Circulating precursors of human CD1c+ and CD141+ dendritic cells

被引:160
作者
Breton, Gaelle [2 ]
Lee, Jaeyop [1 ]
Zhou, Yu Jerry [1 ]
Schreiber, Joseph J. [5 ]
Keler, Tibor [6 ]
Puhr, Sarah [1 ]
Anandasabapathy, Niroshana [2 ,4 ]
Schlesinger, Sarah [2 ]
Caskey, Marina [2 ]
Liu, Kang [1 ]
Nussenzweig, Michel C. [2 ,3 ]
机构
[1] Columbia Univ, Med Ctr, Dept Microbiol & Immunol, New York, NY 10032 USA
[2] Rockefeller Univ, Lab Mol Immunol, New York, NY 10065 USA
[3] Rockefeller Univ, Howard Hughes Med Inst, New York, NY 10065 USA
[4] Brigham & Womens Hosp, Dept Dermatol, Boston, MA 02115 USA
[5] Hosp Special Surg, New York, NY 10021 USA
[6] Celldex Therapeut, Hampton, NJ 08827 USA
基金
美国国家卫生研究院;
关键词
INTERFERON-PRODUCING CELLS; FLT3; LIGAND; STEADY-STATE; T-CELLS; SUBSETS; BLOOD; MACROPHAGES; PROGENITORS; DISTINCT; ORIGIN;
D O I
10.1084/jem.20141441
中图分类号
R392 [医学免疫学]; Q939.91 [免疫学];
学科分类号
071005 [微生物学]; 100108 [医学免疫学];
摘要
Two subsets of conventional dendritic cells (cDCs) with distinct cell surface markers and functions exist in mouse and human. The two subsets of cDCs are specialized antigen-presenting cells that initiate T cell immunity and tolerance. In the mouse, a migratory cDC precursor (pre-CDC) originates from defined progenitors in the bone marrow (BM). Small numbers of short-lived pre-CDCs travel through the blood and replace cDCs in the peripheral organs, maintaining homeostasis of the highly dynamic cDC pool. However, the identity and distribution of the immediate precursor to human cDCs has not been defined. Using a tissue culture system that supports the development of human DCs, we identify a migratory precursor (hpre-CDC) that exists in human cord blood, BM, blood, and peripheral lymphoid organs. hpre-CDCs differ from premonocytes that are restricted to the BM. In contrast to earlier progenitors with greater developmental potential, the hpre-CDC is restricted to producing CD1c(+) and CD141(+) Clec9a(+) cDCs. Studies in human volunteers demonstrate that hpre-CDCs are a dynamic population that increases in response to levels of circulating Flt3L.
引用
收藏
页码:401 / 413
页数:13
相关论文
共 51 条
[1]
Superior antigen cross-presentation and XCR1 expression define human CD11c+CD141+ cells as homologues of mouse CD8+ dendritic cells [J].
Bachem, Annabell ;
Guettler, Steffen ;
Hartung, Evelyn ;
Ebstein, Frederic ;
Schaefer, Michael ;
Tannert, Astrid ;
Salama, Abdulgabar ;
Movassaghi, Kamran ;
Opitz, Corinna ;
Mages, Hans W. ;
Henn, Volker ;
Kloetzel, Peter-Michael ;
Gurka, Stephanie ;
Kroczek, Richard A. .
JOURNAL OF EXPERIMENTAL MEDICINE, 2010, 207 (06) :1273-1281
[2]
Dendritic cells and the control of immunity [J].
Banchereau, J ;
Steinman, RM .
NATURE, 1998, 392 (6673) :245-252
[3]
Origin of the Lamina Propria Dendritic Cell Network [J].
Bogunovic, Milena ;
Ginhoux, Florent ;
Helft, Julie ;
Shang, Limin ;
Hashimoto, Daigo ;
Greter, Melanie ;
Liu, Kang ;
Jakubzick, Claudia ;
Ingersoll, Molly A. ;
Leboeuf, Marylene ;
Stanley, E. Richard ;
Nussenzweig, Michel ;
Lira, Sergio A. ;
Randolph, Gwendalyn J. ;
Merad, Miriam .
IMMUNITY, 2009, 31 (03) :513-525
[4]
Clonal type I interferon-producing and dendritic cell precursors are contained in both human lymphoid and myeloid progenitor populations [J].
Chicha, L ;
Jarrossay, D ;
Manz, MG .
JOURNAL OF EXPERIMENTAL MEDICINE, 2004, 200 (11) :1519-1524
[5]
Antigen delivery to early endosomes eliminates the superiority of human blood BDCA3+ dendritic cells at cross presentation [J].
Cohn, Lillian ;
Chatterjee, Bithi ;
Esselborn, Filipp ;
Smed-Soerensen, Anna ;
Nakamura, Norihiro ;
Chalouni, Cecile ;
Lee, Byoung-Chul ;
Vandlen, Richard ;
Keler, Tibor ;
Lauer, Peter ;
Brockstedt, Dirk ;
Mellman, Ira ;
Delamarre, Lelia .
JOURNAL OF EXPERIMENTAL MEDICINE, 2013, 210 (05) :1049-1063
[6]
Human dendritic cell deficiency: the missing ID? [J].
Collin, Matthew ;
Bigley, Venetia ;
Haniffa, Muzlifah ;
Hambleton, Sophie .
NATURE REVIEWS IMMUNOLOGY, 2011, 11 (09) :575-583
[7]
The XC chemokine receptor 1 is a conserved selective marker of mammalian cells homologous to mouse CD8α+ dendritic cells [J].
Crozat, Karine ;
Guiton, Rachel ;
Contreras, Vanessa ;
Feuillet, Vincent ;
Dutertre, Charles-Antoine ;
Ventre, Erwan ;
Manh, Thien-Phong Vu ;
Baranek, Thomas ;
Storset, Anne K. ;
Marvel, Jacqueline ;
Boudinot, Pierre ;
Hosmalin, Anne ;
Schwartz-Cornil, Isabelle ;
Dalod, Marc .
JOURNAL OF EXPERIMENTAL MEDICINE, 2010, 207 (06) :1283-1292
[8]
The evolution of cellular deficiency in GATA2 mutation [J].
Dickinson, Rachel E. ;
Milne, Paul ;
Jardine, Laura ;
Zandi, Sasan ;
Swierczek, Sabina I. ;
McGovern, Naomi ;
Cookson, Sharon ;
Ferozepurwalla, Zaveyna ;
Langridge, Alexander ;
Pagan, Sarah ;
Gennery, Andrew ;
Heiskanen-Kosma, Tarja ;
Hamalainen, Sari ;
Seppanen, Mikko ;
Helbert, Matthew ;
Tholouli, Eleni ;
Gambineri, Eleonora ;
Reykdal, Sigrun ;
Gottfredsson, Magnus ;
Thaventhiran, James E. ;
Morris, Emma ;
Hirschfield, Gideon ;
Richter, Alex G. ;
Jolles, Stephen ;
Bacon, Chris M. ;
Hambleton, Sophie ;
Haniffa, Muzlifah ;
Bryceson, Yenan ;
Allen, Carl ;
Prchal, Josef T. ;
Dick, John E. ;
Bigley, Venetia ;
Collin, Matthew .
BLOOD, 2014, 123 (06) :863-874
[9]
Revised map of the human progenitor hierarchy shows the origin of macrophages and dendritic cells in early lymphoid development [J].
Doulatov, Sergei ;
Notta, Faiyaz ;
Eppert, Kolja ;
Nguyen, Linh T. ;
Ohashi, Pamela S. ;
Dick, John E. .
NATURE IMMUNOLOGY, 2010, 11 (07) :585-U52
[10]
Differential antigen processing by dendritic cell subsets in vivo [J].
Dudziak, Diana ;
Kamphorst, Alice O. ;
Heidkamp, Gordon F. ;
Buchholz, Veit R. ;
Trumpfheller, Christine ;
Yamazaki, Sayuri ;
Cheong, Cheolho ;
Liu, Kang ;
Lee, Han-Woong ;
Park, Chae Gyu ;
Steinman, Ralph M. ;
Nussenzweig, Michel C. .
SCIENCE, 2007, 315 (5808) :107-111