Literature DB >> 23712790

FOXP3-positive regulatory T lymphocytes and epithelial FOXP3 expression in synchronous normal, ductal carcinoma in situ, and invasive cancer of the breast.

Aseem Lal1, Loretta Chan, Sandy Devries, Koei Chin, Gary K Scott, Christopher C Benz, Yunn-Yi Chen, Frederic M Waldman, E Shelley Hwang.   

Abstract

FOXP3-expressing T regulatory lymphocytes (Tregs) have been described as putative mediators of immune tolerance, and thus facilitators of tumor growth. When found in association with various malignancies, Tregs are generally markers of poor clinical outcome. However, it is unknown whether they are also associated with cancer progression. We evaluated quantitative FOXP3 expression in lymphocytes as well as in epithelial cells in a set of thirty-two breast tumors with synchronous normal epithelium, ductal carcinoma in situ (DCIS), and invasive ductal carcinoma (IDC) components. Tumors were stained for FOXP3 and CD3 expression and Tregs quantified by determining the ratio of colocalized FOXP3 and CD3 relative to 1) total CD3-expressing lymphocytes and 2) to FOXP3-expressing epithelial cells. The median proportion of FOXP3-expressing CD3 cells significantly increased with malignant progression from normal to DCIS to IDC components (0.005, 0.019 and 0.030, respectively; p ≤ 0.0001 for normal vs. IDC and p = 0.004 for DCIS vs. IDC). The median intensity of epithelial FOXP3 expression was also increased with invasive progression and most markedly augmented between normal and DCIS components (0.130 vs. 0.175, p ≤ 0.0001). Both Treg infiltration and epithelial FOXP3 expression were higher in grade 3 vs. grade 1 tumors (p = 0.014 for Tregs, p = 0.038 for epithelial FOXP3), but did not vary significantly with hormone receptor status, size of invasive tumor, lymph node status, or disease stage. Notably, Treg infiltration significantly correlated with epithelial up-regulation of FOXP3 expression (p = 0.013 for normal, p = 0.001 for IDC). These findings implicate both Treg infiltration and up-regulated epithelial FOXP3 expression in breast cancer progression.

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Year:  2013        PMID: 23712790     DOI: 10.1007/s10549-013-2556-4

Source DB:  PubMed          Journal:  Breast Cancer Res Treat        ISSN: 0167-6806            Impact factor:   4.872


  23 in total

Review 1.  Assessing Tumor-infiltrating Lymphocytes in Solid Tumors: A Practical Review for Pathologists and Proposal for a Standardized Method From the International Immunooncology Biomarkers Working Group: Part 1: Assessing the Host Immune Response, TILs in Invasive Breast Carcinoma and Ductal Carcinoma In Situ, Metastatic Tumor Deposits and Areas for Further Research.

Authors:  Shona Hendry; Roberto Salgado; Thomas Gevaert; Prudence A Russell; Tom John; Bibhusal Thapa; Michael Christie; Koen van de Vijver; M V Estrada; Paula I Gonzalez-Ericsson; Melinda Sanders; Benjamin Solomon; Cinzia Solinas; Gert G G M Van den Eynden; Yves Allory; Matthias Preusser; Johannes Hainfellner; Giancarlo Pruneri; Andrea Vingiani; Sandra Demaria; Fraser Symmans; Paolo Nuciforo; Laura Comerma; E A Thompson; Sunil Lakhani; Seong-Rim Kim; Stuart Schnitt; Cecile Colpaert; Christos Sotiriou; Stefan J Scherer; Michail Ignatiadis; Sunil Badve; Robert H Pierce; Giuseppe Viale; Nicolas Sirtaine; Frederique Penault-Llorca; Tomohagu Sugie; Susan Fineberg; Soonmyung Paik; Ashok Srinivasan; Andrea Richardson; Yihong Wang; Ewa Chmielik; Jane Brock; Douglas B Johnson; Justin Balko; Stephan Wienert; Veerle Bossuyt; Stefan Michiels; Nils Ternes; Nicole Burchardi; Stephen J Luen; Peter Savas; Frederick Klauschen; Peter H Watson; Brad H Nelson; Carmen Criscitiello; Sandra O'Toole; Denis Larsimont; Roland de Wind; Giuseppe Curigliano; Fabrice André; Magali Lacroix-Triki; Mark van de Vijver; Federico Rojo; Giuseppe Floris; Shahinaz Bedri; Joseph Sparano; David Rimm; Torsten Nielsen; Zuzana Kos; Stephen Hewitt; Baljit Singh; Gelareh Farshid; Sibylle Loibl; Kimberly H Allison; Nadine Tung; Sylvia Adams; Karen Willard-Gallo; Hugo M Horlings; Leena Gandhi; Andre Moreira; Fred Hirsch; Maria V Dieci; Maria Urbanowicz; Iva Brcic; Konstanty Korski; Fabien Gaire; Hartmut Koeppen; Amy Lo; Jennifer Giltnane; Marlon C Rebelatto; Keith E Steele; Jiping Zha; Kenneth Emancipator; Jonathan W Juco; Carsten Denkert; Jorge Reis-Filho; Sherene Loi; Stephen B Fox
Journal:  Adv Anat Pathol       Date:  2017-09       Impact factor: 3.875

2.  Immune Escape in Breast Cancer During In Situ to Invasive Carcinoma Transition.

Authors:  Carlos R Gil Del Alcazar; Sung Jin Huh; Muhammad B Ekram; Anne Trinh; Lin L Liu; Francisco Beca; Xiaoyuan Zi; Minsuk Kwak; Helga Bergholtz; Ying Su; Lina Ding; Hege G Russnes; Andrea L Richardson; Kirsten Babski; Elizabeth Min Hui Kim; Charles H McDonnell; Jon Wagner; Ron Rowberry; Gordon J Freeman; Deborah Dillon; Therese Sorlie; Lisa M Coussens; Judy E Garber; Rong Fan; Kristie Bobolis; D Craig Allred; Joon Jeong; So Yeon Park; Franziska Michor; Kornelia Polyak
Journal:  Cancer Discov       Date:  2017-06-26       Impact factor: 39.397

3.  Maraviroc decreases CCL8-mediated migration of CCR5(+) regulatory T cells and reduces metastatic tumor growth in the lungs.

Authors:  E C Halvorsen; M J Hamilton; A Young; B J Wadsworth; N E LePard; H N Lee; N Firmino; J L Collier; K L Bennewith
Journal:  Oncoimmunology       Date:  2016-03-10       Impact factor: 8.110

4.  CD44 induces FOXP3 expression and is related with favorable outcome in breast carcinoma.

Authors:  Elena Sanmartín; Fernando Ortiz-Martínez; Eloy Pomares-Navarro; Araceli García-Martínez; Montserrat Rodrigo-Baños; Marta García-Escolano; Leire Andrés; Enrique Lerma; Francisco I Aranda; Pascual Martínez-Peinado; José M Sempere-Ortells; Gloria Peiró
Journal:  Virchows Arch       Date:  2016-11-24       Impact factor: 4.064

5.  Sox2 Communicates with Tregs Through CCL1 to Promote the Stemness Property of Breast Cancer Cells.

Authors:  Yingxi Xu; Xiaoli Dong; Pingping Qi; Yujie Ye; Wenzhi Shen; Liang Leng; Lina Wang; Xuefei Li; Xiaohe Luo; Yanan Chen; Peiqing Sun; Rong Xiang; Na Li
Journal:  Stem Cells       Date:  2017-12       Impact factor: 6.277

6.  Characterizing the immune microenvironment in high-risk ductal carcinoma in situ of the breast.

Authors:  Michael J Campbell; Frederick Baehner; Tess O'Meara; Ekene Ojukwu; Booyeon Han; Rita Mukhtar; Vickram Tandon; Max Endicott; Zelos Zhu; Jasmine Wong; Gregor Krings; Alfred Au; Joe W Gray; Laura Esserman
Journal:  Breast Cancer Res Treat       Date:  2016-10-26       Impact factor: 4.872

Review 7.  Treg programming and therapeutic reprogramming in cancer.

Authors:  Mariela A Moreno Ayala; Zehui Li; Michel DuPage
Journal:  Immunology       Date:  2019-04-29       Impact factor: 7.397

8.  Regulation of MHC class I expression by Foxp3 and its effect on regulatory T cell function.

Authors:  Jie Mu; Xuguang Tai; Shankar S Iyer; Jocelyn D Weissman; Alfred Singer; Dinah S Singer
Journal:  J Immunol       Date:  2014-02-12       Impact factor: 5.422

9.  Identification of an immune overdrive high-risk subpopulation with aberrant expression of FOXP3 and CTLA4 in colorectal cancer.

Authors:  Kaisa Cui; Surui Yao; Han Zhang; Mingyue Zhou; Bingxin Liu; Yulin Cao; Bojian Fei; Shenglin Huang; Zhaohui Huang
Journal:  Oncogene       Date:  2021-02-24       Impact factor: 9.867

Review 10.  Immune microenvironment in different molecular subtypes of ductal breast carcinoma.

Authors:  Mona Sadeghalvad; Hamid-Reza Mohammadi-Motlagh; Nima Rezaei
Journal:  Breast Cancer Res Treat       Date:  2020-10-03       Impact factor: 4.872

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