Home LiteratureArticle Details
PMID: 25680272 Published · ppublish English Journal Article Research Support, N.I.H., Extramural Research Support, Non-U.S. Gov't

The transcription factor NFAT promotes exhaustion of activated CD8⁺ T cells.

Immunity ·Vol. 42 ·No. 2 ·2015-02-17 ·Pages 265-278

Martinez GJ, Pereira RM, Äijö T, Kim EY, Marangoni F, Pipkin ME, Togher S, Heissmeyer V, Zhang YC, Crotty S, Lamperti ED, Ansel KM, Mempel TR, Lähdesmäki H, Hogan PG, Rao A

Abstract

During persistent antigen stimulation, CD8(+) T cells show a gradual decrease in effector function, referred to as exhaustion, which impairs responses in the setting of tumors and infections. Here we demonstrate that the transcription factor NFAT controls the program of T cell exhaustion. When expressed in cells, an engineered form of NFAT1 unable to interact with AP-1 transcription factors diminished T cell receptor (TCR) signaling, increased the expression of inhibitory cell surface receptors, and interfered with the ability of CD8(+) T cells to protect against Listeria infection and attenuate tumor growth in vivo. We defined the genomic regions occupied by endogenous and engineered NFAT1 in primary CD8(+) T cells and showed that genes directly induced by the engineered NFAT1 overlapped with genes expressed in exhausted CD8(+) T cells in vivo. Our data show that NFAT promotes T cell anergy and exhaustion by binding at sites that do not require cooperation with AP-1.

MeSH Terms
Animals CD8-Positive T-Lymphocytes/immunology Cells, Cultured Clonal Anergy/drug effects,genetics Gene Expression Regulation/genetics Listeria monocytogenes/immunology Listeriosis/immunology,microbiology Lymphocyte Activation/immunology Mice Mice, Transgenic NFATC Transcription Factors/genetics,physiology Neoplasms/immunology Promoter Regions, Genetic/genetics Receptors, Antigen, T-Cell/immunology Recombinant Proteins/genetics,pharmacology Transcription Factor AP-1/metabolism
Chemicals
NFATC Transcription Factors Nfatc2 protein, mouse Receptors, Antigen, T-Cell Recombinant Proteins Transcription Factor AP-1
Authors & Affiliations
16 authors, click to expand affiliations / ORCID
Martinez Gustavo J
Department of Signaling and Gene Expression, La Jolla Institute for Allergy and Immunology, La Jolla, CA 92037, USA.
Pereira Renata M
Department of Signaling and Gene Expression, La Jolla Institute for Allergy and Immunology, La Jolla, CA 92037, USA.
Äijö Tarmo
Department of Signaling and Gene Expression, La Jolla Institute for Allergy and Immunology, La Jolla, CA 92037, USA; Department of Information and Computer Science, Aalto University School of Science, Aalto 00076, Finland.
Kim Edward Y
Division of Rheumatology, Allergy, and Immunology, Center for Immunology and Inflammatory Diseases, Massachusetts General Hospital, Harvard Medical School, Boston, MA 02114, USA.
Marangoni Francesco
Division of Rheumatology, Allergy, and Immunology, Center for Immunology and Inflammatory Diseases, Massachusetts General Hospital, Harvard Medical School, Boston, MA 02114, USA.
Pipkin Matthew E
Department of Signaling and Gene Expression, La Jolla Institute for Allergy and Immunology, La Jolla, CA 92037, USA; Department of Cancer Biology, The Scripps Research Institute, Jupiter, FL 33458, USA.
Togher Susan
Department of Signaling and Gene Expression, La Jolla Institute for Allergy and Immunology, La Jolla, CA 92037, USA.
Heissmeyer Vigo
Institute of Molecular Immunology, Helmholtz Zentrum München, Marchioninistrasse 25, 81377 Munich, Germany; Ludwig-Maximilians-Universität München, Institute for Immunology, Goethestrasse 31, 80336 Munich, Germany.
Zhang Yi Chen
Department of Radiology, St Lukes Roosevelt Hospital Center, New York, NY 10019, USA.
Crotty Shane
Department of Vaccine Discovery, La Jolla Institute for Allergy and Immunology, La Jolla, CA 92037, USA.
Lamperti Edward D
Immune Disease Institute, Harvard Medical School and Program in Cellular and Molecular Medicine, Children's Hospital Boston, Boston, MA 02115, USA.
Ansel K Mark
Department of Microbiology and Immunology, Sandler Asthma Basic Research Center, University of California, San Francisco, San Francisco, CA 94143, USA.
Mempel Thorsten R
Division of Rheumatology, Allergy, and Immunology, Center for Immunology and Inflammatory Diseases, Massachusetts General Hospital, Harvard Medical School, Boston, MA 02114, USA.
Lähdesmäki Harri
Department of Information and Computer Science, Aalto University School of Science, Aalto 00076, Finland. Electronic address: harri.lahdesmaki@aalto.fi.
Hogan Patrick G
Department of Signaling and Gene Expression, La Jolla Institute for Allergy and Immunology, La Jolla, CA 92037, USA.
Rao Anjana
Department of Signaling and Gene Expression, La Jolla Institute for Allergy and Immunology, La Jolla, CA 92037, USA. Electronic address: arao@liai.org.
References (49)
49 references, click to expand
  1. TopHat: discovering splice junctions with RNA-Seq.
    Bioinformatics. 2009 May 1;25(9):1105-11 PMID: 19289445
  2. Impaired NFAT nuclear translocation results in split exhaustion of virus-specific CD8+ T cell functions during chronic viral infection.
    Proc Natl Acad Sci U S A. 2007 Mar 13;104(11):4565-70 PMID: 17360564
  3. Tolerance and exhaustion: defining mechanisms of T cell dysfunction.
    Trends Immunol. 2014 Feb;35(2):51-60 PMID: 24210163
  4. Molecular mechanisms of CD4+ T-cell anergy.
    Nat Rev Immunol. 2007 Aug;7(8):599-609 PMID: 17612584
  5. Reciprocal NFAT1 and NFAT2 nuclear localization in CD8+ anergic T cells is regulated by suboptimal calcium signaling.
    J Immunol. 2007 Sep 15;179(6):3734-41 PMID: 17785810
  6. Molecular signature of CD8+ T cell exhaustion during chronic viral infection.
    Immunity. 2007 Oct;27(4):670-84 PMID: 17950003
  7. Dual functions for the endoplasmic reticulum calcium sensors STIM1 and STIM2 in T cell activation and tolerance.
    Nat Immunol. 2008 Apr;9(4):432-43 PMID: 18327260
  8. NFATc1 regulates PD-1 expression upon T cell activation.
    J Immunol. 2008 Oct 1;181(7):4832-9 PMID: 18802087
  9. Coregulation of CD8+ T cell exhaustion by multiple inhibitory receptors during chronic viral infection.
    Nat Immunol. 2009 Jan;10(1):29-37 PMID: 19043418
  10. Transcriptional complexes formed by NFAT dimers regulate the induction of T cell tolerance.
    J Exp Med. 2009 Apr 13;206(4):867-76 PMID: 19307325
  11. Gene expression elicited by NFAT in the presence or absence of cooperative recruitment of Fos and Jun.
    EMBO J. 2000 Sep 1;19(17):4783-95 PMID: 10970869
  12. Concerted dephosphorylation of the transcription factor NFAT1 induces a conformational switch that regulates transcriptional activity.
    Mol Cell. 2000 Sep;6(3):539-50 PMID: 11030334
  13. Structure of a TonEBP-DNA complex reveals DNA encircled by a transcription factor.
    Nat Struct Biol. 2002 Feb;9(2):90-4 PMID: 11780147
  14. NFAT signaling: choreographing the social lives of cells.
    Cell. 2002 Apr;109 Suppl:S67-79 PMID: 11983154
  15. Transcriptional mechanisms underlying lymphocyte tolerance.
    Cell. 2002 Jun 14;109(6):719-31 PMID: 12086671
  16. Autoregulation of NFATc1/A expression facilitates effector T cells to escape from rapid apoptosis.
    Immunity. 2002 Jun;16(6):881-95 PMID: 12121669
  17. The transcription factor NFAT exhibits signal memory during serial T cell interactions with antigen-presenting cells.
    Immunity. 2013 Feb 21;38(2):237-49 PMID: 23313588
  18. Diacylglycerol kinases: regulated controllers of T cell activation, function, and development.
    Int J Mol Sci. 2013;14(4):6649-73 PMID: 23531532
  19. Dynamic Treg interactions with intratumoral APCs promote local CTL dysfunction.
    J Clin Invest. 2014 Jun;124(6):2425-40 PMID: 24812664
  20. Ultrafast and memory-efficient alignment of short DNA sequences to the human genome.
    Genome Biol. 2009;10(3):R25 PMID: 19261174
  21. CD4+CD25-LAG3+ regulatory T cells controlled by the transcription factor Egr-2.
    Proc Natl Acad Sci U S A. 2009 Aug 18;106(33):13974-9 PMID: 19666526
  22. Mechanisms maintaining peripheral tolerance.
    Nat Immunol. 2010 Jan;11(1):21-7 PMID: 20016506
  23. A CD8 T cell-intrinsic role for the calcineurin-NFAT pathway for tolerance induction in vivo.
    Blood. 2010 Feb 11;115(6):1280-7 PMID: 20007805
  24. Interleukin-2 and inflammation induce distinct transcriptional programs that promote the differentiation of effector cytolytic T cells.
    Immunity. 2010 Jan 29;32(1):79-90 PMID: 20096607
  25. T-bet, a Th1 transcription factor regulates the expression of Tim-3.
    Eur J Immunol. 2010 Mar;40(3):859-66 PMID: 20049876
  26. Cooperation of Tim-3 and PD-1 in CD8 T-cell exhaustion during chronic viral infection.
    Proc Natl Acad Sci U S A. 2010 Aug 17;107(33):14733-8 PMID: 20679213
  27. Targeting Tim-3 and PD-1 pathways to reverse T cell exhaustion and restore anti-tumor immunity.
    J Exp Med. 2010 Sep 27;207(10):2187-94 PMID: 20819927
  28. IFN-α directly promotes programmed cell death-1 transcription and limits the duration of T cell-mediated immunity.
    J Immunol. 2011 Mar 1;186(5):2772-9 PMID: 21263073
  29. Molecular mechanisms of T-cell tolerance.
    Immunol Rev. 2011 May;241(1):133-44 PMID: 21488895
  30. Structure of a domain-swapped FOXP3 dimer on DNA and its function in regulatory T cells.
    Immunity. 2011 Apr 22;34(4):479-91 PMID: 21458306
  31. T cell exhaustion.
    Nat Immunol. 2011 Jun;12(6):492-9 PMID: 21739672
  32. Activation of mitogen activated protein kinase-Erk kinase (MEK) increases T cell immunoglobulin mucin domain-3 (TIM-3) transcription in human T lymphocytes and a human mast cell line.
    Mol Immunol. 2011 Sep;48(15-16):1778-83 PMID: 21621846
  33. Network analysis reveals centrally connected genes and pathways involved in CD8+ T cell exhaustion versus memory.
    Immunity. 2012 Dec 14;37(6):1130-44 PMID: 23159438
  34. Notch signaling regulates PD-1 expression during CD8(+) T-cell activation.
    Immunol Cell Biol. 2013 Jan;91(1):82-8 PMID: 23070399
  35. Cutting edge: T lymphocyte activation by repeated immunological synapse formation and intermittent signaling.
    J Immunol. 2003 Aug 1;171(3):1128-32 PMID: 12874197
  36. Transcriptional regulation by calcium, calcineurin, and NFAT.
    Genes Dev. 2003 Sep 15;17(18):2205-32 PMID: 12975316
  37. Structure of NFAT1 bound as a dimer to the HIV-1 LTR kappa B element.
    Nat Struct Biol. 2003 Oct;10(10):800-6 PMID: 12949493
  38. Selective expression of the interleukin 7 receptor identifies effector CD8 T cells that give rise to long-lived memory cells.
    Nat Immunol. 2003 Dec;4(12):1191-8 PMID: 14625547
  39. Calcineurin imposes T cell unresponsiveness through targeted proteolysis of signaling proteins.
    Nat Immunol. 2004 Mar;5(3):255-65 PMID: 14973438
  40. Analysis of the AP-1 sites in the IL-2 promoter.
    J Immunol. 1992 Feb 15;148(4):1240-50 PMID: 1737937
  41. The T-cell transcription factor NFATp is a substrate for calcineurin and interacts with Fos and Jun.
    Nature. 1993 Sep 23;365(6444):352-5 PMID: 8397339
  42. A similar DNA-binding motif in NFAT family proteins and the Rel homology region.
    J Biol Chem. 1995 Feb 24;270(8):4138-45 PMID: 7876165
  43. An enhanced immune response in mice lacking the transcription factor NFAT1.
    Science. 1996 May 10;272(5263):892-5 PMID: 8629027
  44. Differential activation of transcription factors induced by Ca2+ response amplitude and duration.
    Nature. 1997 Apr 24;386(6627):855-8 PMID: 9126747
  45. Transcription factors of the NFAT family: regulation and function.
    Annu Rev Immunol. 1997;15:707-47 PMID: 9143705
  46. Structure of the DNA-binding domains from NFAT, Fos and Jun bound specifically to DNA.
    Nature. 1998 Mar 5;392(6671):42-8 PMID: 9510247
  47. NFAT proteins: key regulators of T-cell development and function.
    Nat Rev Immunol. 2005 Jun;5(6):472-84 PMID: 15928679
  48. Restoring function in exhausted CD8 T cells during chronic viral infection.
    Nature. 2006 Feb 9;439(7077):682-7 PMID: 16382236
  49. FOXP3 controls regulatory T cell function through cooperation with NFAT.
    Cell. 2006 Jul 28;126(2):375-87 PMID: 16873067
Article Info
Journal
Immunity
Abbr.
Immunity
ISSN
1097-4180
Published
2015-02-17
Epub
2015-00-10
Pages
265-278
Language
English
Region
United States
NLM ID
9432918
PMCID
PMC4346317
Subset
IM
Grants
NIAID NIH HHS · U19 AI109976 · United States
NCI NIH HHS · R01CA150975 · United States
NIAID NIH HHS · R01 AI109842 · United States
NCI NIH HHS · U19 CA179563 · United States
NIAID NIH HHS · R01 AI072543 · United States
NCI NIH HHS · R01CA42471 · United States
NIAID NIH HHS · R01 AI040127 · United States
NCRR NIH HHS · S10 RR027366 · United States
NIDDK NIH HHS · P30 DK043351 · United States
NIAID NIH HHS · AI84167 · United States
NCI NIH HHS · R01 CA042471 · United States
NCI NIH HHS · R01 CA150975 · United States
NIAID NIH HHS · R01 AI084167 · United States
NIAID NIH HHS · R01 AI095634 · United States
NIAID NIH HHS · R01 AI40127 · United States
Databases
GEO
Corrections
CommentIn
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: product@genelibs.com