메뉴 건너뛰기




Volumn 152, Issue 1, 2017, Pages 52-64

Mesenteric lymph node CD11b− CD103+ PD-L1High dendritic cells highly induce regulatory T cells

Author keywords

dendritic cells; intestinal immunity; mesenteric lymph nodes; oral tolerance; regulatory T cells

Indexed keywords

ALDH1A2 PROTEIN; ALPHAVBETA8 INTEGRIN; ANTIGEN; B7 ANTIGEN; CD103 ANTIGEN; CD11B ANTIGEN; CD172A PROTEIN; CD64 ANTIGEN; CD86 ANTIGEN; CD8ALPHA ANTIGEN; GLYCOPROTEIN P 15095; HOMING RECEPTOR; INTEGRIN; ITGB8 PROTEIN; LE540 PROTEI; MAJOR HISTOCOMPATIBILITY ANTIGEN CLASS 2; PROGRAMMED DEATH 1 LIGAND 1; PROGRAMMED DEATH 1 LIGAND 2; PROTEIN; RETINOIC ACID; TRANSCRIPTION FACTOR FOXP3; TRANSFORMING GROWTH FACTOR BETA; UNCLASSIFIED DRUG; XCR1 PROTEIN; ALDEHYDE DEHYDROGENASE; ALDH1A2 PROTEIN, MOUSE; ALPHA E INTEGRINS; ALPHA INTEGRIN; BETA INTEGRIN; CD274 PROTEIN, MOUSE; FORKHEAD TRANSCRIPTION FACTOR; FOXP3 PROTEIN, MOUSE; INTEGRIN BETA8; LEUKOCYTE ANTIGEN; OVALBUMIN;

EID: 85020115462     PISSN: 00192805     EISSN: 13652567     Source Type: Journal    
DOI: 10.1111/imm.12747     Document Type: Article
Times cited : (55)

References (55)
  • 1
    • 84867843486 scopus 로고    scopus 로고
    • Mucosal immunology of tolerance and allergy in the gastrointestinal tract
    • Steele L, Mayer L, Cecilia Berin M. Mucosal immunology of tolerance and allergy in the gastrointestinal tract. Immunol Res 2012; 54:75–82.
    • (2012) Immunol Res , vol.54 , pp. 75-82
    • Steele, L.1    Mayer, L.2    Cecilia Berin, M.3
  • 3
    • 84859808080 scopus 로고    scopus 로고
    • Oral tolerance to food protein
    • Pabst O, Mowat AM. Oral tolerance to food protein. Mucosal Immunol 2012; 5:232–9.
    • (2012) Mucosal Immunol , vol.5 , pp. 232-239
    • Pabst, O.1    Mowat, A.M.2
  • 4
    • 33845662118 scopus 로고    scopus 로고
    • Oral tolerance: therapeutic implications for autoimmune diseases
    • Faria AMC, Weiner HL. Oral tolerance: therapeutic implications for autoimmune diseases. Clin Dev Immunol 2006; 13:143–57.
    • (2006) Clin Dev Immunol , vol.13 , pp. 143-157
    • Faria, A.M.C.1    Weiner, H.L.2
  • 5
    • 84897944747 scopus 로고    scopus 로고
    • + regulatory T cells
    • + regulatory T cells. Immunol Rev 2014; 259:159–72.
    • (2014) Immunol Rev , vol.259 , pp. 159-172
    • Hori, S.1
  • 6
    • 84897935715 scopus 로고    scopus 로고
    • Genetic and epigenetic basis of Treg cell development and function: from a FoxP3-centered view to an epigenome-defined view of natural Treg cells
    • Morikawa H, Sakaguchi S. Genetic and epigenetic basis of Treg cell development and function: from a FoxP3-centered view to an epigenome-defined view of natural Treg cells. Immunol Rev 2014; 259:192–205.
    • (2014) Immunol Rev , vol.259 , pp. 192-205
    • Morikawa, H.1    Sakaguchi, S.2
  • 7
    • 84897946867 scopus 로고    scopus 로고
    • Once a Treg, always a Treg?
    • Sawant DV, Vignali DAA. Once a Treg, always a Treg? Immunol Rev 2014; 259:173–91.
    • (2014) Immunol Rev , vol.259 , pp. 173-191
    • Sawant, D.V.1    Vignali, D.A.A.2
  • 8
    • 84897932501 scopus 로고    scopus 로고
    • Regulatory T-cell homeostasis: steady-state maintenance and modulation during inflammation
    • Smigiel KS, Srivastava S, Stolley JM, Campbell DJ. Regulatory T-cell homeostasis: steady-state maintenance and modulation during inflammation. Immunol Rev 2014; 259:40–59.
    • (2014) Immunol Rev , vol.259 , pp. 40-59
    • Smigiel, K.S.1    Srivastava, S.2    Stolley, J.M.3    Campbell, D.J.4
  • 9
    • 84897945297 scopus 로고    scopus 로고
    • The importance of regulatory T-cell heterogeneity in maintaining self-tolerance
    • Yuan X, Cheng G, Malek TR. The importance of regulatory T-cell heterogeneity in maintaining self-tolerance. Immunol Rev 2014; 259:103–14.
    • (2014) Immunol Rev , vol.259 , pp. 103-114
    • Yuan, X.1    Cheng, G.2    Malek, T.R.3
  • 12
    • 84958910139 scopus 로고    scopus 로고
    • Dietary antigens limit mucosal immunity by inducing regulatory T cells in the small intestine
    • Kim KS, Hong S-W, Han D, Yi J, Jung J, Yang B-G et al. Dietary antigens limit mucosal immunity by inducing regulatory T cells in the small intestine. Science 2016; 351:858–63.
    • (2016) Science , vol.351 , pp. 858-863
    • Kim, K.S.1    Hong, S.-W.2    Han, D.3    Yi, J.4    Jung, J.5    Yang, B.-G.6
  • 13
    • 33645054315 scopus 로고    scopus 로고
    • Oral tolerance originates in the intestinal immune system and relies on antigen carriage by dendritic cells
    • Worbs T, Bode U, Yan S, Hoffmann MW, Hintzen G, Bernhardt G et al. Oral tolerance originates in the intestinal immune system and relies on antigen carriage by dendritic cells. J Exp Med 2006; 203:519–27.
    • (2006) J Exp Med , vol.203 , pp. 519-527
    • Worbs, T.1    Bode, U.2    Yan, S.3    Hoffmann, M.W.4    Hintzen, G.5    Bernhardt, G.6
  • 16
    • 84876910443 scopus 로고    scopus 로고
    • The integration of T cell migration, differentiation and function
    • Masopust D, Schenkel JM. The integration of T cell migration, differentiation and function. Nat Rev Immunol 2013; 13:309–20.
    • (2013) Nat Rev Immunol , vol.13 , pp. 309-320
    • Masopust, D.1    Schenkel, J.M.2
  • 17
    • 23344442514 scopus 로고    scopus 로고
    • Lymphocyte homing to the gut: attraction, adhesion, and commitment
    • Salmi M, Jalkanen S. Lymphocyte homing to the gut: attraction, adhesion, and commitment. Immunol Rev 2005; 206:100–13.
    • (2005) Immunol Rev , vol.206 , pp. 100-113
    • Salmi, M.1    Jalkanen, S.2
  • 20
    • 34447503805 scopus 로고    scopus 로고
    • Reciprocal Th17 and regulatory T cell differentiation mediated by retinoic acid
    • Mucida D, Park Y, Kim G, Turovskaya O, Scott I, Kronenberg M et al. Reciprocal Th17 and regulatory T cell differentiation mediated by retinoic acid. Science 2007; 317:256–60.
    • (2007) Science , vol.317 , pp. 256-260
    • Mucida, D.1    Park, Y.2    Kim, G.3    Turovskaya, O.4    Scott, I.5    Kronenberg, M.6
  • 21
    • 34547769253 scopus 로고    scopus 로고
    • All-trans retinoic acid mediates enhanced Treg cell growth, differentiation, and gut homing in the face of high levels of co-stimulation
    • Benson MJ, Pino-Lagos K, Rosemblatt M, Noelle RJ. All-trans retinoic acid mediates enhanced Treg cell growth, differentiation, and gut homing in the face of high levels of co-stimulation. J Exp Med 2007; 204:1765–74.
    • (2007) J Exp Med , vol.204 , pp. 1765-1774
    • Benson, M.J.1    Pino-Lagos, K.2    Rosemblatt, M.3    Noelle, R.J.4
  • 22
    • 63649135273 scopus 로고    scopus 로고
    • GM-CSF and IL-4 synergistically trigger dendritic cells to acquire retinoic acid-producing capacity
    • Yokota A, Takeuchi H, Maeda N, Ohoka Y, Kato C, Song SY et al. GM-CSF and IL-4 synergistically trigger dendritic cells to acquire retinoic acid-producing capacity. Int Immunol 2009; 21:361–77.
    • (2009) Int Immunol , vol.21 , pp. 361-377
    • Yokota, A.1    Takeuchi, H.2    Maeda, N.3    Ohoka, Y.4    Kato, C.5    Song, S.Y.6
  • 29
    • 78649819162 scopus 로고    scopus 로고
    • v Integrin expression by DCs is required for Th17 cell differentiation and development of experimental autoimmune encephalomyelitis in mice
    • v Integrin expression by DCs is required for Th17 cell differentiation and development of experimental autoimmune encephalomyelitis in mice. J Clin Invest 2010; 120:4445–52.
    • (2010) J Clin Invest , vol.120 , pp. 4445-4452
    • Acharya, M.1    Mukhopadhyay, S.2    Paidassi, H.3    Jamil, T.4    Chow, C.5    Kissler, S.6
  • 30
    • 77951737056 scopus 로고    scopus 로고
    • + dendritic cells express indoleamine 2,3-dioxygenase which influences T regulatory/T effector cell balance and oral tolerance induction
    • + dendritic cells express indoleamine 2,3-dioxygenase which influences T regulatory/T effector cell balance and oral tolerance induction. Gut 2010; 59:595–604.
    • (2010) Gut , vol.59 , pp. 595-604
    • Matteoli, G.1    Mazzini, E.2    Iliev, I.D.3    Mileti, E.4    Fallarino, F.5    Puccetti, P.6
  • 34
    • 12244297799 scopus 로고    scopus 로고
    • CX3CR1-mediated dendritic cell access to the intestinal lumen and bacterial clearance
    • Niess JH, Brand S, Gu X, Landsman L, Jung S, McCormick BA et al. CX3CR1-mediated dendritic cell access to the intestinal lumen and bacterial clearance. Science 2005; 307:254–8.
    • (2005) Science , vol.307 , pp. 254-258
    • Niess, J.H.1    Brand, S.2    Gu, X.3    Landsman, L.4    Jung, S.5    McCormick, B.A.6
  • 40
    • 84929048461 scopus 로고    scopus 로고
    • Toll-like receptor 2 suppresses Toll-like receptor 9 responses in Peyer's patch dendritic cells
    • Kotaki R, Wajima S, Shiokawa A, Hachimura S. Toll-like receptor 2 suppresses Toll-like receptor 9 responses in Peyer's patch dendritic cells. Immunobiology 2015; 220:734–43.
    • (2015) Immunobiology , vol.220 , pp. 734-743
    • Kotaki, R.1    Wajima, S.2    Shiokawa, A.3    Hachimura, S.4
  • 41
    • 84874207519 scopus 로고    scopus 로고
    • Expression of XCR1 characterizes the Batf3-dependent lineage of dendritic cells capable of antigen cross-presentation
    • Bachem A, Hartung E, Güttler S, Mora A, Zhou X, Hegemann A et al. Expression of XCR1 characterizes the Batf3-dependent lineage of dendritic cells capable of antigen cross-presentation. Front Immunol 2012; 3:214.
    • (2012) Front Immunol , vol.3 , pp. 214
    • Bachem, A.1    Hartung, E.2    Güttler, S.3    Mora, A.4    Zhou, X.5    Hegemann, A.6
  • 42
    • 84905651006 scopus 로고    scopus 로고
    • + dendritic cells leads to a consistent classification of intestinal dendritic cells based on the expression of XCR1 and SIRPα
    • + dendritic cells leads to a consistent classification of intestinal dendritic cells based on the expression of XCR1 and SIRPα. Front Immunol 2014; 5:326.
    • (2014) Front Immunol , vol.5 , pp. 326
    • Becker, M.1    Güttler, S.2    Bachem, A.3    Hartung, E.4    Mora, A.5    Jäkel, A.6
  • 44
    • 84961726923 scopus 로고    scopus 로고
    • Crucial roles of XCR1-expressing dendritic cells and the XCR1-XCL1 chemokine axis in intestinal immune homeostasis
    • Ohta T, Sugiyama M, Hemmi H, Yamazaki C, Okura S, Sasaki I et al. Crucial roles of XCR1-expressing dendritic cells and the XCR1-XCL1 chemokine axis in intestinal immune homeostasis. Sci Rep 2016; 6:23505.
    • (2016) Sci Rep , vol.6 , pp. 23505
    • Ohta, T.1    Sugiyama, M.2    Hemmi, H.3    Yamazaki, C.4    Okura, S.5    Sasaki, I.6
  • 45
    • 84879109606 scopus 로고    scopus 로고
    • Critical roles of a dendritic cell subset expressing a chemokine receptor, XCR1
    • Yamazaki C, Sugiyama M, Ohta T, Hemmi H, Hamada E, Sasaki I et al. Critical roles of a dendritic cell subset expressing a chemokine receptor, XCR1. J Immunol 2013; 190:6071–82.
    • (2013) J Immunol , vol.190 , pp. 6071-6082
    • Yamazaki, C.1    Sugiyama, M.2    Ohta, T.3    Hemmi, H.4    Hamada, E.5    Sasaki, I.6
  • 47
    • 84871307366 scopus 로고    scopus 로고
    • CD64 distinguishes macrophages from dendritic cells in the gut and reveals the Th1-inducing role of mesenteric lymph node macrophages during colitis
    • Tamoutounour S, Henri S, Lelouard H, de Bovis B, de Haar C, van der Woude CJ et al. CD64 distinguishes macrophages from dendritic cells in the gut and reveals the Th1-inducing role of mesenteric lymph node macrophages during colitis. Eur J Immunol 2012; 42:3150–66.
    • (2012) Eur J Immunol , vol.42 , pp. 3150-3166
    • Tamoutounour, S.1    Henri, S.2    Lelouard, H.3    de Bovis, B.4    de Haar, C.5    van der Woude, C.J.6
  • 48
    • 30744474950 scopus 로고    scopus 로고
    • CCR7 is critically important for migration of dendritic cells in intestinal lamina propria to mesenteric lymph nodes
    • Jang MH, Sougawa N, Tanaka T, Hirata T, Hiroi T, Tohya K et al. CCR7 is critically important for migration of dendritic cells in intestinal lamina propria to mesenteric lymph nodes. J Immunol 2006; 176:803–10.
    • (2006) J Immunol , vol.176 , pp. 803-810
    • Jang, M.H.1    Sougawa, N.2    Tanaka, T.3    Hirata, T.4    Hiroi, T.5    Tohya, K.6
  • 49
    • 84921786777 scopus 로고    scopus 로고
    • Regional specialization within the intestinal immune system
    • Mowat AM, Agace WW. Regional specialization within the intestinal immune system. Nat Rev Immunol 2014; 14:667–85.
    • (2014) Nat Rev Immunol , vol.14 , pp. 667-685
    • Mowat, A.M.1    Agace, W.W.2
  • 50
    • 84961815094 scopus 로고    scopus 로고
    • The lymph nodes draining the small intestine and colon are anatomically separate and immunologically distinct
    • Houston SA, Cerovic V, Thomson C, Brewer J, Mowat AM, Milling S. The lymph nodes draining the small intestine and colon are anatomically separate and immunologically distinct. Mucosal Immunol 2016; 9:468–78.
    • (2016) Mucosal Immunol , vol.9 , pp. 468-478
    • Houston, S.A.1    Cerovic, V.2    Thomson, C.3    Brewer, J.4    Mowat, A.M.5    Milling, S.6
  • 53
    • 34547757390 scopus 로고    scopus 로고
    • Small intestine lamina propria dendritic cells promote de novo generation of Foxp3 T reg cells via retinoic acid
    • Sun C-M, Hall JA, Blank RB, Bouladoux N, Oukka M, Mora JR et al. Small intestine lamina propria dendritic cells promote de novo generation of Foxp3 T reg cells via retinoic acid. J Exp Med 2007; 204:1775–85.
    • (2007) J Exp Med , vol.204 , pp. 1775-1785
    • Sun, C.-M.1    Hall, J.A.2    Blank, R.B.3    Bouladoux, N.4    Oukka, M.5    Mora, J.R.6
  • 54
    • 79960513242 scopus 로고    scopus 로고
    • Functional specializations of intestinal dendritic cell and macrophage subsets that control Th17 and regulatory T cell responses are dependent on the T cell/APC ratio, source of mouse strain, and regional localization
    • Denning TL, Norris BA, Medina-Contreras O, Manicassamy S, Geem D, Madan R et al. Functional specializations of intestinal dendritic cell and macrophage subsets that control Th17 and regulatory T cell responses are dependent on the T cell/APC ratio, source of mouse strain, and regional localization. J Immunol 2011; 187:733–47.
    • (2011) J Immunol , vol.187 , pp. 733-747
    • Denning, T.L.1    Norris, B.A.2    Medina-Contreras, O.3    Manicassamy, S.4    Geem, D.5    Madan, R.6


* 이 정보는 Elsevier사의 SCOPUS DB에서 KISTI가 분석하여 추출한 것입니다.