Langerhans cell origin and regulation

被引:70
作者
Collin, Matthew [1 ]
Milne, Paul [1 ]
机构
[1] Newcastle Univ, Inst Cellular Med, Human Dendrit Cell Lab, Framlington Pl, Newcastle Upon Tyne NE2 4HH, Tyne & Wear, England
基金
英国惠康基金;
关键词
dendritic cell; Langerhans cell; transforming growth factor beta; BLOOD DENDRITIC CELLS; CD14(+) CELLS; STEADY-STATE; HUMAN-SKIN; TGF-BETA; MACROPHAGES; HOMEOSTASIS; MONOCYTES; TRANSPLANTATION; MUTATIONS;
D O I
10.1097/MOH.0000000000000202
中图分类号
R5 [内科学];
学科分类号
1002 ; 100201 ;
摘要
Purpose of review This article summarizes recent research on the ontogeny of Langerhans cells and regulation of their homeostasis in quiescent and inflamed conditions. Recent findings Langerhans cells originate prenatally and may endure throughout life, independently of bone marrow derived precursors. Fate-mapping experiments have recently resolved the relative contribution of primitive yolk sac and fetal liver hematopoiesis to the initial formation of Langerhans cells. In postnatal life, local self-renewal restores Langerhans cell numbers following chronic or low-grade inflammatory insults. However, severe inflammation recruits de-novo bone marrow-derived precursors in two waves; a transient population of classical monocytes followed by uncharacterized myeloid precursors that form a stable self-renewing Langerhans cell network as inflammation subsides. Human CD1c(+) dendritic cells have Langerhans cell potential in vitro, raising the possibility that dendritic cell progenitors provide the second wave. Langerhans cell development depends upon transforming growth factor beta receptor signaling with distinct pathways active during differentiation and homeostasis. Langerhans cell survival is mediated by multiple pathways including mechanistic target of rapamycin and extracellular signal-regulated kinase signaling, mechanisms that become highly relevant in Langerhans cell neoplasia. Summary The study of Langerhans cells continues to provide novel and unexpected insights into the origin and regulation of myeloid cell populations. The melding of macrophage and dendritic cell biology, shaped by a unique habitat, is a special feature of Langerhans cells.
引用
收藏
页码:28 / 35
页数:8
相关论文
共 66 条
[1]   Origin of Langerhans cells in normal skin and chronic GVHD after hematopoietic stem-cell transplantation [J].
Andani, Rafiq ;
Robertson, Ivan ;
MacDonald, Kelli P. A. ;
Durrant, Simon ;
Hill, Geoffrey R. ;
Khosrotehrani, Kiarash .
EXPERIMENTAL DERMATOLOGY, 2014, 23 (01) :75-77
[2]   Langerhans cells develop from a lymphoid-committed precursor [J].
Anjuère, F ;
del Hoyo, GM ;
Martín, P ;
Ardavín, C .
BLOOD, 2000, 96 (05) :1633-1637
[3]  
[Anonymous], LEUCOCYTE TYPING
[4]   Fast appearance of donor dendritic cells in human skin:: Dynamics of skin and blood dendritic cells after allogeneic hematopoietic cell transplantation [J].
Auffermann-Gretzinger, S ;
Eger, L ;
Bornhaüser, M ;
Schäkel, K ;
Oelschlaegel, U ;
Schalch, M ;
Illmer, T ;
Thiede, C ;
Ehninger, G .
TRANSPLANTATION, 2006, 81 (06) :866-873
[5]   Identification of Axl as a downstream effector of TGF-β1 during Langerhans cell differentiation and epidermal homeostasis [J].
Bauer, Thomas ;
Zagorska, Anna ;
Jurkin, Jennifer ;
Yasmin, Nighat ;
Koeffel, Rene ;
Richter, Susanne ;
Gesslbauer, Bernhard ;
Lemke, Greg ;
Strobl, Herbert .
JOURNAL OF EXPERIMENTAL MEDICINE, 2012, 209 (11) :2033-2047
[6]   Langerin-expressing dendritic cells in human tissues are related to CD1c+ dendritic cells and distinct from Langerhans cells and CD141high XCR1+ dendritic cells [J].
Bigley, Venetia ;
McGovern, Naomi ;
Milne, Paul ;
Dickinson, Rachel ;
Pagan, Sarah ;
Cookson, Sharon ;
Haniffa, Muzlifah ;
Collin, Matthew .
JOURNAL OF LEUKOCYTE BIOLOGY, 2015, 97 (04) :627-634
[7]   The human syndrome of dendritic cell, monocyte, B and NK lymphoid deficiency [J].
Bigley, Venetia ;
Haniffa, Muzlifah ;
Doulatov, Sergei ;
Wang, Xiao-Nong ;
Dickinson, Rachel ;
McGovern, Naomi ;
Jardine, Laura ;
Pagan, Sarah ;
Dimmick, Ian ;
Chua, Ignatius ;
Wallis, Jonathan ;
Lordan, Jim ;
Morgan, Cliff ;
Kumararatne, Dinakantha S. ;
Doffinger, Rainer ;
van der Burg, Mirjam ;
van Dongen, Jacques ;
Cant, Andrew ;
Dick, John E. ;
Hambleton, Sophie ;
Collin, Matthew .
JOURNAL OF EXPERIMENTAL MEDICINE, 2011, 208 (02) :227-234
[8]   A role for endogenous transforming growth factor beta 1 in Langerhans cell biology: The skin of transforming growth factor beta 1 null mice is devoid of epidermal Langerhans cells [J].
Borkowski, TA ;
Letterio, JJ ;
Farr, AG ;
Udey, MC .
JOURNAL OF EXPERIMENTAL MEDICINE, 1996, 184 (06) :2417-2422
[9]   High prevalence of somatic MAP2K1 mutations in BRAF V600E-negative Langerhans cell histiocytosis [J].
Brown, Noah A. ;
Furtado, Larissa V. ;
Betz, Bryan L. ;
Kiel, Mark J. ;
Weigelin, Helmut C. ;
Lim, Megan S. ;
Elenitoba-Johnson, Kojo S. J. .
BLOOD, 2014, 124 (10) :1655-1658
[10]   Mutually exclusive recurrent somatic mutations in MAP2K1 and BRAF support a central role for ERK activation in LCH pathogenesis [J].
Chakraborty, Rikhia ;
Hampton, Oliver A. ;
Shen, Xiaoyun ;
Simko, Stephen J. ;
Shih, Albert ;
Abhyankar, Harshal ;
Lim, Karen Phaik Har ;
Covington, Kyle R. ;
Trevino, Lisa ;
Dewal, Ninad ;
Muzny, Donna M. ;
Doddapaneni, Harshavardhan ;
Hu, Jianhong ;
Wang, Linghua ;
Lupo, Philip J. ;
Hicks, M. John ;
Bonilla, Diana L. ;
Dwyer, Karen C. ;
Berres, Marie-Luise ;
Poulikakos, Poulikos I. ;
Merad, Miriam ;
McClain, Kenneth L. ;
Wheeler, David A. ;
Allen, Carl E. ;
Parsons, D. Williams .
BLOOD, 2014, 124 (19) :3007-3015