Literature DB >> 12193750

Prevalence of regulatory T cells is increased in peripheral blood and tumor microenvironment of patients with pancreas or breast adenocarcinoma.

Udaya K Liyanage1, Todd T Moore, Hong-Gu Joo, Yoshiyuki Tanaka, Virginia Herrmann, Gerard Doherty, Jeffrey A Drebin, Steven M Strasberg, Timothy J Eberlein, Peter S Goedegebuure, David C Linehan.   

Abstract

Regulatory T cells (T(reg)) that prevent autoimmune diseases by suppression of self-reactive T cells may also suppress the immune response against cancer. In mice, depletion of T(reg) by Ab therapy leads to more efficient tumor rejection. T(reg)-mediated suppression of antitumor immune responses may partly explain the poor clinical response to vaccine-based immunotherapy for human cancer. In this study, we measured the prevalence of T(reg) that coexpress CD4 and CD25 in the PBLs, tumor-infiltrating lymphocytes, and regional lymph node lymphocytes from 65 patients with either pancreas or breast cancer. In breast cancer patients (n = 35), pancreas cancer patients (n = 30), and normal donors (n = 35), the prevalence of T(reg) were 16.6% (SE 1.22), 13.2% (SE 1.13), and 8.6% (SE 0.71) of the total CD4(+) cells, respectively. The prevalence of T(reg) were significantly higher in breast cancer patients (p < 0.01) and pancreas cancer patients (p < 0.01) when compared with normal donors. In tumor-infiltrating lymphocytes and lymph node lymphocytes, the T(reg) prevalence were 20.2% (SE 3.93) and 20.1% (SE 4.3), respectively. T(reg) constitutively coexpressed CTLA-4 and CD45RO markers, and secreted TGF-beta and IL-10 but did not secrete IFN-gamma. When cocultured with activated CD8(+) cells or CD4(+)25(-) cells, T(reg) potently suppressed their proliferation and secretion of IFN-gamma. We conclude that the prevalence of T(reg) is increased in the peripheral blood as well as in the tumor microenvironment of patients with invasive breast or pancreas cancers. These T(reg) may mitigate the immune response against cancer, and may partly explain the poor immune response against tumor Ags.

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Year:  2002        PMID: 12193750     DOI: 10.4049/jimmunol.169.5.2756

Source DB:  PubMed          Journal:  J Immunol        ISSN: 0022-1767            Impact factor:   5.422


  474 in total

1.  Analysis of circulating regulatory T cells in patients with metastatic prostate cancer pre- versus post-vaccination.

Authors:  Matteo Vergati; Vittore Cereda; Ravi A Madan; James L Gulley; Ngar-Yee Huen; Connie J Rogers; Kenneth W Hance; Philip M Arlen; Jeffrey Schlom; Kwong Y Tsang
Journal:  Cancer Immunol Immunother       Date:  2010-10-26       Impact factor: 6.968

2.  Progressive loss of anti-HER2 CD4+ T-helper type 1 response in breast tumorigenesis and the potential for immune restoration.

Authors:  Jashodeep Datta; Cinthia Rosemblit; Erik Berk; Lori Showalter; Prachi Namjoshi; Rosemarie Mick; Kathreen P Lee; Andrew M Brod; Rachel L Yang; Rachel R Kelz; Elizabeth Fitzpatrick; Clifford Hoyt; Michael D Feldman; Paul J Zhang; Shuwen Xu; Gary K Koski; Brian J Czerniecki
Journal:  Oncoimmunology       Date:  2015-04-01       Impact factor: 8.110

3.  Tumor-infiltrating γδ T lymphocytes predict clinical outcome in human breast cancer.

Authors:  Chunling Ma; Qunyuan Zhang; Jian Ye; Fang Wang; Yanping Zhang; Eric Wevers; Theresa Schwartz; Pamela Hunborg; Mark A Varvares; Daniel F Hoft; Eddy C Hsueh; Guangyong Peng
Journal:  J Immunol       Date:  2012-10-03       Impact factor: 5.422

4.  Melanoma induces immunosuppression by up-regulating FOXP3(+) regulatory T cells.

Authors:  Joel Baumgartner; Cara Wilson; Brent Palmer; Don Richter; Anirban Banerjee; Martin McCarter
Journal:  J Surg Res       Date:  2007-07       Impact factor: 2.192

5.  Transplanted tumor growth and the incidence of T-lymphocyte populations in the spleen of newcastle virus-treated mice.

Authors:  Ana Jurin Martić; Siniša Ivanković; Mariastefania Antica; Nevenka Hiršl; Tomislav Jukić; Mislav Jurin
Journal:  Cancer Biother Radiopharm       Date:  2015-03-12       Impact factor: 3.099

6.  Cancer cell-derived IL-1α induces CCL22 and the recruitment of regulatory T cells.

Authors:  Gabriela Maria Wiedemann; Max Martin Ludwig Knott; Viola Katharina Vetter; Moritz Rapp; Sascha Haubner; Julia Fesseler; Benjamin Kühnemuth; Patrick Layritz; Raffael Thaler; Stephan Kruger; Steffen Ormanns; Doris Mayr; Stefan Endres; David Anz
Journal:  Oncoimmunology       Date:  2016-04-25       Impact factor: 8.110

7.  Assessing the role of IL-35 in colorectal cancer progression and prognosis.

Authors:  Jin-Cheng Zeng; Zhi Zhang; Tian-Yu Li; Yan-Fang Liang; Hong-Mei Wang; Jing-Jing Bao; Jun-Ai Zhang; Wan-Dang Wang; Wen-Yu Xiang; Bin Kong; Zhi-Yong Wang; Bin-Hua Wu; Xiao-Dong Chen; Long He; Shu Zhang; Cong-Yi Wang; Jun-Fa Xu
Journal:  Int J Clin Exp Pathol       Date:  2013-08-15

Review 8.  CD25+ CD4+ regulatory T-cells in cancer.

Authors:  David C Linehan; Peter S Goedegebuure
Journal:  Immunol Res       Date:  2005       Impact factor: 2.829

Review 9.  Tregs and rethinking cancer immunotherapy.

Authors:  Tyler J Curiel
Journal:  J Clin Invest       Date:  2007-05       Impact factor: 14.808

10.  Follicular lymphoma B cells induce the conversion of conventional CD4+ T cells to T-regulatory cells.

Authors:  Weiyun Z Ai; Jing-Zhou Hou; Robert Zeiser; Debra Czerwinski; Robert S Negrin; Ronald Levy
Journal:  Int J Cancer       Date:  2009-01-01       Impact factor: 7.396

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