PMID: 11406548
  28. Myeloid-derived suppressor cells as regulators of the immune system.
    Nat Rev Immunol. 2009 Mar;9(3):162-74 PMID: 19197294
  29. Myeloid-derived suppressor cells: general characteristics and relevance to clinical management of pancreatic cancer.
    Curr Cancer Drug Targets. 2011 Jul;11(6):734-51 PMID: 21599634
  30. Interleukin-13-regulated M2 macrophages in combination with myeloid suppressor cells block immune surveillance against metastasis.
    Cancer Res. 2005 Dec 15;65(24):11743-51 PMID: 16357187
  31. CXCR2 and CXCR4 antagonistically regulate neutrophil trafficking from murine bone marrow.
    J Clin Invest. 2010 Jul;120(7):2423-31 PMID: 20516641
  32. Zoledronic acid induces antiproliferative and apoptotic effects in human pancreatic cancer cells in vitro.
    Br J Cancer. 2003 Jun 16;88(12):1971-8 PMID: 12799645
  33. Hierarchy of immunosuppressive strength among myeloid-derived suppressor cell subsets is determined by GM-CSF.
    Eur J Immunol. 2010 Jan;40(1):22-35 PMID: 19941314
  34. Mechanism of T cell tolerance induced by myeloid-derived suppressor cells.
    J Immunol. 2010 Mar 15;184(6):3106-16 PMID: 20142361
  35. Sunitinib mediates reversal of myeloid-derived suppressor cell accumulation in renal cell carcinoma patients.
    Clin Cancer Res. 2009 Mar 15;15(6):2148-57 PMID: 19276286
  36. An amino-bisphosphonate targets MMP-9-expressing macrophages and angiogenesis to impair cervical carcinogenesis.
    J Clin Invest. 2004 Sep;114(5):623-33 PMID: 15343380
  37. Functional characterization of human Cd33+ and Cd11b+ myeloid-derived suppressor cell subsets induced from peripheral blood mononuclear cells co-cultured with a diverse set of human tumor cell lines.
    J Transl Med. 2011 Jun 09;9:90 PMID: 21658270
  38. Zoledronic acid has direct antiproliferative and antimetastatic effect on pancreatic carcinoma cells and acts as an antigen for delta2 gamma/delta T cells.
    J Immunother. 2007 May-Jun;30(4):370-7 PMID: 17457212
  39. 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
  40. Expression of the G-CSF receptor in monocytic cells is sufficient to mediate hematopoietic progenitor mobilization by G-CSF in mice.
    J Exp Med. 2011 Feb 14;208(2):251-60 PMID: 21282380
  41. Suppressed T-cell receptor zeta chain expression and cytokine production in pancreatic cancer patients.
    Clin Cancer Res. 2001 Mar;7(3 Suppl):933s-939s PMID: 11300494
  42. Identification of a new subset of myeloid suppressor cells in peripheral blood of melanoma patients with modulation by a granulocyte-macrophage colony-stimulation factor-based antitumor vaccine.
    J Clin Oncol. 2007 Jun 20;25(18):2546-53 PMID: 17577033
  43. Population alterations of L-arginase- and inducible nitric oxide synthase-expressed CD11b+/CD14⁻/CD15+/CD33+ myeloid-derived suppressor cells and CD8+ T lymphocytes in patients with advanced-stage non-small cell lung cancer.
    J Cancer Res Clin Oncol. 2010 Jan;136(1):35-45 PMID: 19572148
  44. Endocrine therapy plus zoledronic acid in premenopausal breast cancer.
    N Engl J Med. 2009 Feb 12;360(7):679-91 PMID: 19213681
  45. Myeloid-derived suppressor cells down-regulate L-selectin expression on CD4+ and CD8+ T cells.
    J Immunol. 2009 Jul 15;183(2):937-44 PMID: 19553533
  46. Myeloid-derived suppressor cells inhibit T-cell activation by depleting cystine and cysteine.
    Cancer Res. 2010 Jan 1;70(1):68-77 PMID: 20028852
  47. Reduction of myeloid-derived suppressor cells and induction of M1 macrophages facilitate the rejection of established metastatic disease.
    J Immunol. 2005 Jan 15;174(2):636-45 PMID: 15634881
  48. CC chemokine ligand 2 (CCL2) promotes prostate cancer tumorigenesis and metastasis.
    Cytokine Growth Factor Rev. 2010 Feb;21(1):41-8 PMID: 20005149
  49. Mechanism regulating reactive oxygen species in tumor-induced myeloid-derived suppressor cells.
    J Immunol. 2009 May 1;182(9):5693-701 PMID: 19380816
  50. Myeloid-derived suppressor cell heterogeneity and subset definition.
    Curr Opin Immunol. 2010 Apr;22(2):238-44 PMID: 20171075
  51. Cancer statistics, 2010.
    CA Cancer J Clin. 2010 Sep-Oct;60(5):277-300 PMID: 20610543
  52. Mechanisms of G-CSF-mediated hematopoietic stem and progenitor mobilization.
    Leukemia. 2011 Feb;25(2):211-7 PMID: 21079612
  53. Arginase-producing myeloid suppressor cells in renal cell carcinoma patients: a mechanism of tumor evasion.
    Cancer Res. 2005 Apr 15;65(8):3044-8 PMID: 15833831
  54. Tumor-infiltrating, myeloid-derived suppressor cells inhibit T cell activity by nitric oxide production in an intracranial rat glioma + vaccination model.
    J Neuroimmunol. 2010 Jun;223(1-2):20-30 PMID: 20452681
  55. Bisphosphonates and the prevention of metastasis: first evidences from preclinical and clinical studies.
    Cancer. 2000 Jun 15;88(12 Suppl):3080-8 PMID: 10898355
  56. Adjuvant interferon-based chemoradiation followed by gemcitabine for resected pancreatic adenocarcinoma: a single-institution phase II study.
    Ann Surg. 2008 Aug;248(2):145-51 PMID: 18650621
  57. Interferon-based adjuvant chemoradiation therapy after pancreaticoduodenectomy for pancreatic adenocarcinoma.
    Am J Surg. 2003 May;185(5):476-80 PMID: 12727570
  58. Reversion of immune tolerance in advanced malignancy: modulation of myeloid-derived suppressor cell development by blockade of stem-cell factor function.
    Blood. 2008 Jan 1;111(1):219-28 PMID: 17885078
  59. Anti-inflammatory triterpenoid blocks immune suppressive function of MDSCs and improves immune response in cancer.
    Clin Cancer Res. 2010 Mar 15;16(6):1812-23 PMID: 20215551
  60. Zoledronic acid induces significant and long-lasting modifications of circulating angiogenic factors in cancer patients.
    Clin Cancer Res. 2003 Aug 1;9(8):2893-7 PMID: 12912933
  61. Equilibrium between host and cancer caused by effector T cells killing tumor stroma.
    Cancer Res. 2008 Mar 1;68(5):1563-71 PMID: 18316622
  62. Arginase I-producing myeloid-derived suppressor cells in renal cell carcinoma are a subpopulation of activated granulocytes.
    Cancer Res. 2009 Feb 15;69(4):1553-60 PMID: 19201693
  63. Improvements in survival and clinical benefit with gemcitabine as first-line therapy for patients with advanced pancreas cancer: a randomized trial.
    J Clin Oncol. 1997 Jun;15(6):2403-13 PMID: 9196156
  64. Dynamics of the immune reaction to pancreatic cancer from inception to invasion.
    Cancer Res. 2007 Oct 1;67(19):9518-27 PMID: 17909062
  65. Arginase I in myeloid suppressor cells is induced by COX-2 in lung carcinoma.
    J Exp Med. 2005 Oct 3;202(7):931-9 PMID: 16186186
  66. Increased production of immature myeloid cells in cancer patients: a mechanism of immunosuppression in cancer.
    J Immunol. 2001 Jan 1;166(1):678-89 PMID: 11123353
  67. Arginase I production in the tumor microenvironment by mature myeloid cells inhibits T-cell receptor expression and antigen-specific T-cell responses.
    Cancer Res. 2004 Aug 15;64(16):5839-49 PMID: 15313928
  68. Prevalence of regulatory T cells is increased in peripheral blood and tumor microenvironment of patients with pancreas or breast adenocarcinoma.
    J Immunol. 2002 Sep 1;169(5):2756-61 PMID: 12193750
  69. Myeloid suppressor cells in cancer: recruitment, phenotype, properties, and mechanisms of immune suppression.
    Semin Cancer Biol. 2006 Feb;16(1):53-65 PMID: 16168663
  70. CD25+ CD4+ regulatory T-cells in cancer.
    Immunol Res. 2005;32(1-3):155-68 PMID: 16106066
  71. Induction and chemotherapeutic response of two transplantable ductal adenocarcinomas of the pancreas in C57BL/6 mice.
    Cancer Res. 1984 Feb;44(2):717-26 PMID: 6692374
  72. Tumor-induced tolerance and immune suppression by myeloid derived suppressor cells.
    Immunol Rev. 2008 Apr;222:162-79 PMID: 18364001
  73. Increased prevalence of regulatory T cells (Treg) is induced by pancreas adenocarcinoma.
    J Immunother. 2006 Jul-Aug;29(4):416-24 PMID: 16799337
  74. Cancer-expanded myeloid-derived suppressor cells induce anergy of NK cells through membrane-bound TGF-beta 1.
    J Immunol. 2009 Jan 1;182(1):240-9 PMID: 19109155
  75. Amino-biphosphonate-mediated MMP-9 inhibition breaks the tumor-bone marrow axis responsible for myeloid-derived suppressor cell expansion and macrophage infiltration in tumor stroma.
    Cancer Res. 2007 Dec 1;67(23):11438-46 PMID: 18056472
  76. Clinical significance of defective dendritic cell differentiation in cancer.
    Clin Cancer Res. 2000 May;6(5):1755-66 PMID: 10815894
Article Info
Journal
Cancer immunology, immunotherapy : CII
Abbr.
Cancer Immunol Immunother
ISSN
1432-0851
Published
2012-09-00
Epub
2012-00-04
Pages
1373-85
Language
English
Region
Germany
NLM ID
8605732
PMCID
PMC3697836
Subset
IM
Grants
NCI NIH HHS · T32 CA009621 · United States
NCI NIH HHS · T32CA009621 · United States
Analysis Services
Analysis Services

Contact

No. 2 Wenbo Road, Zhangqiu District, Jinan, Shandong

Qilu Normal University · Genelibs Bioinformatics Lab

750 Shunhua Rd, Jinan

2F, Bldg F, University Science Park

Tel: 0531-88819269

WeChat Official Account

Follow our WeChat subscription account for real-time updates and the latest in medical and biological research.


Business Email

E-mail: [email protected]