Literature DB >> 24550295

Polyclonal type II natural killer T cells require PLZF and SAP for their development and contribute to CpG-mediated antitumor response.

Jie Zhao1, Xiufang Weng, Sreya Bagchi, Chyung-Ru Wang.   

Abstract

CD1d-restricted natural killer T (NKT) cells are innate-like T cells with potent immunomodulatory function via rapid production of both Th1 and Th2 cytokines. NKT cells comprise well-characterized type I NKT cells, which can be detected by α-galactosylceramide-loaded CD1d tetramers, and less-studied type II NKT cells, which do not recognize α-galactosylceramide. Here we characterized type II NKT cells on a polyclonal level by using a Jα18-deficient IL-4 reporter mouse model. This model allows us to track type II NTK cells by the GFP(+)TCRβ(+) phenotype in the thymus and liver. We found type II NKT cells, like type I NKT cells, exhibit an activated phenotype and are dependent on the transcriptional regulator promyelocytic leukemia zinc finger (PLZF) and the adaptor molecule signaling lymphocyte activation molecule-associated protein (SAP) for their development. Type II NKT cells are potently activated by β-D-glucopyranosylceramide (β-GlcCer) but not sulfatide or phospholipids in a CD1d-dependent manner, with the stimulatory capacity of β-GlcCer influenced by acyl chain length. Compared with type I NKT cells, type II NKT cells produce lower levels of IFN-γ but comparable amounts of IL-13 in response to polyclonal T-cell receptor stimulation, suggesting they may play different roles in regulating immune responses. Furthermore, type II NKT cells can be activated by CpG oligodeoxynucletides to produce IFN-γ, but not IL-4 or IL-13. Importantly, CpG-activated type II NKT cells contribute to the antitumor effect of CpG in the B16 melanoma model. Taken together, our data reveal the characteristics of polyclonal type II NKT cells and their potential role in antitumor immunotherapy.

Entities:  

Keywords:  T-cell development; tumor immunity

Mesh:

Substances:

Year:  2014        PMID: 24550295      PMCID: PMC3932886          DOI: 10.1073/pnas.1323845111

Source DB:  PubMed          Journal:  Proc Natl Acad Sci U S A        ISSN: 0027-8424            Impact factor:   11.205


  54 in total

1.  Activation of plasmacytoid dendritic cells with TLR9 agonists initiates invariant NKT cell-mediated cross-talk with myeloid dendritic cells.

Authors:  Carlos J Montoya; Hyun-Bae Jie; Lena Al-Harthi; Candice Mulder; Pablo J Patiño; María T Rugeles; Arthur M Krieg; Alan L Landay; S Brian Wilson
Journal:  J Immunol       Date:  2006-07-15       Impact factor: 5.422

2.  Regulation of NKT cell development by SAP, the protein defective in XLP.

Authors:  Kim E Nichols; Jamie Hom; Shun-You Gong; Arupa Ganguly; Cindy S Ma; Jennifer L Cannons; Stuart G Tangye; Pamela L Schwartzberg; Gary A Koretzky; Paul L Stein
Journal:  Nat Med       Date:  2005-02-13       Impact factor: 53.440

3.  CD1d-restricted and TCR-mediated activation of valpha14 NKT cells by glycosylceramides.

Authors:  T Kawano; J Cui; Y Koezuka; I Toura; Y Kaneko; K Motoki; H Ueno; R Nakagawa; H Sato; E Kondo; H Koseki; M Taniguchi
Journal:  Science       Date:  1997-11-28       Impact factor: 47.728

4.  Unmasking immunosurveillance against a syngeneic colon cancer by elimination of CD4+ NKT regulatory cells and IL-13.

Authors:  Jong Myun Park; Masaki Terabe; Leon T van den Broeke; Debra D Donaldson; Jay A Berzofsky
Journal:  Int J Cancer       Date:  2005-03-10       Impact factor: 7.396

5.  SAP regulates T(H)2 differentiation and PKC-theta-mediated activation of NF-kappaB1.

Authors:  Jennifer L Cannons; Li J Yu; Brenna Hill; Lilia A Mijares; Derek Dombroski; Kim E Nichols; Anthony Antonellis; Gary A Koretzky; Kevin Gardner; Pamela L Schwartzberg
Journal:  Immunity       Date:  2004-11       Impact factor: 31.745

6.  Tissue distribution, regulation and intracellular localization of murine CD1 molecules.

Authors:  M Mandal; X R Chen; M L Alegre; N M Chiu; Y H Chen; A R Castaño; C R Wang
Journal:  Mol Immunol       Date:  1998-06       Impact factor: 4.407

7.  Natural killer T-cell autoreactivity leads to a specialized activation state.

Authors:  Xiaohua Wang; Xiuxu Chen; Lance Rodenkirch; William Simonson; Sarah Wernimont; Rachel M Ndonye; Natacha Veerapen; Darren Gibson; Amy R Howell; Gurdyal S Besra; Gavin F Painter; Anna Huttenlocher; Jenny E Gumperz
Journal:  Blood       Date:  2008-09-08       Impact factor: 22.113

8.  T cell receptor genes in a series of class I major histocompatibility complex-restricted cytotoxic T lymphocyte clones specific for a Plasmodium berghei nonapeptide: implications for T cell allelic exclusion and antigen-specific repertoire.

Authors:  J L Casanova; P Romero; C Widmann; P Kourilsky; J L Maryanski
Journal:  J Exp Med       Date:  1991-12-01       Impact factor: 14.307

9.  Defective NKT cell development in mice and humans lacking the adapter SAP, the X-linked lymphoproliferative syndrome gene product.

Authors:  Benoit Pasquier; Luo Yin; Marie-Claude Fondanèche; Francis Relouzat; Coralie Bloch-Queyrat; Nathalie Lambert; Alain Fischer; Geneviève de Saint-Basile; Sylvain Latour
Journal:  J Exp Med       Date:  2005-02-28       Impact factor: 14.307

10.  Distinct subsets of CD1d-restricted T cells recognize self-antigens loaded in different cellular compartments.

Authors:  Y H Chiu; J Jayawardena; A Weiss; D Lee; S H Park; A Dautry-Varsat; A Bendelac
Journal:  J Exp Med       Date:  1999-01-04       Impact factor: 14.307

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  42 in total

1.  Recognition of lysophosphatidylcholine by type II NKT cells and protection from an inflammatory liver disease.

Authors:  Igor Maricic; Enrico Girardi; Dirk M Zajonc; Vipin Kumar
Journal:  J Immunol       Date:  2014-09-26       Impact factor: 5.422

Review 2.  Thymic development of unconventional T cells: how NKT cells, MAIT cells and γδ T cells emerge.

Authors:  Daniel G Pellicci; Hui-Fern Koay; Stuart P Berzins
Journal:  Nat Rev Immunol       Date:  2020-06-24       Impact factor: 53.106

Review 3.  Natural killer T cells in multiple sclerosis and its animal model, experimental autoimmune encephalomyelitis.

Authors:  Luc Van Kaer; Lan Wu; Vrajesh V Parekh
Journal:  Immunology       Date:  2015-06-22       Impact factor: 7.397

Review 4.  Type II NKT cells: a distinct CD1d-restricted immune regulatory NKT cell subset.

Authors:  Suryasarathi Dasgupta; Vipin Kumar
Journal:  Immunogenetics       Date:  2016-07-12       Impact factor: 2.846

Review 5.  Evolution of nonclassical MHC-dependent invariant T cells.

Authors:  Eva-Stina Edholm; Leon Grayfer; Jacques Robert
Journal:  Cell Mol Life Sci       Date:  2014-08-14       Impact factor: 9.261

6.  The Lysine Acetyltransferase GCN5 Is Required for iNKT Cell Development through EGR2 Acetylation.

Authors:  Yajun Wang; Chawon Yun; Beixue Gao; Yuanming Xu; Yana Zhang; Yiming Wang; Qingfei Kong; Fang Zhao; Chyung-Ru Wang; Sharon Y R Dent; Jian Wang; Xiangping Xu; Hua-Bin Li; Deyu Fang
Journal:  Cell Rep       Date:  2017-07-18       Impact factor: 9.423

7.  CD1b-autoreactive T cells recognize phospholipid antigens and contribute to antitumor immunity against a CD1b+ T cell lymphoma.

Authors:  Sreya Bagchi; Sha Li; Chyung-Ru Wang
Journal:  Oncoimmunology       Date:  2016-07-22       Impact factor: 8.110

8.  Type II NKT-TFH cells against Gaucher lipids regulate B-cell immunity and inflammation.

Authors:  Shiny Nair; Chandra Sekhar Boddupalli; Rakesh Verma; Jun Liu; Ruhua Yang; Gregory M Pastores; Pramod K Mistry; Madhav V Dhodapkar
Journal:  Blood       Date:  2014-12-11       Impact factor: 22.113

Review 9.  Mechanisms and Consequences of Antigen Presentation by CD1.

Authors:  Luc Van Kaer; Lan Wu; Sebastian Joyce
Journal:  Trends Immunol       Date:  2016-09-09       Impact factor: 16.687

Review 10.  Donor-unrestricted T cells in the human CD1 system.

Authors:  Shouxiong Huang; D Branch Moody
Journal:  Immunogenetics       Date:  2016-08-09       Impact factor: 2.846

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