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Traumatol.=Zhonghua chuang shang za zhi, 18, 254, 10.1016\u002Fj.cjtee.2015.11.010\nFrancos-Quijorna, 2016, IL-4 drives microglia and macrophages toward a phenotype conducive for tissue repair and functional recovery after spinal cord injury, Glia, 64, 2079, 10.1002\u002Fglia.23041\nLee, 2016, Regulation of therapeutic hypothermia on inflammatory cytokines, microglia polarization, migration and functional recovery after ischemic stroke in mice, Neurobiol. Dis., 96, 248, 10.1016\u002Fj.nbd.2016.09.013\nShi, 2016, Sinomenine enhances microglia M2 polarization and attenuates inflammatory injury in intracerebral hemorrhage, J. Neuroimmunol., 299, 28, 10.1016\u002Fj.jneuroim.2016.08.010\nXu, 2016, Methionine enkephalin regulates microglia polarization and function, Int. Immunopharmacol., 40, 90, 10.1016\u002Fj.intimp.2016.08.037\nPlastira, 2016, 1-Oleyl-lysophosphatidic acid (LPA) promotes polarization of BV-2 and primary murine microglia towards an M1-like phenotype, J. 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Neurosci., 19, 987, 10.1038\u002Fnn.4338\nWang, 2016, scAAV9-VEGF prolongs the survival of transgenic ALS mice by promoting activation of M2 microglia and the PI3K\u002FAkt pathway, Brain Res., 1648, 1, 10.1016\u002Fj.brainres.2016.06.043\nLi, 2016, mTORC1 pathway disruption ameliorates brain inflammation following stroke via a shift in microglia phenotype from M1 type to M2 type, FASEB J., 30, 3388, 10.1096\u002Ffj.201600495R\nMeng, 2016, Neuronal soluble fas ligand drives M1-microglia polarization after cerebral ischemia, CNS Neurosci. Ther., 22, 771, 10.1111\u002Fcns.12575\nArroba, 2016, Modulation of microglia polarization dynamics during diabetic retinopathy in db\u002Fdb mice, Biochim. Biophys. Acta, 1862, 1663, 10.1016\u002Fj.bbadis.2016.05.024\nEsslinger, 2016, Schizophrenia associated sensory gating deficits develop after adolescent microglia activation, Brain Behav. Immun., 58, 99, 10.1016\u002Fj.bbi.2016.05.018\nPareek, 2014, MiR-155 induction in microglial cells suppresses Japanese encephalitis virus replication and negatively modulates innate immune responses, J. Neuroinflammation, 11, 97, 10.1186\u002F1742-2094-11-97\nZhuang, 2012, A novel regulator of macrophage activation: miR-223 in obesity-associated adipose tissue inflammation, Circulation, 125, 2892, 10.1161\u002FCIRCULATIONAHA.111.087817\nSvahn, 2016, miR-124 Contributes to the functional maturity of microglia, Dev. Neurobiol., 76, 507, 10.1002\u002Fdneu.22328\nRao, 2013, Ikaros limits basophil development by suppressing C\u002FEBP-alpha expression, Blood, 122, 2572, 10.1182\u002Fblood-2013-04-494625\nRegalo, 2010, C\u002FEBP alpha expression is associated with homeostasis of the gastric epithelium and with gastric carcinogenesis, Lab. Investig. J. Tech. 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Using TESS to predict transcription factor binding sites in DNA sequence. 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cells, Cancer Research, 56, 2590\nJones, 2007, The epigenomics of cancer, Cell, 128, 683, 10.1016\u002Fj.cell.2007.01.029\nGaffen, 2001, Signaling domains of the interleukin 2 receptor, Cytokine, 14, 63, 10.1006\u002Fcyto.2001.0862\nLin, 1997, Signaling from the IL-2 receptor to the nucleus, Cytokine & Growth Factor Reviews, 8, 313, 10.1016\u002FS1359-6101(97)00021-X\nSchimpl, 2002, IL-2 and autoimmune disease, Cytokine & Growth Factor Reviews, 13, 369, 10.1016\u002FS1359-6101(02)00022-9\nNelson, 1998, Biology of the interleukin-2 receptor, Advances in Immunology, 70, 1, 10.1016\u002FS0065-2776(08)60386-7\nBessoles, 2008, IL-2 triggers specific signaling pathways in human NKT cells leading to the production of pro- and anti-inflammatory cytokines, Journal of Leukocyte Biology, 84, 224, 10.1189\u002Fjlb.1007669\nCameron, 1999, Synergy of demethylation and histone deacetylase inhibition in the re-expression of genes silenced in cancer, Nature Genetics, 21, 103, 10.1038\u002F5047\nKoyama, 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Oncol., 26, 3426, 10.1200\u002FJCO.2007.15.7842\nStern, 1992, The side-effect profile of GM-CSF, Infection, 20, S124, 10.1007\u002FBF01705031\nNakanishi, 1999, Positively charged liposome functions as an efficient immunoadjuvant in inducing cell-mediated immune response to soluble proteins, J. Control. Release, 61, 233, 10.1016\u002FS0168-3659(99)00097-8\nPerez, 2010, Results from a phase I clinical study of the novel Ii-Key\u002FHER-2\u002Fneu (776–790) hybrid peptide vaccine in patients with prostate cancer, Clin. Cancer Res., 16, 3495, 10.1158\u002F1078-0432.CCR-10-0085\nFirouzmand, 2013, Induction of protection against leishmaniasis in susceptible BALB\u002Fc mice using simple DOTAP cationic nanoliposomes containing soluble Leishmania antigen (SLA), Acta Trop., 128, 528, 10.1016\u002Fj.actatropica.2013.07.021\nReddy, 1991, pH sensitive liposomes provide an efficient means of sensitizing target cells to class I restricted CTL recognition of a soluble protein, J. Immunol. Methods, 141, 157, 10.1016\u002F0022-1759(91)90142-3\nNair, 1992, Soluble proteins delivered to dendritic cells via pH-sensitive liposomes induce primary cytotoxic T lymphocyte responses in vitro, J. Exp. Med., 175, 609, 10.1084\u002Fjem.175.2.609\nChang, 2001, Development of Th1-mediated CD8+ effector T cells by vaccination with epitope peptides encapsulated in pH-sensitive liposomes, Vaccine, 19, 3608, 10.1016\u002FS0264-410X(01)00104-9\nLuo, 1998, Induction of V3-specific cytotoxic T lymphocyte responses by HIVgag particles carrying multiple immunodominant V3 epitopes of gp120, Virology, 240, 316, 10.1006\u002Fviro.1997.8922\nKrieg, 2000, Immune effects and mechanisms of action of CpG motifs, Vaccine, 19, 618, 10.1016\u002FS0264-410X(00)00249-8\nMansourian, 2014, Effective induction of anti-tumor immunity using p5 HER-2\u002Fneu derived peptide encapsulated in fusogenic DOTAP cationic liposomes co-administrated with CpG-ODN, Immunol. 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