Role of CCR8 and other chemokine pathways in the migration of monocyte-derived dendritic cells to lymph nodes

被引:233
作者
Qu, CF
Edwards, EW
Tacke, F
Angeli, V
Llodrá, J
Sanchez-Schmitz, G
Garin, A
Haque, NS
Peters, W
van Rooijen, N
Sanchez-Torres, C
Bromberg, J
Charo, IF
Jung, S
Lira, SA
Randolph, GJ
机构
[1] CUNY Mt Sinai Sch Med, Dept Gene & Cell Med, New York, NY 10029 USA
[2] CUNY Mt Sinai Sch Med, Ctr Immunobiol, New York, NY 10029 USA
关键词
chemotaxis; endothelium; inflammation; lymphatic system; macrophage;
D O I
10.1084/jem.20032152
中图分类号
R392 [医学免疫学]; Q939.91 [免疫学];
学科分类号
100102 ;
摘要
Studying the influence of chemokine receptors (CCRs) on monocyte fate may reveal information about which subpopulations of monocytes convert to dendritic cells (DCs) and the migration pathways that they use. First, we examined whether prominent CCRs on different monocyte subsets, CCR2 or CX(3)CR1, mediated migration events upstream of the accumulation of monocyte-derived DCs in lymph nodes (LNs). Monocytes were labeled and traced by uptake of latex microspheres in skin. Unexpectedly, neither CCR2 nor CX(3)CR1 were required. However, absence of CCR2 led to an increased labeling of the minor Gr-1(int) monocyte population, and the number of latex(+) DCs that emigrated to LNs was correspondingly increased. Characterization of Gr-1(int) monocytes revealed that they selectively expressed CCR7 and CCR8 mRNA in blood. CCR7 and CCR8 pathways were used by monocyte-derived DCs during mobilization from skin to LNs. The role of CCR8 in emigration from tissues also applied to human monocyte-derived cells in a model of transendothelial trafficking. Collectively, the data suggest that Gr-1(int) monocytes may be most disposed to become a lymphatic-migrating DCs. When these monocyte-derived DCs exit skin to emigrate to LNs, they use not only CCR7 but also CCR8, which was not previously recognized to participate in migration to LNs.
引用
收藏
页码:1231 / 1241
页数:11
相关论文
共 53 条
[11]   Absence of CCR8 does not impair the response to ovalbumin-induced allergic airway disease [J].
Goya, I ;
Villares, R ;
Zaballos, A ;
Gutiérrez, J ;
Kremer, L ;
Gonzalo, JA ;
Varona, R ;
Carramolino, L ;
Serrano, A ;
Pallarés, P ;
Criado, LM ;
Kolbeck, R ;
Torres, M ;
Coyle, AJ ;
Gutiérrez-Ramos, JC ;
Martínez-A, C ;
Márquez, G .
JOURNAL OF IMMUNOLOGY, 2003, 170 (04) :2138-2146
[12]  
Grage-Griebenow E, 2001, EUR J IMMUNOL, V31, P48
[13]  
Grage-Griebenow E, 2001, J LEUKOCYTE BIOL, V69, P11
[14]   Mice lacking expression of secondary lymphoid organ chemokine have defects in lymphocyte homing and dendritic cell localization [J].
Gunn, MD ;
Kyuwa, S ;
Tam, C ;
Kakiuchi, T ;
Matsuzawa, A ;
Williams, LT ;
Nakano, H .
JOURNAL OF EXPERIMENTAL MEDICINE, 1999, 189 (03) :451-460
[15]   Chemokine receptor-8 (CCR8) mediates human vascular smooth muscle cell chemotaxis and metalloproteinase-2 secretion [J].
Haque, NS ;
Fallon, JT ;
Pan, JJ ;
Taubman, MB ;
Harpel, PC .
BLOOD, 2004, 103 (04) :1296-1304
[16]   The chemokine receptor CCR8 mediates human endothelial cell chemotaxis induced by I-309 and Kaposi sarcoma herpesvirus-encoded vMIP-I and by lipoprotein(a)-stimulated endothelial cell conditioned medium [J].
Haque, NS ;
Fallon, JT ;
Taubman, MB ;
Harpel, PC .
BLOOD, 2001, 97 (01) :39-45
[17]  
Holst Peter J, 2003, Contrib Microbiol, V10, P232
[18]   Unique chemotactic response profile and specific expression of chemokine receptors CCR4 and CCR8 by CD4+CD25+ regulatory T cells [J].
Iellem, A ;
Mariani, M ;
Lang, R ;
Recalde, H ;
Panina-Bordignon, P ;
Simigaglia, F ;
D'Ambrosio, D .
JOURNAL OF EXPERIMENTAL MEDICINE, 2001, 194 (06) :847-853
[19]   Human NK cells express CC chemokine receptors 4 and 8 and respond to thymus and activation-regulated chemokine, macrophage-derived chemokine, and I-309 [J].
Inngjerdingen, M ;
Damaj, B ;
Maghazachi, AA .
JOURNAL OF IMMUNOLOGY, 2000, 164 (08) :4048-4054
[20]  
Jackson SR, 2001, BEHAV NEUROL, V13, P1