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PMID: 19902470 Published · ppublish English Journal Article Research Support, N.I.H., Extramural Research Support, Non-U.S. Gov't

Immunosuppressive CD14+HLA-DRlow/- monocytes in prostate cancer.

The Prostate ·Vol. 70 ·No. 4 ·2010-03-01 ·Pages 443-55

Vuk-Pavlović S, Bulur PA, Lin Y, Qin R, Szumlanski CL, Zhao X, Dietz AB

Abstract

To determine if the levels of circulating myeloid-derived suppressor cells increase with progression of prostate cancer (PCa); to determine if such cells could contribute to the relative inefficiency of PCa immunotherapy. We analyzed peripheral blood mononuclear cells isolated from untreated PCa patients (uPCa; N = 18; mean age +/- SD: 72.1 +/- 6.9 years), tPCa (N = 22; 72.8 +/- 9.8 years) and age matched controls (AMC; N = 12; 68.8 +/- 7.5 years). We quantified surface marker phenotype, differentiation potential, effects on T cell proliferation and intracellular cytokines. We observed an unexpectedly high percentage of a type of myeloid-derived suppressor cells, CD14(+)HLA-DR(low/-) monocytes, in tPCa (30.7 +/- 15.0% of CD14(+) cells) relative to AMC (4.1 +/- 6.5%, P < 0.0001) and uPCa (10.6 +/- 14.3%, P = 0.0001). The levels of CD14(+) HLA-DR(low/-) cells were significantly correlated with circulating PSA levels and treatment with LHRH-agonist leuprolide in combination with either an antiandrogen or dexamethasone. Monocytes from tPCa inhibited autologous T cell proliferation statistically significantly more effectively than AMC monocytes and were defective in their ability to differentiate into phenotypically mature dendritic cells. Isolated CD14(+)HLA-DR(low/-) cells expressed higher levels of intracellular interleukin-10 and suppressed T cell proliferation more effectively than isolated CD14(+)HLA-DR(+) cells. This is the first report of CD14(+) cells exhibiting reduced expression of HLA-DR molecules in PCa patients. These cells suppress immune cell function in vitro and, plausibly, in vivo, a finding that must be factored into the design of immunotherapy protocols for PCa patients.

MeSH Terms
Angiogenesis Inhibitors/therapeutic use Antineoplastic Agents, Hormonal/therapeutic use Cell Proliferation Dendritic Cells/drug effects Dexamethasone/therapeutic use Disease Progression Drug Therapy, Combination HLA-DR Antigens/metabolism Humans Immunosuppression Therapy Leuprolide/therapeutic use Lipopolysaccharide Receptors/metabolism Male Monocytes/drug effects,immunology,metabolism Prostate-Specific Antigen/blood Prostatic Neoplasms/blood,drug therapy,immunology T-Lymphocytes/drug effects
Chemicals
Angiogenesis Inhibitors Antineoplastic Agents, Hormonal HLA-DR Antigens Lipopolysaccharide Receptors Dexamethasone Prostate-Specific Antigen Leuprolide
Authors & Affiliations
7 authors, click to expand affiliations / ORCID
Vuk-Pavlović Stanimir
Stem Cell Laboratory, Mayo Clinic Cancer Center, College of Medicine, Mayo Clinic, Rochester, Minnesota 55905, USA. [email protected]
Bulur Peggy A
Lin Yi
Qin Rui
Szumlanski Carol L
Zhao Xinghua
Dietz Allan B
References (49)
49 references, click to expand
  1. Expression of interleukin (IL)-2 and IL-7 receptors discriminates between human regulatory and activated T cells.
    J Exp Med. 2006 Jul 10;203(7):1693-700 PMID: 16818676
  2. Myeloid-derived suppressor cells: a novel therapeutic target.
    Curr Oncol Rep. 2009 Mar;11(2):87-93 PMID: 19216839
  3. Human CD4+ regulatory T cells express lower levels of the IL-7 receptor alpha chain (CD127), allowing consistent identification and sorting of live cells.
    J Immunol Methods. 2007 Jan 30;319(1-2):41-52 PMID: 17173927
  4. Multiple mechanisms of reduced major histocompatibility complex class II expression in endotoxin tolerance.
    J Biol Chem. 2003 May 16;278(20):18030-6 PMID: 12637533
  5. Inhibition of dendritic cell generation and function by serum from prostate cancer patients: correlation with serum-free PSA.
    Adv Exp Med Biol. 2007;601:173-82 PMID: 17713004
  6. Immature myeloid cells and cancer-associated immune suppression.
    Cancer Immunol Immunother. 2002 Aug;51(6):293-8 PMID: 12111117
  7. Cytokine variations in patients with hormone treated prostate cancer.
    J Urol. 2000 Sep;164(3 Pt 1):722-5 PMID: 10953133
  8. Suppressor cells in the pelvic lymph nodes regional to bladder cancer.
    J Surg Oncol. 1979;11(4):289-93 PMID: 156288
  9. Androgen ablation mitigates tolerance to a prostate/prostate cancer-restricted antigen.
    Cancer Cell. 2005 Mar;7(3):239-49 PMID: 15766662
  10. 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
  11. CD4+CD25+Foxp3+ regulatory T cells induce alternative activation of human monocytes/macrophages.
    Proc Natl Acad Sci U S A. 2007 Dec 4;104(49):19446-51 PMID: 18042719
  12. Augmentation of T cell levels and responses induced by androgen deprivation.
    J Immunol. 2004 Nov 15;173(10):6098-108 PMID: 15528346
  13. Immunotherapy with dendritic cells for prostate cancer.
    Int J Cancer. 2007 Aug 1;121(3):467-73 PMID: 17514654
  14. Impact of androgen-deprivation therapy on the immune system: implications for combination therapy of prostate cancer.
    Front Biosci. 2007 Sep 01;12:4957-71 PMID: 17569623
  15. Adherent suppressor cells in the blood of patients with bladder cancer.
    J Urol. 1981 Oct;126(4):457-60 PMID: 6457159
  16. Expression of transforming growth factor-beta in the rat ventral prostate during castration-induced programmed cell death.
    Mol Endocrinol. 1989 Oct;3(10):1515-22 PMID: 2608047
  17. Plasma levels of transforming growth factor-1beta and alpha2-macroglobulin before and after radical prostatectomy: association to clinicopathological parameters.
    Prostate. 2004 Nov 1;61(3):201-8 PMID: 15368477
  18. CD8+ Foxp3+ regulatory T cells mediate immunosuppression in prostate cancer.
    Clin Cancer Res. 2007 Dec 1;13(23):6947-58 PMID: 18056169
  19. Dendritic cells and the control of immunity.
    Nature. 1998 Mar 19;392(6673):245-52 PMID: 9521319
  20. Modulation of monocyte/macrophage function by human CD4+CD25+ regulatory T cells.
    Hum Immunol. 2005 Mar;66(3):222-30 PMID: 15784460
  21. The endocrine profiles in men with localized and locally advanced prostate cancer treated with radical prostatectomy.
    Neuro Endocrinol Lett. 2007 Feb;28(1):45-51 PMID: 17277727
  22. Pathways mediating the expansion and immunosuppressive activity of myeloid-derived suppressor cells and their relevance to cancer therapy.
    Clin Cancer Res. 2007 Sep 15;13(18 Pt 1):5243-8 PMID: 17875751
  23. Peripheral T-cell tolerance associated with prostate cancer is independent from CD4+CD25+ regulatory T cells.
    Cancer Res. 2008 Jan 1;68(1):292-300 PMID: 18172322
  24. Monocyte human leukocyte antigen-DR transcriptional downregulation by cortisol during septic shock.
    Am J Respir Crit Care Med. 2004 May 15;169(10):1144-51 PMID: 15028560
  25. Clinical-grade manufacturing of DC from CD14+ precursors: experience from phase I clinical trials in CML and malignant melanoma.
    Cytotherapy. 2004;6(6):563-70 PMID: 15773024
  26. Characterization of circulating blood dendritic cell subsets DC123+ (lymphoid) and DC11C+ (myeloid) in prostate adenocarcinoma patients.
    Prostate. 2007 Jan 1;67(1):1-7 PMID: 17075798
  27. CD4+CD25high T cells are enriched in the tumor and peripheral blood of prostate cancer patients.
    J Immunol. 2006 Nov 15;177(10):7398-405 PMID: 17082659
  28. Is the measurement of monocytes HLA-DR expression useful in patients with sepsis?
    Intensive Care Med. 2006 Aug;32(8):1106-8 PMID: 16741699
  29. Down-regulation of HLA class II and costimulatory CD86/B7-2 on circulating monocytes from melanoma patients.
    Cancer Immunol Immunother. 2004 Jun;53(6):551-9 PMID: 14727087
  30. Optimizing preparation of normal dendritic cells and bcr-abl+ mature dendritic cells derived from immunomagnetically purified CD14+ cells.
    J Hematother Stem Cell Res. 2000 Feb;9(1):95-101 PMID: 10738977
  31. Decreased production of inflammatory cytokines by circulating monocytes and dendritic cells in type 2 diabetic men with atherosclerotic complications.
    J Diabetes Complications. 2007 Jan-Feb;21(1):41-9 PMID: 17189873
  32. 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
  33. Enhanced functionality of CD4+CD25(high)FoxP3+ regulatory T cells in the peripheral blood of patients with prostate cancer.
    Clin Cancer Res. 2008 Feb 15;14(4):1032-40 PMID: 18281535
  34. Identification of an IL-10-producing HLA-DR-negative monocyte subset in the malignant ascites of patients with ovarian carcinoma that inhibits cytokine protein expression and proliferation of autologous T cells.
    J Immunol. 1999 Dec 1;163(11):6251-60 PMID: 10570318
  35. Optimizing immunotherapy in multiple myeloma: Restoring the function of patients' monocyte-derived dendritic cells by inhibiting p38 or activating MEK/ERK MAPK and neutralizing interleukin-6 in progenitor cells.
    Blood. 2006 Dec 15;108(13):4071-7 PMID: 16917008
  36. Myeloid-derived suppressor cells: linking inflammation and cancer.
    J Immunol. 2009 Apr 15;182(8):4499-506 PMID: 19342621
  37. Collapse of the CD27+ B-cell compartment associated with systemic plasmacytosis in patients with advanced melanoma and other cancers.
    Clin Cancer Res. 2009 Jul 1;15(13):4277-87 PMID: 19549767
  38. Human leukocyte antigen-DR expression on peripheral blood monocytes and the risk of pneumonia in pediatric lung transplant recipients.
    Transpl Infect Dis. 2004 Dec;6(4):147-55 PMID: 15762932
  39. CD4+ T cells cooperate with macrophages for specific elimination of MHC class II-negative cancer cells.
    Adv Exp Med Biol. 2007;590:195-208 PMID: 17191387
  40. Reprogramming of circulatory cells in sepsis and SIRS.
    J Endotoxin Res. 2005;11(5):311-20 PMID: 16263005
  41. Myeloid-derived suppressor cells in inflammatory bowel disease: a new immunoregulatory pathway.
    Gastroenterology. 2008 Sep;135(3):871-81, 881.e1-5 PMID: 18674538
  42. CD127 expression inversely correlates with FoxP3 and suppressive function of human CD4+ T reg cells.
    J Exp Med. 2006 Jul 10;203(7):1701-11 PMID: 16818678
  43. Paradigm shifts in cancer vaccine therapy.
    Exp Biol Med (Maywood). 2008 May;233(5):522-34 PMID: 18375829
  44. Monocyte-derived IL-10 expression predicts prognosis of stage IV melanoma patients.
    J Immunother. 2007 Nov-Dec;30(8):831-8 PMID: 18049335
  45. Myeloid suppressor cells in cancer: recruitment, phenotype, properties, and mechanisms of immune suppression.
    Semin Cancer Biol. 2006 Feb;16(1):53-65 PMID: 16168663
  46. A new population of myeloid-derived suppressor cells in hepatocellular carcinoma patients induces CD4(+)CD25(+)Foxp3(+) T cells.
    Gastroenterology. 2008 Jul;135(1):234-43 PMID: 18485901
  47. Reduction in HLA-DR, HLA-DQ and HLA-DP expression by Leu-M3+ cells from the peripheral blood of patients with thermal injury.
    Clin Exp Immunol. 1989 Mar;75(3):371-5 PMID: 2495202
  48. Exploiting regulatory T-cell populations for the immunotherapy of cancer.
    J Immunother. 2007 Sep;30(6):591-5 PMID: 17667522
  49. Suppressor cells in immunodepressed bladder and prostate cancer patients.
    J Urol. 1980 May;123(5):635-9 PMID: 6448304
Article Info
Journal
The Prostate
Abbr.
Prostate
ISSN
1097-0045
Published
2010-03-01
Pages
443-55
Language
English
Region
United States
NLM ID
8101368
PMCID
PMC2935631
Subset
IM
Grants
NCI NIH HHS · P50 CA091956 · United States
NCI NIH HHS · P50 CA091956-080010 · United States
NCI NIH HHS · P50CA91956 · United States
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