Comparative genomics analysis of mononuclear phagocyte subsets confirms homology between lymphoid tissue-resident and dermal XCR1+ DCs in mouse and human and distinguishes them from Langerhans cells

被引:41
作者
Carpentier, Sabrina [1 ]
Thien-Phong Vu Manh [2 ]
Chelbi, Rabie [2 ]
Henri, Sandrine [2 ]
Malissen, Bernard [2 ]
Haniffa, Muzlifah [3 ]
Ginhoux, Florent [4 ]
Dalod, Marc [2 ]
机构
[1] Ctr Immunol Marseille Luminy, Mi MAbs, F-13009 Marseille, France
[2] Aix Marseille Univ UM2, Ctr Immunol Marseille Luminy, INSERM, U1104,CNRS UMR7280, F-13288 Marseille 09, France
[3] Newcastle Univ, Inst Cellular Med, Human Dendrit Cell Lab, Newcastle Upon Tyne NE2 4HH, Tyne & Wear, England
[4] ASTAR, Singapore Immunol Network SIgN, 8A Biomed Grove IMMUNOS Bldg,Level 3, Singapore 138648, Singapore
基金
欧洲研究理事会; 英国惠康基金;
关键词
Dendritic cells; Langerhans cells; XCR1; Skin; Comparative genomics; Bioinformatics; GENE-EXPRESSION PROFILES; CD8(+) T-CELLS; DENDRITIC CELLS; FUNCTIONAL SPECIALIZATION; MOLECULAR SIGNATURES; CD8-ALPHA(+); SKIN; MACROPHAGES; TOLERANCE; MONOCYTES;
D O I
10.1016/j.jim.2016.02.023
中图分类号
Q5 [生物化学];
学科分类号
070307 [化学生物学];
摘要
Dendritic cells (DC) are mononuclear phagocytes which exhibit a branching (dendritic) morphology and excel at naive T cell activation. DC encompass several subsets initially identified by their expression of cell surface molecules and later shown to possess distinct functions. DC subset differentiation is orchestrated by transcription factors, growth factors and cytokines. Identifying DC subsets is challenging as very few cell surface molecules are uniquely expressed on any one of these cell populations. There is no standard consensus to identify mononuclear phagocyte subsets; varying antigens are employed depending on the tissue and animal species studied and between laboratories. This has led to confusion in how to accurately define and classify DCs across tissues and between species. Here we report a comparative genomics strategy that enables universal definition of DC and other mononuclear phagocyte subsets across species. We performed a meta-analysis of several public datasets of human and mouse mononuclear phagocyte subsets isolated from blood, spleen, skin or cutaneous lymph nodes, including by using a novel and user friendly software, BubbleGUM, which generates and integrates gene signatures for high throughput gene set enrichment analysis. This analysis demonstrates the equivalence between human and mouse skin XCR1(+) DCs, and between mouse and human Langerhans cells. (C) 2016 The Authors. Published by Elsevier B.V.
引用
收藏
页码:35 / 49
页数:15
相关论文
共 78 条
[1]
XCR1+ dendritic cells promote memory CD8+ T cell recall upon secondary infections with Listeria monocytogenes or certain viruses [J].
Alexandre, Yannick O. ;
Ghilas, Sonia ;
Sanchez, Cindy ;
Le Bon, Agnes ;
Crozat, Karine ;
Dalod, Marc .
JOURNAL OF EXPERIMENTAL MEDICINE, 2016, 213 (01) :75-92
[2]
Modular expression analysis reveals functional conservation between human Langerhans cells and mouse cross-priming dendritic cells [J].
Artyomov, Maxim N. ;
Munk, Adiel ;
Gorvel, Laurent ;
Korenfeld, Daniel ;
Cella, Marina ;
Tung, Thomas ;
Klechevsky, Eynav .
JOURNAL OF EXPERIMENTAL MEDICINE, 2015, 212 (05) :743-757
[3]
Human XCR1+ Dendritic Cells Derived In Vitro from CD34+ Progenitors Closely Resemble Blood Dendritic Cells, Including Their Adjuvant Responsiveness, Contrary to Monocyte-Derived Dendritic Cells [J].
Balan, Sreekumar ;
Ollion, Vincent ;
Colletti, Nicholas ;
Chelbi, Rabie ;
Montanana-Sanchis, Frederic ;
Liu, Hong ;
Thien-Phong Vu Manh ;
Sanchez, Cindy ;
Savoret, Juliette ;
Perrot, Ivan ;
Doffin, Anne-Claire ;
Fossum, Even ;
Bechlian, Didier ;
Chabannon, Christian ;
Bogen, Bjarne ;
Asselin-Paturel, Carine ;
Shaw, Michael ;
Soos, Timothy ;
Caux, Christophe ;
Valladeau-Guilemond, Jenny ;
Dalod, Marc .
JOURNAL OF IMMUNOLOGY, 2014, 193 (04) :1622-1635
[4]
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
[5]
High-dimensional analysis of the murine myeloid cell system [J].
Becher, Burkhard ;
Schlitzer, Andreas ;
Chen, Jinmiao ;
Mair, Florian ;
Sumatoh, Hermi R. ;
Teng, Karen Wei Weng ;
Low, Donovan ;
Ruedl, Christiane ;
Riccardi-Castagnoli, Paola ;
Poidinger, Michael ;
Greter, Melanie ;
Ginhoux, Florent ;
Newell, Evan W. .
NATURE IMMUNOLOGY, 2014, 15 (12) :1181-1189
[6]
Bolstad BM, 2004, INT REV NEUROBIOL, V60, P25
[7]
Identification of a Tissue-Specific, C/EBPβ-Dependent Pathway of Differentiation for Murine Peritoneal Macrophages [J].
Cain, Derek W. ;
O'Koren, Emily G. ;
Kan, Matthew J. ;
Womble, Mandy ;
Sempowski, Gregory D. ;
Hopper, Kristen ;
Gunn, Michael D. ;
Kelsoe, Garnett .
JOURNAL OF IMMUNOLOGY, 2013, 191 (09) :4665-4675
[8]
Capucha T, 2015, IMMUNITY, V43, P369, DOI 10.1016/j.immuni.2015.06.017
[9]
Langerhans cells are generated by two distinct PU.1-dependent transcriptional networks [J].
Chopin, Michael ;
Seillet, Cyril ;
Chevrier, Stephane ;
Wu, Li ;
Wang, Hongsheng ;
Morse, Herbert C., III ;
Belz, Gabrielle T. ;
Nutt, Stephen L. .
JOURNAL OF EXPERIMENTAL MEDICINE, 2013, 210 (13) :2967-2980
[10]
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