Surface receptors identify mouse NK1.1+ T cell subsets distinguished by function and T cell receptor type

被引:38
作者
Stenström, M
Sköld, M
Ericcson, A
Beaudoin, L
Sidobre, S
Kronenberg, M
Lehuen, A
Cardell, S
机构
[1] Lund Univ, Immunol Sect, S-22184 Lund, Sweden
[2] Hop St Vincent de Paul, INSERM, U561, F-75674 Paris, France
[3] La Jolla Inst Allergy & Immunol, San Diego, CA USA
关键词
NKT cells; CD1d; cytokines; subsets; TCR;
D O I
10.1002/eji.200323963
中图分类号
R392 [医学免疫学]; Q939.91 [免疫学];
学科分类号
100102 ;
摘要
Natural killer T (NKT) lymphocytes rapidly produce several cytokines, including IL-4 and IFN-gamma, upon activation, and act as regulatory cells at an early interphase of innate and adaptive immune responses. They have been implicated as important elements in diverse immune responses including the regulation of autoimmune disease, the immune response to infections, and the prevention of tumor metastasis. The broad spectrum of their activities suggested that functionally different subsets of NKT cells may exist. We demonstrate two functionally distinct splenic NKT populations identified by the expression of CD49b and CD69, respectively. Each NKT subset was represented by the amplified transgenic NKT cell population in a distinct transgenic mouse line expressing a CD1d-restricted TCR. CD49b(high) CD69(-) NKT cells, termed NKT1 cells by us, were high producers of IFN-gamma after stimulation, but essentially devoid of IL-4-synthesizing cells. Most NKT1 cells used diverse (non-Valpha14-canonical) TCR. The CD69(+) CD49(-/low) NKT cell population, which we term NKT2, produced large quantities of IL-4 and substantial amounts of IFN-gamma upon activation and were dominated by cells using the canonical Valpha14-Jalpha18 T cell receptor. Knowledge of the unique roles of the different NKT cell subsets in specific situations will be essential for our understanding of NKT cell biology.
引用
收藏
页码:56 / 65
页数:10
相关论文
共 46 条
[11]   Requirement for V(alpha)14 NKT cells in IL-12-mediated rejection of tumors [J].
Cui, JQ ;
Shin, T ;
Kawano, T ;
Sato, H ;
Kondo, E ;
Toura, I ;
Kaneko, Y ;
Koseki, H ;
Kanno, M ;
Taniguchi, M .
SCIENCE, 1997, 278 (5343) :1623-1626
[12]   A role for CD4(+)NK1.1(+)T T lymphocytes as major histocompatibility complex class II independent helper cells in the generation of CD8(+) effector function against intracellular infection [J].
Denkers, EY ;
SchartonKersten, T ;
Barbieri, S ;
Caspar, P ;
Sher, A .
JOURNAL OF EXPERIMENTAL MEDICINE, 1996, 184 (01) :131-139
[13]  
Eberl G, 1999, J IMMUNOL, V162, P6410
[14]   Cutting edge: Compartmentalization of Th1-like noninvariant CD1d-reactive T cells in hepatitis C virus-infected liver [J].
Exley, MA ;
He, Q ;
Cheng, O ;
Wang, RJ ;
Cheney, CP ;
Balk, SP ;
Koziel, MJ .
JOURNAL OF IMMUNOLOGY, 2002, 168 (04) :1519-1523
[15]   Cutting edge: A major fraction of human bone marrow lymphocytes are Th2-like CD1d-reactive T cells that can suppress mixed lymphocyte responses [J].
Exley, MA ;
Tahir, SMA ;
Cheng, O ;
Shaulov, A ;
Joyce, R ;
Avigan, D ;
Sackstein, R ;
Balk, SP .
JOURNAL OF IMMUNOLOGY, 2001, 167 (10) :5531-5534
[16]  
Flesch IEA, 1997, J IMMUNOL, V159, P7
[17]   Regulation of experimental autoimmune encephalomyelitis in the C57BL/6J mouse by NK1.1+, DX5+, αβ+ T cells [J].
Fritz, RB ;
Zhao, ML .
JOURNAL OF IMMUNOLOGY, 2001, 166 (06) :4209-4215
[18]   Early quantitative and functional deficiency of NK1(+)-like thymocytes in the NOD mouse [J].
Gombert, JM ;
Herbelin, A ;
TancredeBohin, E ;
Dy, M ;
Carnaud, C ;
Bach, JF .
EUROPEAN JOURNAL OF IMMUNOLOGY, 1996, 26 (12) :2989-2998
[19]   Damage control, rather than unresponsiveness, effected by protective DX5+T cells in autoimmune diabetes [J].
Gonzalez, A ;
Andre-Schmutz, I ;
Carnaud, C ;
Mathis, D ;
Benoist, C .
NATURE IMMUNOLOGY, 2001, 2 (12) :1117-1125
[20]   Functionally distinct subsets of CD1d-restricted natural killer T cells revealed by CD1d tetramer staining [J].
Gumperz, JE ;
Miyake, S ;
Yamamura, T ;
Brenner, MB .
JOURNAL OF EXPERIMENTAL MEDICINE, 2002, 195 (05) :625-636