Literature DB >> 20861189

Tumor-reactive CD8+ early effector T cells identified at tumor site in primary and metastatic melanoma.

Andrea Anichini1, Alessandra Molla, Claudia Vegetti, Ilaria Bersani, Roberta Zappasodi, Flavio Arienti, Fernando Ravagnani, Andrea Maurichi, Roberto Patuzzo, Mario Santinami, Hanspeter Pircher, Massimo Di Nicola, Roberta Mortarini.   

Abstract

CD8(+) T cells at the earliest stage of effector generation have not been identified at tumor site of melanoma patients. Such early effectors, if present, should be characterized by a specific phenotype, distinct from that expressed at later stages of the antigen-induced differentiation program, by short-lived effector cells, memory precursors, and terminal effectors. Here, we show that neoplastic tissues from primary and metastatic lesions of melanoma patients contain a subset of CD8(+) T cells expressing FOXP3. CD8(+) FOXP3(+) CD25(+) T lymphocytes were found in tumor-invaded lymph nodes (TILN), s.c. metastases, and advanced primary lesions. Their frequency was significantly higher in TILN compared with tumor-free lymph nodes or with peripheral blood and in primary tumors compared with TILN. CD8(+) FOXP3(+) T cells did not express markers of regulatory [CTLA-4, CCL4, interleukin-10 (IL-10), transforming growth factor-β1], exhausted (PD-1), or senescent (CD57) CD8(+) T lymphocytes. Instead, this subset showed an antigen-experienced "EM1" phenotype (CCR7(-) CD45RA(-) CD28(+) CD27(+)) and exhibited a CD127(-), KLRG1(-), HLA-DR(+), CD38(+), T-bet(+), perforin(+) "early effector" profile predicted by current models. CD8(+) FOXP3(+) T cells produced IFN-γ on short in vitro activation, recognized autologous tumor by CD107a mobilization, and expressed Ki-67 on ex vivo analysis. In response to autologous tumor plus IL-2/IL-15, the CD8(+) FOXP3(+) T cells proliferated promptly and showed competence for differentiation (downregulation of CD27 and upregulation of T-bet). These results suggest development of early phases of antitumor immunity even in advanced melanoma. Moreover, the CD8(+) FOXP3(+) "early effector" subset may be an invaluable tool for monitoring immunity at tumor site. ©2010 AACR.

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Year:  2010        PMID: 20861189     DOI: 10.1158/0008-5472.CAN-10-2028

Source DB:  PubMed          Journal:  Cancer Res        ISSN: 0008-5472            Impact factor:   12.701


  22 in total

1.  Detection and characterization of a novel subset of CD8⁺CD57⁺ T cells in metastatic melanoma with an incompletely differentiated phenotype.

Authors:  Richard C Wu; Shujuan Liu; Jessica A Chacon; Sheng Wu; Yufeng Li; Pariya Sukhumalchandra; James L Murray; Jeffrey J Molldrem; Patrick Hwu; Hanspeter Pircher; Gregory Lizée; Laszlo G Radvanyi
Journal:  Clin Cancer Res       Date:  2012-02-03       Impact factor: 12.531

2.  Infiltrating lymphocytes and human papillomavirus-16--associated oropharyngeal cancer.

Authors:  Derrick Wansom; Emily Light; Dafydd Thomas; Francis Worden; Mark Prince; Susan Urba; Douglas Chepeha; Bhavna Kumar; Kitrina Cordell; Avraham Eisbruch; Jeremy Taylor; Jeffrey Moyer; Carol Bradford; Nisha D'Silva; Thomas Carey; Jonathan McHugh; Gregory Wolf
Journal:  Laryngoscope       Date:  2012-01       Impact factor: 3.325

3.  Terminally differentiated CD8+ T cells and CD57-FOXP3+CD8+ T cells are highly associated with the efficacy of immunotherapy using activated autologous lymphocytes.

Authors:  Junji Akagi; Hideo Baba; Teruaki Sekine; Kenji Ogawa
Journal:  Oncol Lett       Date:  2018-04-17       Impact factor: 2.967

4.  Generation of T cell effectors using tumor cell-loaded dendritic cells for adoptive T cell therapy.

Authors:  Katerina Vavrova; Petra Vrabcova; Dominik Filipp; Jirina Bartunkova; Rudolf Horvath
Journal:  Med Oncol       Date:  2016-11-03       Impact factor: 3.064

5.  Metabolic Competition in the Tumor Microenvironment Is a Driver of Cancer Progression.

Authors:  Chih-Hao Chang; Jing Qiu; David O'Sullivan; Michael D Buck; Takuro Noguchi; Jonathan D Curtis; Qiongyu Chen; Mariel Gindin; Matthew M Gubin; Gerritje J W van der Windt; Elena Tonc; Robert D Schreiber; Edward J Pearce; Erika L Pearce
Journal:  Cell       Date:  2015-08-27       Impact factor: 41.582

6.  Profound impairment of adaptive immune responses by alkylating chemotherapy.

Authors:  Adam J Litterman; David M Zellmer; Karen L Grinnen; Matthew A Hunt; Arkadiusz Z Dudek; Andres M Salazar; John R Ohlfest
Journal:  J Immunol       Date:  2013-05-17       Impact factor: 5.422

Review 7.  Therapy-induced microenvironmental changes in cancer.

Authors:  Yuting Ma; Heng Yang; Jonathan M Pitt; Guido Kroemer; Laurence Zitvogel
Journal:  J Mol Med (Berl)       Date:  2016-03-02       Impact factor: 4.599

8.  Analysis of multispectral imaging with the AstroPath platform informs efficacy of PD-1 blockade.

Authors:  Sneha Berry; Nicolas A Giraldo; Benjamin F Green; Alexander S Szalay; Janis M Taube; Tricia R Cottrell; Julie E Stein; Elizabeth L Engle; Haiying Xu; Aleksandra Ogurtsova; Charles Roberts; Daphne Wang; Peter Nguyen; Qingfeng Zhu; Sigfredo Soto-Diaz; Jose Loyola; Inbal B Sander; Pok Fai Wong; Shlomit Jessel; Joshua Doyle; Danielle Signer; Richard Wilton; Jeffrey S Roskes; Margaret Eminizer; Seyoun Park; Joel C Sunshine; Elizabeth M Jaffee; Alexander Baras; Angelo M De Marzo; Suzanne L Topalian; Harriet Kluger; Leslie Cope; Evan J Lipson; Ludmila Danilova; Robert A Anders; David L Rimm; Drew M Pardoll
Journal:  Science       Date:  2021-06-11       Impact factor: 47.728

9.  TIGIT marks exhausted T cells and serves as a target for immune restoration in patients with chronic HBV infection.

Authors:  Yan-Yan Wei; Jing Fan; Meng-Xuan Shan; Dan-Dan Yin; Li-Li Wang; Wei Ye; Wei Zhao
Journal:  Am J Transl Res       Date:  2022-02-15       Impact factor: 4.060

10.  New insights on the role of CD8(+)CD57(+) T-cells in cancer.

Authors:  Richard C Wu; Patrick Hwu; Laszlo G Radvanyi
Journal:  Oncoimmunology       Date:  2012-09-01       Impact factor: 8.110

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