Tumor-derived lactic acid modulates dendritic cell activation and antigen expression

被引:533
作者
Gottfried, E
Kunz-Schughart, LA
Ebner, S
Mueller-Klieser, W
Hoves, S
Andreesen, R
Mackensen, A
Kreutz, M
机构
[1] Univ Regensburg, Dept Hematol & Oncol, Inst Pathol, D-93042 Regensburg, Germany
[2] Univ Mainz, Inst Physiol & Pathophysiol, Mainz, Germany
关键词
D O I
10.1182/blood-2005-05-1795
中图分类号
R5 [内科学];
学科分类号
1002 ; 100201 ;
摘要
The tumor milieu can influence dendritic cell (DC) differentiation. We analyzed DC differentiation in a 3-dimensional tumor model and propose a new mechanism of DC modulation by the tumor environment. Monocytes were cultured in the presence of IL-4 and GM-CSF within multicellular tumor spheroids (MCTSs) generated from different tumor cell lines. Monocytes invaded the MCTSs and differentiated into tumor-associated dendritic cells (TADCs). The antigen expression was altered on TADCs independent of the culture conditions (immature/mature DCs, Langerhans cells) and IL-12 secretion was reduced. Supernatants of MCTSs could partially transfer the suppressive effect. Conditioned media from urothelial carcinoma cell lines contained high levels of M-CSF and IL-6, both cytokines known to modulate DC differentiation. In contrast, melanoma and prostate carcinoma MCTS cocultures produced little M-CSF and IL-6, but high levels of lactic acid. Indeed, addition of lactic acid during DC differentiation in vitro induced a phenotype comparable with TADCs generated within melanoma and prostate carcinoma MCTSs. Blocking of lactic acid production in melanoma MCTS cocultures reverted the TADC phenotype to normal. We therefore conclude that tumor-derived lactic acid is an important factor modulating the DC phenotype in the tumor environment, which may critically contribute to tumor escape mechanisms.
引用
收藏
页码:2013 / 2021
页数:9
相关论文
共 59 条
[1]  
Almand B, 2000, CLIN CANCER RES, V6, P1755
[2]  
ANDREESEN R, 1990, CANCER RES, V50, P7450
[3]   Dendritic cells and the control of immunity [J].
Banchereau, J ;
Steinman, RM .
NATURE, 1998, 392 (6673) :245-252
[4]   Dendritic cells [J].
Bell, D ;
Young, JW ;
Banchereau, J .
ADVANCES IN IMMUNOLOGY, VOL. 72, 1999, 72 :255-324
[5]   In breast carcinoma tissue, immature dendritic cells reside within the tumor, whereas mature dendritic cells are located in peritumoral areas [J].
Bell, D ;
Chomarat, P ;
Broyles, D ;
Netto, G ;
Harb, GM ;
Lebecque, S ;
Valladeau, J ;
Davoust, J ;
Palucka, KA ;
Banchereau, J .
JOURNAL OF EXPERIMENTAL MEDICINE, 1999, 190 (10) :1417-1425
[6]   Human melanoma cells inhibit the earliest differentiation steps of human Langerhans cell precursors but failed to affect the functional maturation of epidermal Langerhans cells [J].
Berthier-Vergnes, O ;
Gaucherand, M ;
Péguet-Navarro, J ;
Plouet, J ;
Pageaux, JF ;
Schmitt, D ;
Staquet, MJ .
BRITISH JOURNAL OF CANCER, 2001, 85 (12) :1944-1951
[7]   TUMOR HYPOXIA - THE PICTURE HAS CHANGED IN THE 1990S [J].
BROWN, JM ;
GIACCIA, AJ .
INTERNATIONAL JOURNAL OF RADIATION BIOLOGY, 1994, 65 (01) :95-102
[8]   INTERLEUKIN-10 DIFFERENTIALLY REGULATES B7-1 (CD80) AND B7-2 (CD86) EXPRESSION ON HUMAN PERIPHERAL-BLOOD DENDRITIC CELLS [J].
BUELENS, C ;
WILLEMS, F ;
DELVAUX, A ;
PIERARD, G ;
DELVILLE, JP ;
VELU, T ;
GOLDMAN, M .
EUROPEAN JOURNAL OF IMMUNOLOGY, 1995, 25 (09) :2668-2672
[9]   Hypoxia-induced gene expression in human macrophages - Implications for ischemic tissues and hypoxia-regulated gene therapy [J].
Burke, B ;
Giannoudis, A ;
Corke, KP ;
Gill, D ;
Wells, M ;
Ziegler-Heitbrock, L ;
Lewis, CE .
AMERICAN JOURNAL OF PATHOLOGY, 2003, 163 (04) :1233-1243
[10]  
CARLSSON J, 2002, RECENT RESULTS CANC, P1