-
1
-
-
57349142454
-
Identification and functional characterization of allosteric agonists for the G protein-coupled receptor FFA2
-
Lee T, Schwandner R, Swaminath G, et al. Identification and functional characterization of allosteric agonists for the G protein-coupled receptor FFA2. Mol Pharmacol 2008;74:1599–609
-
(2008)
Mol Pharmacol
, vol.74
, pp. 1599-1609
-
-
Lee, T.1
Schwandner, R.2
Swaminath, G.3
-
2
-
-
0036889625
-
Arginine butyrate increases the cytotoxicity of DAB389IL-2 in leukemia and lymphoma cells by upregulation of IL-2Rβ gene
-
Shao RH, Tian X, Gorgun G, et al. Arginine butyrate increases the cytotoxicity of DAB389IL-2 in leukemia and lymphoma cells by upregulation of IL-2Rβ gene. Leuk Res 2002;26:1077–83
-
(2002)
Leuk Res
, vol.26
, pp. 1077-1083
-
-
Shao, R.H.1
Tian, X.2
Gorgun, G.3
-
3
-
-
84920836032
-
Epigenetic therapy of cancer with histone deacetylase inhibitors
-
Lakshmaiah KC, Jacob LA, Aparna S, et al. Epigenetic therapy of cancer with histone deacetylase inhibitors. J Cancer Res Ther 2014;10:469–78
-
(2014)
J Cancer Res Ther
, vol.10
, pp. 469-478
-
-
Lakshmaiah, K.C.1
Jacob, L.A.2
Aparna, S.3
-
5
-
-
84891363464
-
The role of short-chain fatty acids in health and disease
-
Tan J, McKenzie C, Potamitis M, et al. The role of short-chain fatty acids in health and disease. Adv Immunol 2014;121:91–119
-
(2014)
Adv Immunol
, vol.121
, pp. 91-119
-
-
Tan, J.1
McKenzie, C.2
Potamitis, M.3
-
6
-
-
84881068658
-
The microbial metabolites, short-chain fatty acids, regulate colonic Treg cell homeostasis
-
Smith PM, Howitt MR, Panikov N, et al. The microbial metabolites, short-chain fatty acids, regulate colonic Treg cell homeostasis. Science 2013;341:569–73
-
(2013)
Science
, vol.341
, pp. 569-573
-
-
Smith, P.M.1
Howitt, M.R.2
Panikov, N.3
-
7
-
-
70350666634
-
Regulation of inflammatory responses by gut microbiota and chemoattractant receptor GPR43
-
Maslowski KM, Vieira AT, Ng A, et al. Regulation of inflammatory responses by gut microbiota and chemoattractant receptor GPR43. Nature 2009;461:1282–6
-
(2009)
Nature
, vol.461
, pp. 1282-1286
-
-
Maslowski, K.M.1
Vieira, A.T.2
Ng, A.3
-
8
-
-
84893794477
-
G protein-coupled receptor 43 moderates gut inflammation through cytokine regulation from mononuclear cells
-
Masui R, Sasaki M, Funaki Y, et al. G protein-coupled receptor 43 moderates gut inflammation through cytokine regulation from mononuclear cells. Inflamm Bowel Dis 2013;19:2848–56
-
(2013)
Inflamm Bowel Dis
, vol.19
, pp. 2848-2856
-
-
Masui, R.1
Sasaki, M.2
Funaki, Y.3
-
9
-
-
84926367699
-
Metabolite-sensing receptors GPR43 and GPR109A facilitate dietary fibre-induced gut homeostasis through regulation of the inflammasome
-
Macia L, Tan J, Vieira AT, et al. Metabolite-sensing receptors GPR43 and GPR109A facilitate dietary fibre-induced gut homeostasis through regulation of the inflammasome. Nat Commun 2015;6:
-
(2015)
Nat Commun
, vol.6
-
-
Macia, L.1
Tan, J.2
Vieira, A.T.3
-
10
-
-
0032732788
-
Relationships between chromatin organization and DNA methylation in determining gene expression
-
Jones PL, Wolffe AP. Relationships between chromatin organization and DNA methylation in determining gene expression. Semin Cancer Biol 1999;9:339–47
-
(1999)
Semin Cancer Biol
, vol.9
, pp. 339-347
-
-
Jones, P.L.1
Wolffe, A.P.2
-
11
-
-
85027892689
-
Black Raspberries Enhance Natural Killer Cell Infiltration into the Colon and Suppress the Progression of Colorectal Cancer
-
Pan P, Kang S, Wang Y, et al. Black Raspberries Enhance Natural Killer Cell Infiltration into the Colon and Suppress the Progression of Colorectal Cancer. Front Immunol 2017;8:
-
(2017)
Front Immunol
, vol.8
-
-
Pan, P.1
Kang, S.2
Wang, Y.3
-
12
-
-
84943804507
-
Black raspberries suppress colonic adenoma development in ApcMin/+ mice: relation to metabolite profiles
-
Pan P, Skaer CW, Wang HT, et al. Black raspberries suppress colonic adenoma development in ApcMin/+ mice: relation to metabolite profiles. Carcin 2015;36:1245–53
-
(2015)
Carcin
, vol.36
, pp. 1245-1253
-
-
Pan, P.1
Skaer, C.W.2
Wang, H.T.3
-
13
-
-
85027864388
-
Loss of free fatty acid receptor 2 enhances colonic adenoma development and reduces the chemopreventive effects of black raspberries in ApcMin/+ mice
-
Pan P, C WS, Wang HT, et al. Loss of free fatty acid receptor 2 enhances colonic adenoma development and reduces the chemopreventive effects of black raspberries in ApcMin/+ mice. Carcin 2017;38:86–93
-
(2017)
Carcin
, vol.38
, pp. 86-93
-
-
Pan, P.1
Ws, C.2
Wang, H.T.3
-
14
-
-
85059296350
-
Progress on isolation and short term culture of primary human intestinal epithelial cells (IEC)
-
Grossmann J, Walther K, Artinger M, Kiessling S, Steinkamp M, Schultz M, Scholmerich J, Rogler G. Progress on isolation and short term culture of primary human intestinal epithelial cells (IEC). Gastroenterology 2002;122:A373–A
-
(2002)
Gastroenterology
, vol.122
, pp. A373-A
-
-
Grossmann, J.1
Walther, K.2
Artinger, M.3
Kiessling, S.4
Steinkamp, M.5
Schultz, M.6
Scholmerich, J.7
Rogler, G.8
-
15
-
-
84888984717
-
Dietary black raspberries modulate DNA methylation in dextran sodium sulfate (DSS)-induced ulcerative colitis
-
Wang L-S, Kuo C-T, Stoner K, et al. Dietary black raspberries modulate DNA methylation in dextran sodium sulfate (DSS)-induced ulcerative colitis. Carcinogenesis 2013;34:2842–50
-
(2013)
Carcinogenesis
, vol.34
, pp. 2842-2850
-
-
Wang, L.-S.1
Kuo, C.-T.2
Stoner, K.3
-
16
-
-
84937965634
-
Chronic inflammation induces a novel epigenetic program that is conserved in intestinal adenomas and in colorectal cancer
-
Abu-Remaileh M, Bender S, Raddatz G, et al. Chronic inflammation induces a novel epigenetic program that is conserved in intestinal adenomas and in colorectal cancer. Cancer Res 2015;75:2120–30
-
(2015)
Cancer Res
, vol.75
, pp. 2120-2130
-
-
Abu-Remaileh, M.1
Bender, S.2
Raddatz, G.3
-
17
-
-
84894055321
-
SOCS1 hypermethylation mediated by DNMT1 is associated with lipopolysaccharide-induced inflammatory cytokines in macrophages
-
Cheng C, Huang C, Ma T-T, et al. SOCS1 hypermethylation mediated by DNMT1 is associated with lipopolysaccharide-induced inflammatory cytokines in macrophages. Toxicol Lett 2014;225:488–97
-
(2014)
Toxicol Lett
, vol.225
, pp. 488-497
-
-
Cheng, C.1
Huang, C.2
Ma, T.-T.3
-
18
-
-
84874395887
-
Short-chain free fatty acid receptors FFA2/GPR43 and FFA3/GPR41 as new potential therapeutic targets
-
Ulven T. Short-chain free fatty acid receptors FFA2/GPR43 and FFA3/GPR41 as new potential therapeutic targets. Front Endocrin 2012;3:111
-
(2012)
Front Endocrin
, vol.3
, pp. 111
-
-
Ulven, T.1
-
19
-
-
0038363378
-
The Orphan G protein-coupled receptors GPR41 and GPR43 are activated by propionate and other short chain carboxylic acids
-
Brown AJ, Goldsworthy SM, Barnes AA, et al. The Orphan G protein-coupled receptors GPR41 and GPR43 are activated by propionate and other short chain carboxylic acids. J Biol Chem 2003;278:11312–9
-
(2003)
J Biol Chem
, vol.278
, pp. 11312-11319
-
-
Brown, A.J.1
Goldsworthy, S.M.2
Barnes, A.A.3
-
20
-
-
84876018174
-
GPR43/FFA2: physiopathological relevance and therapeutic prospects
-
Bindels LB, Dewulf EM, Delzenne NM. GPR43/FFA2: physiopathological relevance and therapeutic prospects. Trends Pharmacol Sci 2013;34:226–32
-
(2013)
Trends Pharmacol Sci
, vol.34
, pp. 226-232
-
-
Bindels, L.B.1
Dewulf, E.M.2
Delzenne, N.M.3
-
21
-
-
0037453280
-
Identification of a free fatty acid receptor, FFA2R, expressed on leukocytes and activated by short-chain fatty acids
-
Nilsson NE, Kotarsky K, Owman C, et al. Identification of a free fatty acid receptor, FFA2R, expressed on leukocytes and activated by short-chain fatty acids. Biochem Biophys Res Commun 2003;303:1047–52
-
(2003)
Biochem Biophys Res Commun
, vol.303
, pp. 1047-1052
-
-
Nilsson, N.E.1
Kotarsky, K.2
Owman, C.3
-
22
-
-
84893794477
-
G protein-coupled receptor 43 moderates gut inflammation through cytokine regulation from mononuclear cells
-
Masui R, Sasaki M, Funaki Y, et al. G protein-coupled receptor 43 moderates gut inflammation through cytokine regulation from mononuclear cells. Inflam Bowel Dis 2013;19:2848–56
-
(2013)
Inflam Bowel Dis
, vol.19
, pp. 2848-2856
-
-
Masui, R.1
Sasaki, M.2
Funaki, Y.3
-
23
-
-
84880620577
-
Short-chain fatty acids activate GPR41 and GPR43 on intestinal epithelial cells to promote inflammatory responses in mice
-
Kim MH, Kang SG, Park JH, et al. Short-chain fatty acids activate GPR41 and GPR43 on intestinal epithelial cells to promote inflammatory responses in mice. Gastroenterology 2013;145:396–406 e1–10
-
(2013)
Gastroenterology
, vol.145
, pp. 396-406
-
-
Kim, M.H.1
Kang, S.G.2
Park, J.H.3
-
24
-
-
84926367699
-
Metabolite-sensing receptors GPR43 and GPR109A facilitate dietary fibre-induced gut homeostasis through regulation of the inflammasome
-
Macia L, Tan J, Vieira AT, et al. Metabolite-sensing receptors GPR43 and GPR109A facilitate dietary fibre-induced gut homeostasis through regulation of the inflammasome. Nat Commun 2015;6:6734
-
(2015)
Nat Commun
, vol.6
, pp. 6734
-
-
Macia, L.1
Tan, J.2
Vieira, A.T.3
-
25
-
-
84976532755
-
Aberrant DNA methylation of WNT pathway genes in the development and progression of CIMP-negative colorectal cancer
-
Galamb O, Kalmar A, Peterfia B, et al. Aberrant DNA methylation of WNT pathway genes in the development and progression of CIMP-negative colorectal cancer. Epigenetics 2016;11:588–602
-
(2016)
Epigenetics
, vol.11
, pp. 588-602
-
-
Galamb, O.1
Kalmar, A.2
Peterfia, B.3
-
26
-
-
85019575186
-
Analysis of the DNA methylation level of cancer-related genes in colorectal cancer and the surrounding normal mucosa
-
Sugai T, Yoshida M, Eizuka M, et al. Analysis of the DNA methylation level of cancer-related genes in colorectal cancer and the surrounding normal mucosa. Clin Epigenet 2017;9:55
-
(2017)
Clin Epigenet
, vol.9
, pp. 55
-
-
Sugai, T.1
Yoshida, M.2
Eizuka, M.3
-
27
-
-
85027926963
-
Association of aberrant DNA methylation in Apc(min/+) mice with the epithelial-mesenchymal transition and Wnt/beta-catenin pathways: genome-wide analysis using MeDIP-seq
-
Guo Y, Lee JH, Shu L, et al. Association of aberrant DNA methylation in Apc(min/+) mice with the epithelial-mesenchymal transition and Wnt/beta-catenin pathways: genome-wide analysis using MeDIP-seq. Cell Biosci 2015;5:24
-
(2015)
Cell Biosci
, vol.5
, pp. 24
-
-
Guo, Y.1
Lee, J.H.2
Shu, L.3
-
28
-
-
84860014262
-
Overexpression of Dickkopf-3 induces apoptosis through mitochondrial pathway in human colon cancer
-
Yang ZR, Dong WG, Lei XF, et al. Overexpression of Dickkopf-3 induces apoptosis through mitochondrial pathway in human colon cancer. Wjg 2012;18:1590–601
-
(2012)
Wjg
, vol.18
, pp. 1590-1601
-
-
Yang, Z.R.1
Dong, W.G.2
Lei, X.F.3
-
29
-
-
84991746875
-
Mechanism of suppressors of cytokine signaling 1 inhibition of epithelial-mesenchymal transition signaling through ROS regulation in colon cancer cells: suppression of Src leading to thioredoxin up-regulation
-
Jung SH, Kim SM, Lee CE. Mechanism of suppressors of cytokine signaling 1 inhibition of epithelial-mesenchymal transition signaling through ROS regulation in colon cancer cells: suppression of Src leading to thioredoxin up-regulation. Oncotarget 2016;7:62559–71
-
(2016)
Oncotarget
, vol.7
, pp. 62559-62571
-
-
Jung, S.H.1
Kim, S.M.2
Lee, C.E.3
-
30
-
-
84903536219
-
Suppressor of cytokine signaling 1 modulates invasion and metastatic potential of colorectal cancer cells
-
David M, Naudin C, Letourneur M, et al. Suppressor of cytokine signaling 1 modulates invasion and metastatic potential of colorectal cancer cells. Mol Oncol 2014;8:942–55
-
(2014)
Mol Oncol
, vol.8
, pp. 942-955
-
-
David, M.1
Naudin, C.2
Letourneur, M.3
-
31
-
-
0036830642
-
Role of histone H3 lysine 27 methylation in Polycomb-group silencing
-
Cao R, Wang L, Wang H, et al. Role of histone H3 lysine 27 methylation in Polycomb-group silencing. Science 2002;298:1039–43
-
(2002)
Science
, vol.298
, pp. 1039-1043
-
-
Cao, R.1
Wang, L.2
Wang, H.3
-
32
-
-
57649124289
-
Repression of E-cadherin by the polycomb group protein EZH2 in cancer
-
Cao Q, Yu J, Dhanasekaran SM, et al. Repression of E-cadherin by the polycomb group protein EZH2 in cancer. Oncogene 2008;27:7274–84
-
(2008)
Oncogene
, vol.27
, pp. 7274-7284
-
-
Cao, Q.1
Yu, J.2
Dhanasekaran, S.M.3
-
33
-
-
52949134856
-
Physiological concentrations of short-chain fatty acids immediately suppress colonic epithelial permeability
-
Suzuki T, Yoshida S, Hara H. Physiological concentrations of short-chain fatty acids immediately suppress colonic epithelial permeability. Br J Nutr 2008;100:297–305
-
(2008)
Br J Nutr
, vol.100
, pp. 297-305
-
-
Suzuki, T.1
Yoshida, S.2
Hara, H.3
-
34
-
-
51449119654
-
Roles of short-chain fatty acids receptors, GPR41 and GPR43 on colonic functions
-
Tazoe H, Otomo Y, Kaji I, et al. Roles of short-chain fatty acids receptors, GPR41 and GPR43 on colonic functions. J Physiol Pharmacol 2008;59 Suppl 2:251–62
-
(2008)
J Physiol Pharmacol
, vol.59
, pp. 251-262
-
-
Tazoe, H.1
Otomo, Y.2
Kaji, I.3
-
35
-
-
84924758166
-
Gut microbiota-derived short-chain Fatty acids, T cells, and inflammation
-
Kim CH, Park J, Kim M. Gut microbiota-derived short-chain Fatty acids, T cells, and inflammation. Immune Netw 2014;14:277–88
-
(2014)
Immune Netw
, vol.14
, pp. 277-288
-
-
Kim, C.H.1
Park, J.2
Kim, M.3
-
36
-
-
80054980812
-
Regulation of inflammation by short chain fatty acids
-
Vinolo MA, Rodrigues HG, Nachbar RT, et al. Regulation of inflammation by short chain fatty acids. Nutrients 2011;3:858–76
-
(2011)
Nutrients
, vol.3
, pp. 858-876
-
-
Vinolo, M.A.1
Rodrigues, H.G.2
Nachbar, R.T.3
-
37
-
-
78650618692
-
G-protein-coupled receptor for short-chain fatty acids suppresses colon cancer
-
Tang Y, Chen Y, Jiang H, et al. G-protein-coupled receptor for short-chain fatty acids suppresses colon cancer. Int J Cancer 2011;128:847–56
-
(2011)
Int J Cancer
, vol.128
, pp. 847-856
-
-
Tang, Y.1
Chen, Y.2
Jiang, H.3
-
38
-
-
38849088190
-
Competitive inhibition of histone deacetylase activity by trichostatin A and butyrate
-
Sekhavat A, Sun JM, Davie JR. Competitive inhibition of histone deacetylase activity by trichostatin A and butyrate. Biochem Cell Biol 2007;85:751–8
-
(2007)
Biochem Cell Biol
, vol.85
, pp. 751-758
-
-
Sekhavat, A.1
Sun, J.M.2
Davie, J.R.3
-
39
-
-
0038676409
-
Inhibition of histone deacetylase activity by butyrate
-
Davie JR. Inhibition of histone deacetylase activity by butyrate. J Nutr. 2003;133:2485S–93S
-
(2003)
J Nutr
, vol.133
, pp. 2485S-2493S
-
-
Davie, J.R.1
-
40
-
-
33751074139
-
Cellular expression of monocarboxylate transporters (MCT) in the digestive tract of the mouse, rat, and humans, with special reference to slc5a8
-
Iwanaga T, Takebe K, Kato I, et al. Cellular expression of monocarboxylate transporters (MCT) in the digestive tract of the mouse, rat, and humans, with special reference to slc5a8. Biomed Res 2006;27:243–54
-
(2006)
Biomed Res
, vol.27
, pp. 243-254
-
-
Iwanaga, T.1
Takebe, K.2
Kato, I.3
-
41
-
-
84863397848
-
The monocarboxylate transporter family – role and regulation
-
Halestrap AP, Wilson MC. The monocarboxylate transporter family – role and regulation. IUBMB Life 2012;64:109–19
-
(2012)
IUBMB Life
, vol.64
, pp. 109-119
-
-
Halestrap, A.P.1
Wilson, M.C.2
-
42
-
-
48649087037
-
Inhibition of histone-deacetylase activity by short-chain fatty acids and some polyphenol metabolites formed in the colon
-
Waldecker M, Kautenburger T, Daumann H, et al. Inhibition of histone-deacetylase activity by short-chain fatty acids and some polyphenol metabolites formed in the colon. J Nutri Biochem 2008;19:587–93
-
(2008)
J Nutri Biochem
, vol.19
, pp. 587-593
-
-
Waldecker, M.1
Kautenburger, T.2
Daumann, H.3
-
43
-
-
85040180462
-
FFAR2-FFAR3 receptor heteromerization modulates short-chain fatty acid sensing
-
Ang Z, Xiong D, Wu M, et al. FFAR2-FFAR3 receptor heteromerization modulates short-chain fatty acid sensing. Faseb J 2018;32:289–303
-
(2018)
Faseb J
, vol.32
, pp. 289-303
-
-
Ang, Z.1
Xiong, D.2
Wu, M.3
-
44
-
-
84922163095
-
Short-chain fatty acids induce both effector and regulatory T cells by suppression of histone deacetylases and regulation of the mTOR-S6K pathway
-
Park J, Kim M, Kang SG, et al. Short-chain fatty acids induce both effector and regulatory T cells by suppression of histone deacetylases and regulation of the mTOR-S6K pathway. Mucosal Immunol 2015;8:80–93
-
(2015)
Mucosal Immunol
, vol.8
, pp. 80-93
-
-
Park, J.1
Kim, M.2
Kang, S.G.3
-
45
-
-
84997629668
-
An essential role of Ffar2 (Gpr43) in dietary fibre-mediated promotion of healthy composition of gut microbiota and suppression of intestinal carcinogenesis
-
Sivaprakasam S, Gurav A, Paschall AV, et al. An essential role of Ffar2 (Gpr43) in dietary fibre-mediated promotion of healthy composition of gut microbiota and suppression of intestinal carcinogenesis. Oncogenesis 2016;5:e238
-
(2016)
Oncogenesis
, vol.5
-
-
Sivaprakasam, S.1
Gurav, A.2
Paschall, A.V.3
-
46
-
-
84983343680
-
Targeting natural killer cells in cancer immunotherapy
-
Guillerey C, Huntington ND, Smyth MJ. Targeting natural killer cells in cancer immunotherapy. Nat Immunol 2016;17:1025–36
-
(2016)
Nat Immunol
, vol.17
, pp. 1025-1036
-
-
Guillerey, C.1
Huntington, N.D.2
Smyth, M.J.3
-
47
-
-
84891876304
-
Regulatory T cell subsets in human cancer: are they regulating for or against tumor progression?
-
Whiteside TL. Regulatory T cell subsets in human cancer: are they regulating for or against tumor progression? Cancer Immunol Immunother 2014;63:67–72
-
(2014)
Cancer Immunol Immunother
, vol.63
, pp. 67-72
-
-
Whiteside, T.L.1
-
48
-
-
84975230323
-
GPR41 and GPR43 in obesity and inflammation – protective or causative?
-
Ang Z, Ding JL. GPR41 and GPR43 in obesity and inflammation – protective or causative? Front Immunol 2016;7:
-
(2016)
Front Immunol
, vol.7
-
-
Ang, Z.1
Ding, J.L.2
-
49
-
-
73349123182
-
G protein-coupled receptor 43 is essential for neutrophil recruitment during intestinal inflammation
-
Sina C, Gavrilova O, Förster M, et al. G protein-coupled receptor 43 is essential for neutrophil recruitment during intestinal inflammation. J Immunol 2009;183:7514–22
-
(2009)
J Immunol
, vol.183
, pp. 7514-7522
-
-
Sina, C.1
Gavrilova, O.2
Förster, M.3
|