Type |
Details |
Score |
Publication |
First Author: |
Watanabe T |
Year: |
2006 |
Journal: |
Clin Immunol |
Title: |
CD52 is a novel costimulatory molecule for induction of CD4+ regulatory T cells. |
Volume: |
120 |
Issue: |
3 |
Pages: |
247-59 |
|
•
•
•
•
•
|
Publication |
First Author: |
Hasegawa A |
Year: |
2008 |
Journal: |
Am J Reprod Immunol |
Title: |
CD52 is synthesized in cumulus cells and secreted into the cumulus matrix during ovulation. |
Volume: |
60 |
Issue: |
3 |
Pages: |
187-91 |
|
•
•
•
•
•
|
Allele |
Name: |
CD52 antigen; wild type |
|
|
|
•
•
•
•
•
|
Publication |
First Author: |
Yeung CH |
Year: |
1997 |
Journal: |
Mol Hum Reprod |
Title: |
Human epididymal secreted protein CD52 on ejaculated spermatozoa: correlations with semen characteristics and the effect of its antibody. |
Volume: |
3 |
Issue: |
12 |
Pages: |
1045-51 |
|
•
•
•
•
•
|
Publication |
First Author: |
Hardiyanto L |
Year: |
2012 |
Journal: |
J Reprod Immunol |
Title: |
The N-linked carbohydrate moiety of male reproductive tract CD52 (mrt-CD52) interferes with the complement system via binding to C1q. |
Volume: |
94 |
Issue: |
2 |
Pages: |
142-50 |
|
•
•
•
•
•
|
Allele |
Name: |
CD52 antigen; gene trap OST147197, Lexicon Genetics |
Allele Type: |
Gene trapped |
|
|
•
•
•
•
•
|
Allele |
Name: |
CD52 antigen; gene trap OST258337, Lexicon Genetics |
Allele Type: |
Gene trapped |
|
|
•
•
•
•
•
|
Allele |
Name: |
CD52 antigen; gene trap OST318970, Lexicon Genetics |
Allele Type: |
Gene trapped |
|
|
•
•
•
•
•
|
Allele |
Name: |
CD52 antigen; gene trap OST370919, Lexicon Genetics |
Allele Type: |
Gene trapped |
|
|
•
•
•
•
•
|
Allele |
Name: |
CD52 antigen; gene trap OST388368, Lexicon Genetics |
Allele Type: |
Gene trapped |
|
|
•
•
•
•
•
|
Allele |
Name: |
CD52 antigen; endonuclease-mediated mutation 2, Cyagen Biosciences |
Allele Type: |
Endonuclease-mediated |
Attribute String: |
Conditional ready, No functional change |
|
•
•
•
•
•
|
Allele |
Name: |
CD52 antigen; targeted mutation 1a, Helmholtz Zentrum Muenchen GmbH |
Allele Type: |
Targeted |
Attribute String: |
Conditional ready, Null/knockout, Reporter |
|
•
•
•
•
•
|
Allele |
Name: |
CD52 antigen; targeted mutation 2a, Helmholtz Zentrum Muenchen GmbH |
Allele Type: |
Targeted |
Attribute String: |
Conditional ready, Null/knockout, Reporter |
|
•
•
•
•
•
|
Allele |
Name: |
CD52 antigen; targeted mutation 1.1, Leonard C Harrison |
Allele Type: |
Targeted |
Attribute String: |
Conditional ready, No functional change |
|
•
•
•
•
•
|
Allele |
Name: |
CD52 antigen; targeted mutation 1.2, Leonard C Harrison |
Allele Type: |
Targeted |
Attribute String: |
Null/knockout |
|
•
•
•
•
•
|
Allele |
Name: |
CD52 antigen; endonuclease-mediated mutation 1, GemPharmatech Co., Ltd |
Allele Type: |
Endonuclease-mediated |
Attribute String: |
Conditional ready, No functional change |
|
•
•
•
•
•
|
Allele |
Name: |
CD52 antigen; endonuclease-mediated mutation 3, GemPharmatech Co., Ltd |
Allele Type: |
Endonuclease-mediated |
Attribute String: |
Null/knockout |
|
•
•
•
•
•
|
Allele |
Name: |
CD52 antigen; endonuclease-mediated mutation 2, GemPharmatech Co., Ltd |
Allele Type: |
Endonuclease-mediated |
Attribute String: |
Null/knockout |
|
•
•
•
•
•
|
Allele |
Name: |
CD52 antigen; endonuclease-mediated mutation 1, Institute of Molecular Genetics |
Allele Type: |
Endonuclease-mediated |
Attribute String: |
Null/knockout |
|
•
•
•
•
•
|
Strain |
Attribute String: |
coisogenic, endonuclease-mediated mutation, mutant strain |
|
•
•
•
•
•
|
Allele |
Name: |
CD52 antigen; endonuclease-mediated mutation 3, Shanghai Model Organisms Center |
Allele Type: |
Endonuclease-mediated |
Attribute String: |
Conditional ready, No functional change |
|
•
•
•
•
•
|
Allele |
Name: |
CD52 antigen; targeted mutation 1, Research Institute for Microbial Diseases, Osaka University |
Allele Type: |
Targeted |
Attribute String: |
Null/knockout |
|
•
•
•
•
•
|
Strain |
Attribute String: |
coisogenic, endonuclease-mediated mutation, mutant strain |
|
•
•
•
•
•
|
Strain |
Attribute String: |
coisogenic |
|
•
•
•
•
•
|
Strain |
Attribute String: |
coisogenic, endonuclease-mediated mutation, mutant strain |
|
•
•
•
•
•
|
Strain |
Attribute String: |
coisogenic, endonuclease-mediated mutation, mutant strain |
|
•
•
•
•
•
|
Genotype |
Symbol: |
Cd52/Cd52 |
Background: |
C57BL/6NCrl-Cd52/Ccpcz |
Zygosity: |
hm |
Has Mutant Allele: |
true |
|
•
•
•
•
•
|
Strain |
Attribute String: |
mutant strain, targeted mutation |
|
•
•
•
•
•
|
Genotype |
Symbol: |
Cd52/Cd52 |
Background: |
involves: 129S2/SvPas * C57BL/6 |
Zygosity: |
hm |
Has Mutant Allele: |
true |
|
•
•
•
•
•
|
Protein |
Organism: |
Mus musculus/domesticus |
Length: |
74
 |
Fragment?: |
false |
|
•
•
•
•
•
|
Protein |
Organism: |
Mus musculus/domesticus |
Length: |
74
 |
Fragment?: |
false |
|
•
•
•
•
•
|
Publication |
First Author: |
Xia MQ |
Year: |
1993 |
Journal: |
Biochem J |
Title: |
Structure of the CAMPATH-1 antigen, a glycosylphosphatidylinositol-anchored glycoprotein which is an exceptionally good target for complement lysis. |
Volume: |
293 ( Pt 3) |
|
Pages: |
633-40 |
|
•
•
•
•
•
|
Publication |
First Author: |
Kirchhoff C |
Year: |
1993 |
Journal: |
Mol Reprod Dev |
Title: |
A major mRNA of the human epididymal principal cells, HE5, encodes the leucocyte differentiation CDw52 antigen peptide backbone. |
Volume: |
34 |
Issue: |
1 |
Pages: |
8-15 |
|
•
•
•
•
•
|
Publication |
First Author: |
Xia MQ |
Year: |
1991 |
Journal: |
Eur J Immunol |
Title: |
Characterization of the CAMPATH-1 (CDw52) antigen: biochemical analysis and cDNA cloning reveal an unusually small peptide backbone. |
Volume: |
21 |
Issue: |
7 |
Pages: |
1677-84 |
|
•
•
•
•
•
|
Protein Domain |
Type: |
Family |
Description: |
CAMPATH-1 antigen (also known as CD52) is a very small glycosylphosphatidylinositol (GPI)-anchored glycoprotein present in lymphocytes , male reproductive tracts and female cumulus cells [, , , , ]. CD52 on the lymphocyte membrane surface induces regulatory T cells with immunosuppressive activities []. In the male reproductive tract, CD52 may protect sperm function from complement attack if antisperm antibody is generated in the female reproductive tracts []. It has also been suggested that CD52 has some functional roles around fertilisation in females as well as in males []. |
|
•
•
•
•
•
|
Allele |
Name: |
forkhead box P3; targeted mutation 1, Shohei Hori |
Allele Type: |
Targeted |
Attribute String: |
Reporter |
|
•
•
•
•
•
|
Strain |
Attribute String: |
coisogenic, mutant strain, targeted mutation |
|
•
•
•
•
•
|
Publication |
First Author: |
Kanamori M |
Year: |
2018 |
Journal: |
Int Immunol |
Title: |
Reprogramming of Th1 cells into regulatory T cells through rewiring of the metabolic status. |
Volume: |
30 |
Issue: |
8 |
Pages: |
357-373 |
|
•
•
•
•
•
|
Publication |
First Author: |
Stockenhuber K |
Year: |
2018 |
Journal: |
J Exp Med |
Title: |
Foxp3+ T reg cells control psoriasiform inflammation by restraining an IFN-I-driven CD8+ T cell response. |
Volume: |
215 |
Issue: |
8 |
Pages: |
1987-1998 |
|
•
•
•
•
•
|
Publication |
First Author: |
Whibley N |
Year: |
2014 |
Journal: |
Eur J Immunol |
Title: |
Expansion of Foxp3(+) T-cell populations by Candida albicans enhances both Th17-cell responses and fungal dissemination after intravenous challenge. |
Volume: |
44 |
Issue: |
4 |
Pages: |
1069-83 |
|
•
•
•
•
•
|
Publication |
First Author: |
Kendal AR |
Year: |
2011 |
Journal: |
J Exp Med |
Title: |
Sustained suppression by Foxp3+ regulatory T cells is vital for infectious transplantation tolerance. |
Volume: |
208 |
Issue: |
10 |
Pages: |
2043-53 |
|
•
•
•
•
•
|
Genotype |
Symbol: |
Foxp3/Foxp3 |
Background: |
involves: C57BL/6 |
Zygosity: |
hm |
Has Mutant Allele: |
true |
|
•
•
•
•
•
|
Publication |
First Author: |
Nakajima A |
Year: |
2017 |
Journal: |
J Immunol |
Title: |
Maternal High Fiber Diet during Pregnancy and Lactation Influences Regulatory T Cell Differentiation in Offspring in Mice. |
Volume: |
199 |
Issue: |
10 |
Pages: |
3516-3524 |
|
•
•
•
•
•
|
Publication |
First Author: |
Kurebayashi Y |
Year: |
2016 |
Journal: |
Biochem Biophys Res Commun |
Title: |
TGF-β-induced phosphorylation of Akt and Foxo transcription factors negatively regulates induced regulatory T cell differentiation. |
Volume: |
480 |
Issue: |
1 |
Pages: |
114-119 |
|
•
•
•
•
•
|
Publication |
First Author: |
Tani-Ichi S |
Year: |
2024 |
Journal: |
J Immunol |
Title: |
A RORE-dependent Intronic Enhancer in the IL-7 Receptor-α Locus Controls Glucose Metabolism via Vγ4+ γδT17 Cells. |
Volume: |
213 |
Issue: |
3 |
Pages: |
283-295 |
|
•
•
•
•
•
|
Publication |
First Author: |
Schuster M |
Year: |
2017 |
Journal: |
J Immunol |
Title: |
c-REL and IκBNS Govern Common and Independent Steps of Regulatory T Cell Development from Novel CD122-Expressing Pre-Precursors. |
Volume: |
199 |
Issue: |
3 |
Pages: |
920-930 |
|
•
•
•
•
•
|
Publication |
First Author: |
Sekiya T |
Year: |
2013 |
Journal: |
Nat Immunol |
Title: |
Nr4a receptors are essential for thymic regulatory T cell development and immune homeostasis. |
Volume: |
14 |
Issue: |
3 |
Pages: |
230-7 |
|
•
•
•
•
•
|
Publication |
First Author: |
Nishio J |
Year: |
2015 |
Journal: |
Proc Natl Acad Sci U S A |
Title: |
Requirement of full TCR repertoire for regulatory T cells to maintain intestinal homeostasis. |
Volume: |
112 |
Issue: |
41 |
Pages: |
12770-5 |
|
•
•
•
•
•
|
Publication |
First Author: |
Batra L |
Year: |
2020 |
Journal: |
J Immunol |
Title: |
Localized Immunomodulation with PD-L1 Results in Sustained Survival and Function of Allogeneic Islets without Chronic Immunosuppression. |
Volume: |
204 |
Issue: |
10 |
Pages: |
2840-2851 |
|
•
•
•
•
•
|
Publication |
First Author: |
Negishi N |
Year: |
2018 |
Journal: |
Immunohorizons |
Title: |
CD155-Transducing Signaling through TIGIT Plays an Important Role in Transmission of Tolerant State and Suppression Capacity. |
Volume: |
2 |
Issue: |
10 |
Pages: |
338-348 |
|
•
•
•
•
•
|
Publication |
First Author: |
Nadya NA |
Year: |
2017 |
Journal: |
Immunology |
Title: |
PI3K-Akt pathway enhances the differentiation of interleukin-27-induced type 1 regulatory T cells. |
Volume: |
152 |
Issue: |
3 |
Pages: |
507-516 |
|
•
•
•
•
•
|
Publication |
First Author: |
Delacher M |
Year: |
2021 |
Journal: |
Immunity |
Title: |
Single-cell chromatin accessibility landscape identifies tissue repair program in human regulatory T cells. |
Volume: |
54 |
Issue: |
4 |
Pages: |
702-720.e17 |
|
•
•
•
•
•
|
Publication |
First Author: |
Tomura M |
Year: |
2010 |
Journal: |
J Clin Invest |
Title: |
Activated regulatory T cells are the major T cell type emigrating from the skin during a cutaneous immune response in mice. |
Volume: |
120 |
Issue: |
3 |
Pages: |
883-93 |
|
•
•
•
•
•
|
Publication |
First Author: |
Kasper LH |
Year: |
2014 |
Journal: |
PLoS One |
Title: |
T-cells null for the MED23 subunit of mediator express decreased levels of KLF2 and inefficiently populate the peripheral lymphoid organs. |
Volume: |
9 |
Issue: |
7 |
Pages: |
e102076 |
|
•
•
•
•
•
|
Publication |
First Author: |
Poh KW |
Year: |
2012 |
Journal: |
J Neurosci |
Title: |
Comprehensive gene expression profiling in the prefrontal cortex links immune activation and neutrophil infiltration to antinociception. |
Volume: |
32 |
Issue: |
1 |
Pages: |
35-45 |
|
•
•
•
•
•
|
Publication |
First Author: |
Shimo Y |
Year: |
2011 |
Journal: |
Genes Cells |
Title: |
TRAF6 directs commitment to regulatory T cells in thymocytes. |
Volume: |
16 |
Issue: |
4 |
Pages: |
437-47 |
|
•
•
•
•
•
|
Publication |
First Author: |
Sekiya T |
Year: |
2018 |
Journal: |
Cell Rep |
Title: |
Nr4a Receptors Regulate Development and Death of Labile Treg Precursors to Prevent Generation of Pathogenic Self-Reactive Cells. |
Volume: |
24 |
Issue: |
6 |
Pages: |
1627-1638.e6 |
|
•
•
•
•
•
|
Publication |
First Author: |
Takiishi T |
Year: |
2017 |
Journal: |
Diabetes |
Title: |
Reversal of Diabetes in NOD Mice by Clinical-Grade Proinsulin and IL-10-Secreting Lactococcus lactis in Combination With Low-Dose Anti-CD3 Depends on the Induction of Foxp3-Positive T Cells. |
Volume: |
66 |
Issue: |
2 |
Pages: |
448-459 |
|
•
•
•
•
•
|
Publication |
First Author: |
Okamoto M |
Year: |
2023 |
Journal: |
J Invest Dermatol |
Title: |
The Inhibition of Glycolysis in T Cells by a Jak Inhibitor Ameliorates the Pathogenesis of Allergic Contact Dermatitis in Mice. |
|
|
|
|
•
•
•
•
•
|
Publication |
First Author: |
Obata Y |
Year: |
2014 |
Journal: |
Nat Immunol |
Title: |
The epigenetic regulator Uhrf1 facilitates the proliferation and maturation of colonic regulatory T cells. |
Volume: |
15 |
Issue: |
6 |
Pages: |
571-9 |
|
•
•
•
•
•
|
Publication |
First Author: |
Makita S |
Year: |
2020 |
Journal: |
Front Immunol |
Title: |
RNA-Binding Protein ZFP36L2 Downregulates Helios Expression and Suppresses the Function of Regulatory T Cells. |
Volume: |
11 |
|
Pages: |
1291 |
|
•
•
•
•
•
|
Publication |
First Author: |
Barsoumian HB |
Year: |
2016 |
Journal: |
PLoS One |
Title: |
4-1BB Signaling in Conventional T Cells Drives IL-2 Production That Overcomes CD4+CD25+FoxP3+ T Regulatory Cell Suppression. |
Volume: |
11 |
Issue: |
4 |
Pages: |
e0153088 |
|
•
•
•
•
•
|
Publication |
First Author: |
Maceiras AR |
Year: |
2017 |
Journal: |
Nat Commun |
Title: |
T follicular helper and T follicular regulatory cells have different TCR specificity. |
Volume: |
8 |
|
Pages: |
15067 |
|
•
•
•
•
•
|
Publication |
First Author: |
Tanaka S |
Year: |
2018 |
Journal: |
J Exp Med |
Title: |
Sox12 promotes T reg differentiation in the periphery during colitis. |
Volume: |
215 |
Issue: |
10 |
Pages: |
2509-2519 |
|
•
•
•
•
•
|
Publication |
First Author: |
Sekiya T |
Year: |
2021 |
Journal: |
iScience |
Title: |
Regulation of peripheral Th/Treg differentiation and suppression of airway inflammation by Nr4a transcription factors. |
Volume: |
24 |
Issue: |
3 |
Pages: |
102166 |
|
•
•
•
•
•
|
Publication |
First Author: |
Kimura D |
Year: |
2016 |
Journal: |
Immunity |
Title: |
Interleukin-27-Producing CD4(+) T Cells Regulate Protective Immunity during Malaria Parasite Infection. |
Volume: |
44 |
Issue: |
3 |
Pages: |
672-682 |
|
•
•
•
•
•
|
Publication |
First Author: |
Takahashi D |
Year: |
2020 |
Journal: |
EBioMedicine |
Title: |
Microbiota-derived butyrate limits the autoimmune response by promoting the differentiation of follicular regulatory T cells. |
Volume: |
58 |
|
Pages: |
102913 |
|
•
•
•
•
•
|
Publication |
First Author: |
Hyde M |
Year: |
2021 |
Journal: |
Eur J Immunol |
Title: |
Hyperlipidemia-induced metabolic changes in regulatory T cells result in altered function. |
Volume: |
51 |
Issue: |
11 |
Pages: |
2576-2589 |
|
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•
•
•
•
|
Publication |
First Author: |
Komatsu N |
Year: |
2009 |
Journal: |
Proc Natl Acad Sci U S A |
Title: |
Heterogeneity of natural Foxp3+ T cells: a committed regulatory T-cell lineage and an uncommitted minor population retaining plasticity. |
Volume: |
106 |
Issue: |
6 |
Pages: |
1903-8 |
|
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•
•
•
•
|
Publication |
First Author: |
Kawakami R |
Year: |
2021 |
Journal: |
Immunity |
Title: |
Distinct Foxp3 enhancer elements coordinate development, maintenance, and function of regulatory T cells. |
Volume: |
54 |
Issue: |
5 |
Pages: |
947-961.e8 |
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•
•
•
•
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Publication |
First Author: |
Sekiya T |
Year: |
2011 |
Journal: |
Nat Commun |
Title: |
The nuclear orphan receptor Nr4a2 induces Foxp3 and regulates differentiation of CD4+ T cells. |
Volume: |
2 |
|
Pages: |
269 |
|
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•
•
•
•
|
Publication |
First Author: |
Siede J |
Year: |
2016 |
Journal: |
PLoS One |
Title: |
IL-33 Receptor-Expressing Regulatory T Cells Are Highly Activated, Th2 Biased and Suppress CD4 T Cell Proliferation through IL-10 and TGFβ Release. |
Volume: |
11 |
Issue: |
8 |
Pages: |
e0161507 |
|
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•
•
•
•
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Publication |
First Author: |
Kabat AM |
Year: |
2016 |
Journal: |
Elife |
Title: |
The autophagy gene Atg16l1 differentially regulates Treg and TH2 cells to control intestinal inflammation. |
Volume: |
5 |
|
Pages: |
e12444 |
|
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•
•
•
•
|
Publication |
First Author: |
Yang T |
Year: |
2023 |
Journal: |
Cell Rep |
Title: |
RORγt(+) c-Maf(+) Vγ4(+) γδ T cells are generated in the adult thymus but do not reach the periphery. |
Volume: |
42 |
Issue: |
10 |
Pages: |
113230 |
|
•
•
•
•
•
|
Publication |
First Author: |
Regateiro FS |
Year: |
2012 |
Journal: |
J Immunol |
Title: |
Foxp3 expression is required for the induction of therapeutic tissue tolerance. |
Volume: |
189 |
Issue: |
8 |
Pages: |
3947-56 |
|
•
•
•
•
•
|
Publication |
First Author: |
Almeida-Santos J |
Year: |
2021 |
Journal: |
J Immunol |
Title: |
Interruption of Thymic Activity in Adult Mice Improves Responses to Tumor Immunotherapy. |
Volume: |
206 |
Issue: |
5 |
Pages: |
978-986 |
|
•
•
•
•
•
|
Publication |
First Author: |
Plaza-Sirvent C |
Year: |
2017 |
Journal: |
Cell Rep |
Title: |
c-FLIP Expression in Foxp3-Expressing Cells Is Essential for Survival of Regulatory T Cells and Prevention of Autoimmunity. |
Volume: |
18 |
Issue: |
1 |
Pages: |
12-22 |
|
•
•
•
•
•
|
Publication |
First Author: |
Someya K |
Year: |
2017 |
Journal: |
Int Immunol |
Title: |
Improvement of Foxp3 stability through CNS2 demethylation by TET enzyme induction and activation. |
Volume: |
29 |
Issue: |
8 |
Pages: |
365-375 |
|
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•
•
•
•
|
Publication |
First Author: |
Ono T |
Year: |
2016 |
Journal: |
Nat Commun |
Title: |
IL-17-producing γδ T cells enhance bone regeneration. |
Volume: |
7 |
|
Pages: |
10928 |
|
•
•
•
•
•
|
Publication |
First Author: |
Huang YJ |
Year: |
2014 |
Journal: |
Eur J Immunol |
Title: |
Induced and thymus-derived Foxp3⁺ regulatory T cells share a common niche. |
Volume: |
44 |
Issue: |
2 |
Pages: |
460-8 |
|
•
•
•
•
•
|
Publication |
First Author: |
Moriyama S |
Year: |
2014 |
Journal: |
J Exp Med |
Title: |
Sphingosine-1-phosphate receptor 2 is critical for follicular helper T cell retention in germinal centers. |
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211 |
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First Author: |
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2019 |
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PLoS Biol |
Title: |
miR-181a/b-1 controls thymic selection of Treg cells and tunes their suppressive capacity. |
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17 |
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Year: |
2013 |
Journal: |
Immunity |
Title: |
Agonist-selected T cell development requires strong T cell receptor signaling and store-operated calcium entry. |
Volume: |
38 |
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5 |
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881-95 |
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First Author: |
Soontrapa K |
Year: |
2011 |
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Proc Natl Acad Sci U S A |
Title: |
Prostaglandin E2-prostaglandin E receptor subtype 4 (EP4) signaling mediates UV irradiation-induced systemic immunosuppression. |
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108 |
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16 |
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6668-73 |
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First Author: |
Motomura Y |
Year: |
2011 |
Journal: |
Nat Immunol |
Title: |
The transcription factor E4BP4 regulates the production of IL-10 and IL-13 in CD4+ T cells. |
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12 |
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Year: |
2023 |
Journal: |
J Exp Med |
Title: |
Diet-mediated constitutive induction of novel IL-4+ ILC2 cells maintains intestinal homeostasis in mice. |
Volume: |
220 |
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8 |
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First Author: |
Sekiya T |
Year: |
2024 |
Journal: |
Cell Rep |
Title: |
Tonic TCR and IL-1β signaling mediate phenotypic alterations of naive CD4(+) T cells. |
Volume: |
43 |
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3 |
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113954 |
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First Author: |
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Year: |
2023 |
Journal: |
Eur J Immunol |
Title: |
Zfp362 potentiates murine colonic inflammation by constraining Treg cell function rather than promoting Th17 cell differentiation. |
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Pages: |
e2250270 |
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First Author: |
Vasquez Ayala A |
Year: |
2024 |
Journal: |
J Exp Med |
Title: |
Commensal bacteria promote type I interferon signaling to maintain immune tolerance in mice. |
Volume: |
221 |
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1 |
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First Author: |
Tsukasaki M |
Year: |
2018 |
Journal: |
Nat Commun |
Title: |
Host defense against oral microbiota by bone-damaging T cells. |
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9 |
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1 |
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First Author: |
Miyao T |
Year: |
2012 |
Journal: |
Immunity |
Title: |
Plasticity of Foxp3(+) T cells reflects promiscuous Foxp3 expression in conventional T cells but not reprogramming of regulatory T cells. |
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36 |
Issue: |
2 |
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262-75 |
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