[1]
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Comprehensive analysis of chemokine-induced cAMP-inhibitory responses using a real-time luminescent biosensor: V. Felouzis, et al.; Cell. Signal. 28, 120 (2016), Application(s): Cell culture , Abstract;
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[3]
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In vivo immunomodulatory effects of adipose-derived mesenchymal stem cells conditioned medium in experimental autoimmune encephalomyelitis: F. Yousefi, et al.; Immunol. Lett. 172, 94 (2016),Application(s): Injection into mice, Abstract; |
[4]
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Metformin ameliorates the development of experimental autoimmune encephalomyelitis by regulating T helper 17 and regulatory T cells in mice: Y. Sun, et al.; J. Neuroimmunol. 292, 58 (2016), Application(s):Injected into mice, Abstract; Full Text |
[5]
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Treatment with NAD+ inhibited experimental autoimmune encephalomyelitis by activating AMPK/SIRT1 signaling pathway and modulating Th1/Th17 immune responses in mice: J. Wang, et al.; Int. Immunopharmacol. 39, 287 (2016), Application(s): Experimental autoimmune encephalomyelitis (EAE) induction, mice, Abstract; |
[6]
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GABAB receptors inhibit low-voltage activated and high-voltage activated Ca2+ channels in sensory neurons via distinct mechanisms: D. Huang, et al.; Biochem. Biophys. Res. Commun. 465, 188 (2015), Application(s):LVA and HVA channel inhibition , Abstract; |
[7]
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Protective effect of a novel Rho kinase inhibitor WAR-5 in experimental autoimmune encephalomyelitis by modulating inflammatory response and neurotrophic factors: Y.H. Li, et al.; Exp. Mol. Pathol. 99, 220 (2015),Application(s): Injection into mouse abdominal cavity, Abstract; |
[8]
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Amidate prodrugs of 9-[2-(phosphonomethoxy)ethyl]adenine as inhibitors of adenylate cyclase toxin from Bordetella pertussis: M. Šmídková, et al.; Antimicrob. Agents Chemother. 58, 664 (2014), Application(s): Cell Culture, Abstract; Full Text |
[9]
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Myelin Oligodendrocyte Glycoprotein (MOG35-55) Induced Experimental Autoimmune Encephalomyelitis (EAE) in C57BL/6 Mice: S. Bittner, et al.; J. Vis. Exp. 86, e51275 (2014), Application(s): Immunization,Abstract; Full Text |
[10]
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The therapeutic effects of MSc1 nanocomplex, synthesized by nanochelating technology, on experimental autoimmune encephalomyelitic C57/BL6 mice: S. Fakharzadeh, et al.; Int. J. Nanomedicine 9, 3841 (2014),Application(s): Immunization, Abstract; Full Text |
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Human apolipoprotein AI induces cyclooxygenase-2 expression and prostaglandin I-2 release in endothelial cells through ATP-binding cassette transporter A1: D. Liu, et al.; Am. J. Physiol. Cell Physiol. 301, C739 (2011), Application(s): Treatment of HUVEC, Abstract; Full Text |
[12]
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A proposed mechanism of ADP-ribosylation catalyzed by the pertussis toxin S1 subunit: C. Locht& R. Antoine; Biochimie 77, 333 (1995), Abstract; |
[13]
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Pertussis toxin and target eukaryotic cells: binding, entry, and activation: H.R. Kaslow& D.L. Burns; FASEB J.6, 2684 (1992), Abstract; |
[14]
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Structure-activity analysis of the activation of pertussis toxin: H.R. Kaslow et al.; Biochemistry 26, 123 (1987),Abstract; |
[15]
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Induction of a novel morphological response in Chinese hamster ovary cells by pertussis toxin: E.L. Hewlett et al.; Infect. Immun. 40, 1198 (1983), Abstract; |
[16]
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Subunit structure of islet-activating protein, pertussis toxin, in conformity with the A-B model: M. Tamura et al.; Biochemistry 21, 5516 (1982), Abstract; |