journal article Oct 01, 2017

Review: The function of regulatory T cells at the ocular surface

The Ocular Surface Vol. 15 No. 4 pp. 652-659 · Elsevier BV
View at Publisher Save 10.1016/j.jtos.2017.05.013
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References
126
[1]
Vignali "How regulatory T cells work" Nat Rev Immunol (2008) 10.1038/nri2343
[2]
Sakaguchi "Immunologic tolerance maintained by CD25+ CD4+ regulatory T cells: their common role in controlling autoimmunity, tumor immunity, and transplantation tolerance" Immunol Rev (2001) 10.1034/j.1600-065x.2001.1820102.x
[3]
Ochs "The immune dysregulation, polyendocrinopathy, enteropathy, X-linked syndrome (IPEX) is caused by mutations of FOXP3" Nat Genet (2001) 10.1038/83713
[4]
Kretschmer "Making regulatory T cells with defined antigen specificity: role in autoimmunity and cancer" Immunol Rev (2006) 10.1111/j.0105-2896.2006.00411.x
[5]
Belkaid "Regulatory T cells and infection: a dangerous necessity" Nat Rev Immunol (2007) 10.1038/nri2189
[6]
Gershon "Cell interactions in the induction of tolerance: the role of thymic lymphocytes" Immunology (1970)
[7]
Sakaguchi "Immunologic self-tolerance maintained by activated T cells expressing IL-2 receptor alpha-chains (CD25). Breakdown of a single mechanism of self-tolerance causes various autoimmune diseases" J Immunol (1995) 10.4049/jimmunol.155.3.1151
[8]
Fontenot "Foxp3 programs the development and function of CD4+CD25+ regulatory T cells" Nat Immunol (2003) 10.1038/ni904
[9]
Hori "Control of regulatory T cell development by the transcription factor Foxp3" Science (80- ) (2003) 10.1126/science.1079490
[10]
Yagi "Crucial role of FOXP3 in the development and function of human CD25+CD4+ regulatory T cells" Int Immunol (2004) 10.1093/intimm/dxh165
[11]
Roncador "Analysis of FOXP3 protein expression in human CD4+CD25+ regulatory T cells at the single-cell level" Eur J Immunol (2005) 10.1002/eji.200526189
[12]
Shevach "tTregs, pTregs, and iTregs: similarities and differences" Immunol Rev (2014) 10.1111/imr.12160
[13]
Workman "The development and function of regulatory T cells" Cell Mol Life Sci (2009) 10.1007/s00018-009-0026-2
[14]
Grossman "Human T regulatory cells can use the perforin pathway to cause autologous target cell death" Immunity (2004) 10.1016/j.immuni.2004.09.002
[15]
Ren "Involvement of cellular death in TRAIL/DR5-dependent suppression induced by CD4+CD25+ regulatory T cells" Cell Death Differ (2007) 10.1038/sj.cdd.4402220
[16]
Toscano "Differential glycosylation of TH1, TH2 and TH-17 effector cells selectively regulates susceptibility to cell death" Nat Immunol (2007) 10.1038/ni1482
[17]
Asseman "An essential role for interleukin 10 in the function of regulatory T cells that inhibit intestinal inflammation" J Exp Med (1999) 10.1084/jem.190.7.995
[18]
Olson "Interleukin 35: a key mediator of suppression and the propagation of infectious tolerance" Front Immunol (2013) 10.3389/fimmu.2013.00315
[19]
Ouyang "Transforming growth factor-β signaling curbs thymic negative selection promoting regulatory T cell development" Immunity (2010) 10.1016/j.immuni.2010.04.012
[20]
Wan "“Yin-Yang” functions of transforming growth factor-beta and T regulatory cells in immune regulation" Immunol Rev (2007) 10.1111/j.1600-065x.2007.00565.x
[21]
Campbell "Control of regulatory T cell migration, function, and homeostasis" J Immunol (2015) 10.4049/jimmunol.1500801
[22]
Fallarino "Modulation of tryptophan catabolism by regulatory T cells" Nat Immunol (2003) 10.1038/ni1003
[23]
Pandiyan "CD4+CD25+Foxp3+ regulatory T cells induce cytokine deprivation–mediated apoptosis of effector CD4+ T cells" Nat Immunol (2007) 10.1038/ni1536
[24]
Thornton "CD4+CD25+ immunoregulatory T cells suppress polyclonal T cell activation in vitro by inhibiting interleukin 2 production" J Exp Med (1998) 10.1084/jem.188.2.287
[25]
Schneider "CCR7 is required for the in vivo function of CD4 + CD25 + regulatory T cells" J Exp Med (2007) 10.1084/jem.20061405
[26]
Förster "CCR7 and its ligands: balancing immunity and tolerance" Nat Rev Immunol (2008) 10.1038/nri2297
[27]
Menning "Distinctive role of CCR7 in migration and functional activity of naive- and effector/memory-like Treg subsets" Eur J Immunol (2007) 10.1002/eji.200737201
[28]
Harnessing the plasticity of CD4+ T cells to treat immune-mediated disease

Michel DuPage, Jeffrey A. Bluestone

Nature Reviews Immunology 2016 10.1038/nri.2015.18
[29]
Sawant "Once a Treg, always a Treg?" Immunol Rev (2014) 10.1111/imr.12173
[30]
Kleinewietfeld "The plasticity of human Treg and Th17 cells and its role in autoimmunity" Semin Immunol (2013) 10.1016/j.smim.2013.10.009
[31]
Korn "IL-17 and Th17 cells" Annu Rev Immunol (2009) 10.1146/annurev.immunol.021908.132710
[32]
Zhou "TGF-β-induced Foxp3 inhibits TH17 cell differentiation by antagonizing RORγt function" Nature (2008) 10.1038/nature06878
[33]
Mitchell "The T helper 17–regulatory T cell axis in transplant rejection and tolerance" Curr Opin Organ Transpl (2009) 10.1097/mot.0b013e32832ce88e
[34]
da Silva Martins "Functional stability of Foxp3+ regulatory T cells" Trends Mol Med (2012) 10.1016/j.molmed.2012.06.001
[35]
Guo "Regulatory T cells turn pathogenic" Cell Mol Immunol (2015) 10.1038/cmi.2015.12
[36]
Instability of the transcription factor Foxp3 leads to the generation of pathogenic memory T cells in vivo

Xuyu Zhou, Samantha L Bailey-Bucktrout, Lukas T Jeker et al.

Nature Immunology 2009 10.1038/ni.1774
[37]
Pathogenic conversion of Foxp3+ T cells into TH17 cells in autoimmune arthritis

Noriko Komatsu, Kazuo Okamoto, Shinichiro Sawa et al.

Nature Medicine 2013 10.1038/nm.3432
[38]
Self-antigen-Driven Activation Induces Instability of Regulatory T Cells during an Inflammatory Autoimmune Response

Samantha L. Bailey-Bucktrout, Marc Martinez-Llordella, Xuyu Zhou et al.

Immunity 2013 10.1016/j.immuni.2013.10.016
[39]
Takahashi "SOCS1 is essential for regulatory T cell functions by preventing loss of Foxp3 expression as well as IFN-γ and IL-17A production" J Exp Med (2011) 10.1084/jem.20110428
[40]
No authors listed "The definition and classification of dry eye disease: report of the definition and classification subcommittee of the international dry eye WorkShop (2007)" Ocul Surf (2007) 10.1016/s1542-0124(12)70081-2
[41]
Stevenson "Dry eye disease" Arch Ophthalmol (2012) 10.1001/archophthalmol.2011.364
[42]
Ocular surface immunity: Homeostatic mechanisms and their disruption in dry eye disease

Stefano Barabino, Yihe Chen, Sunil Chauhan et al.

Progress in Retinal and Eye Research 2012 10.1016/j.preteyeres.2012.02.003
[43]
El Annan "Characterization of effector T cells in dry eye disease" Investig Ophthalmol Vis Sci (2009) 10.1167/iovs.08-2417
[44]
Chen "Chronic dry eye disease is principally mediated by effector memory Th17 cells" Mucosal Immunol (2014) 10.1038/mi.2013.20
[45]
Chauhan "Autoimmunity in dry eye is due to resistance of Th17 to Treg suppression" J Immunol (2009) 10.4049/jimmunol.182.3.1247
[46]
Schaumburg "Ocular surface APCs are necessary for autoreactive T cell-mediated experimental autoimmune lacrimal keratoconjunctivitis" J Immunol (2011) 10.4049/jimmunol.1101442
[47]
Szanya "The subpopulation of CD4+CD25+ splenocytes that delays adoptive transfer of diabetes expresses L-selectin and high levels of CCR7" J Immunol (2002) 10.4049/jimmunol.169.5.2461
[48]
Niederkorn "Desiccating stress induces T cell-mediated Sjögren's syndrome-like lacrimal keratoconjunctivitis" J Immunol (2006) 10.4049/jimmunol.176.7.3950
[49]
Siemasko "In vitro expanded CD4+CD25+Foxp3+ regulatory T cells maintain a normal phenotype and suppress immune-mediated ocular surface inflammation" Investig Ophthalmol Vis Sci (2008) 10.1167/iovs.08-2075
[50]
De Paiva "IL-17 disrupts corneal barrier following desiccating stress" Mucosal Immunol (2009) 10.1038/mi.2009.5

Showing 50 of 126 references

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Citations
126
References
Details
Published
Oct 01, 2017
Vol/Issue
15(4)
Pages
652-659
License
View
Funding
National Institutes of Health/National Eye Institute Award: EY012963
Cite This Article
William Foulsham, Anna Marmalidou, Afsaneh Amouzegar, et al. (2017). Review: The function of regulatory T cells at the ocular surface. The Ocular Surface, 15(4), 652-659. https://doi.org/10.1016/j.jtos.2017.05.013
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