Dendritic cell plasticity in tumor-conditioned skin: CD14+ cells at the cross-roads of immune activation and suppression

被引:36
作者
van de Ven, Rieneke [1 ,2 ]
Lindenberg, Jelle J. [1 ]
Oosterhoff, Dinja [1 ]
de Gruijl, Tanja D. [1 ]
机构
[1] Vrije Univ Amsterdam Med Ctr, Dept Med Oncol, Canc Ctr Amsterdam, NL-1081 HV Amsterdam, Netherlands
[2] Providence Canc Ctr, Robert W Franz Canc Res Ctr, Earle A Chiles Res Inst, Lab Mol & Tumor Immunol, Portland, OR USA
关键词
dendritic cells; human DC subsets; skin; macrophages; cancer; immune suppression;
D O I
10.3389/fimmu.2013.00403
中图分类号
R392 [医学免疫学]; Q939.91 [免疫学];
学科分类号
100102 ;
摘要
Tumors abuse myeloid plasticity to re-direct dendritic cell (DC) differentiation from T cell stimulatory subsets to immune-suppressive subsets that can interfere with anti-tumor immunity. Lined by a dense network of easily accessible DC the skin is a preferred site for the delivery of DC-targeted vaccines. Various groups have recently been focusing on functional aspects of DC subsets in the skin and how these may be affected by tumor-derived suppressive factors. IL-6, Prostaglandin-E2, and IL-10 were identified as factors in cultures of primary human tumors responsible for the inhibited development and activation of skin DC as well as monocyte-derived DC. IL-10 was found to be uniquely able to convert fully developed DC to immature macrophage-like cells with functional M2 characteristics in a physiologically highly relevant skin explant model in which the phenotypic and functional traits of "crawl-out" DC were studied. Mostly from mouse studies, the JAK2/STAT3 signaling pathway has emerged as a "master switch" of tumor-induced immune suppression. Our lab has additionally identified p38-MAPK as an important signaling element in human DC suppression, and recently validated it as such in ex vivo cultures of single-cell suspensions from melanoma metastases. Through the identification of molecular mechanisms and signaling events that drive myeloid immune suppression in human tumors, more effective DC-targeted cancer vaccines may be designed.
引用
收藏
页数:7
相关论文
共 63 条
[1]   Immunoglobulin-like transcript receptors on human dermal CD14+ dendritic cells act as a CD8-antagonist to control cytotoxic T cell priming [J].
Banchereau, Jacques ;
Zurawski, Sandra ;
Thompson-Snipes, Luann ;
Blanck, Jean-Philippe ;
Clayton, Sandra ;
Munk, Adiel ;
Cao, Yanying ;
Wang, Zhiqing ;
Khandelwal, Sunaina ;
Hu, Jiancheng ;
McCoy, William H. ;
Palucka, Karolina A. ;
Reiter, Yoram ;
Fremont, Daved H. ;
Zurawski, Gerard ;
Colonna, Marco ;
Shaw, Andrey S. ;
Klechevsky, Eynav .
PROCEEDINGS OF THE NATIONAL ACADEMY OF SCIENCES OF THE UNITED STATES OF AMERICA, 2012, 109 (46) :18885-18890
[2]   The differential production of cytokines by human Langerhans cells and dermal CD14+ DCs controls CTL priming [J].
Banchereau, Jacques ;
Thompson-Snipes, Luann ;
Zurawski, Sandra ;
Blanck, Jean-Philippe ;
Cao, Yanying ;
Clayton, Sandra ;
Gorvel, Jean-Pierre ;
Zurawski, Gerard ;
Klechevsky, Eynav .
BLOOD, 2012, 119 (24) :5742-5749
[3]   Src Homology 3-interacting Domain of Rv1917c of Mycobacterium tuberculosis Induces Selective Maturation of Human Dendritic Cells by Regulating PI3K-MAPK-NF-κB Signaling and Drives Th2 Immune Responses [J].
Bansal, Kushagra ;
Sinha, Akhauri Yash ;
Ghorpade, Devram Sampat ;
Togarsimalemath, Shambhuprasad Kotresh ;
Patil, Shripad A. ;
Kaveri, Srini V. ;
Balaji, Kithiganahalli Narayanaswamy ;
Bayry, Jagadeesh .
JOURNAL OF BIOLOGICAL CHEMISTRY, 2010, 285 (47) :36511-36522
[4]   Ovarian Cancer Cells Induce Peripheral Mature Dendritic Cells to Differentiate Into Macrophagelike Cells In Vitro [J].
Chen, Fangxue ;
Hou, Meng ;
Ye, Feng ;
Lv, Weiguo ;
Xie, Xing .
INTERNATIONAL JOURNAL OF GYNECOLOGICAL CANCER, 2009, 19 (09) :1487-1493
[5]   Resident CD141 (BDCA3)+ dendritic cells in human skin produce IL-10 and induce regulatory T cells that suppress skin inflammation [J].
Chu, Chung-Ching ;
Ali, Niwa ;
Karagiannis, Panagiotis ;
Di Meglio, Paola ;
Skowera, Ania ;
Napolitano, Luca ;
Barinaga, Guillermo ;
Grys, Katarzyna ;
Sharif-Paghaleh, Ehsan ;
Karagiannis, Sophia N. ;
Peakman, Mark ;
Lombardi, Giovanna ;
Nestle, Frank O. .
JOURNAL OF EXPERIMENTAL MEDICINE, 2012, 209 (05) :935-945
[6]   Tumour immunology - Tumour-induced immune modulation of sentinel lymph nodes [J].
Cochran, Alistair J. ;
Huang, Rong-Rong ;
Lee, Jonathan ;
Itakura, Eijun ;
Leong, Stanley P. L. ;
Essner, Richard .
NATURE REVIEWS IMMUNOLOGY, 2006, 6 (09) :659-670
[7]   The amino terminal lectin-like domain of thrombomodulin is required for constitutive endocytosis [J].
Conway, EM ;
Pollefeyt, S ;
Collen, D ;
SteinerMosonyi, M .
BLOOD, 1997, 89 (02) :652-661
[8]   A postmigrational switch among skin-derived dendritic cells to a macrophage-like phenotype is predetermined by the intracutaneous cytokine balance [J].
de Gruijl, TD ;
Sombroek, CC ;
Lougheed, SM ;
Oosterhoff, D ;
Buter, J ;
van den Eertwegh, AJM ;
Scheper, RJ ;
Pinedo, HM .
JOURNAL OF IMMUNOLOGY, 2006, 176 (12) :7232-7242
[9]   Prolonged maturation and enhanced transduction of dendritic cells migrated from human skin explants after in situ delivery of CD40-targeted adenoviral vectors [J].
de Gruijl, TD ;
Luykx-de Bakker, SA ;
Tillman, BW ;
van den Eertwegh, AJM ;
Buter, J ;
Lougheed, SM ;
van der Bij, GJ ;
Safer, AM ;
Haisma, HJ ;
Curiel, DT ;
Scheper, RJ ;
Pinedo, HM ;
Gerritsen, WR .
JOURNAL OF IMMUNOLOGY, 2002, 169 (09) :5322-5331
[10]   CD1a-autoreactive T cells are a normal component of the human αβ T cell repertoire [J].
de Jong, Annemieke ;
Pena-Cruz, Victor ;
Cheng, Tan-Yun ;
Clark, Rachael A. ;
Van Rhijn, Ildiko ;
Moody, D. Branch .
NATURE IMMUNOLOGY, 2010, 11 (12) :1102-U98