Fasudil-modified macrophages reduce inflammation and regulate the immune response in experimental autoimmune encephalomyelitis
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Qing Wang | Z. Chai | Cungen Ma | Rong Liu | Chun-yun Liu | B. Xiao | Shang-De Guo | Minfang Guo
[1] P. Calabresi,et al. Animal models to investigate the effects of inflammation on remyelination in multiple sclerosis , 2022, Frontiers in Molecular Neuroscience.
[2] X. Kong,et al. Baicalein inhibits the polarization of microglia/macrophages to the M1 phenotype by targeting STAT1 in EAE mice. , 2022, International immunopharmacology.
[3] Xiaowu Dong,et al. Discovery of new macrophage M2 polarization modulators as multiple sclerosis treatment agents that enable the inflammation microenvironment remodeling. , 2022, European journal of medicinal chemistry.
[4] M. Mahmoudi,et al. Evaluation of the immunoregulatory effect of Dicrocoelium dendriticum eggs on inflammatory and anti‐inflammatory cytokines in EAE model , 2022, Parasite immunology.
[5] Hongbo Hu,et al. Ferroptosis promotes T-cell activation-induced neurodegeneration in multiple sclerosis , 2022, Cellular & Molecular Immunology.
[6] S. Abediankenari,et al. Treatment of EAE mice with Treg, G-MDSC and IL-2: a new insight into cell therapy for multiple sclerosis. , 2022, Immunotherapy.
[7] Qing Wang,et al. Advantages of Rho-associated kinases and their inhibitor fasudil for the treatment of neurodegenerative diseases , 2022, Neural regeneration research.
[8] Li-Mei Wang,et al. NR4A1 agonist cytosporone B attenuates neuroinflammation in a mouse model of multiple sclerosis , 2022, Neural regeneration research.
[9] Salman Khan,et al. Magnolol prevented brain injury through the modulation of Nrf2-dependent oxidative stress and apoptosis in PLP-induced mouse model of multiple sclerosis , 2022, Naunyn-Schmiedeberg's Archives of Pharmacology.
[10] A. Nadeem,et al. Acetyl-11-keto-β-boswellic acid improves clinical symptoms through modulation of Nrf2 and NF-κB pathways in SJL/J mouse model of experimental autoimmune encephalomyelitis. , 2022, International immunopharmacology.
[11] Wengang Song,et al. MEF2C promotes M1 macrophage polarization and Th1 responses , 2022, Cellular & Molecular Immunology.
[12] Peizeng Yang,et al. Progranulin Suppressed Autoimmune Uveitis and Autoimmune Neuroinflammation by Inhibiting Th1/Th17 Cells and Promoting Treg Cells and M2 Macrophages , 2022, Neurology: Neuroimmunology & Neuroinflammation.
[13] Xiaoling Liu,et al. Circ_0000518 Promotes Macrophage/Microglia M1 Polarization via the FUS/CaMKKβ/AMPK Pathway to Aggravate Multiple Sclerosis , 2021, Neuroscience.
[14] C. Moore,et al. TAAR1 Expression in Human Macrophages and Brain Tissue: A Potential Novel Facet of MS Neuroinflammation , 2021, International journal of molecular sciences.
[15] Qing Wang,et al. Mdivi-1 Modulates Macrophage/Microglial Polarization in Mice with EAE via the Inhibition of the TLR2/4-GSK3β-NF-κB Inflammatory Signaling Axis , 2021, Molecular Neurobiology.
[16] J. Parratt,et al. Multiple Sclerosis: Microglia, Monocytes, and Macrophage-Mediated Demyelination , 2021, Journal of neuropathology and experimental neurology.
[17] J. Menéndez,et al. Emerging targets in drug discovery against neurodegenerative diseases: Control of synapsis disfunction by the RhoA/ROCK pathway. , 2021, European journal of medicinal chemistry.
[18] Shuxin Jin,et al. Epigallocatechin-3 gallate regulates macrophage subtypes and immunometabolism to ameliorate experimental autoimmune encephalomyelitis. , 2021, Cellular immunology.
[19] I. Sargiannidou,et al. Dysregulation of Blood-Brain Barrier and Exacerbated Inflammatory Response in Cx47-Deficient Mice after Induction of EAE , 2021, Pharmaceuticals.
[20] D. Meerzaman,et al. TNF plays a crucial role in inflammation by signaling via T cell TNFR2 , 2021, Proceedings of the National Academy of Sciences.
[21] S. Halalkhor,et al. Piperine Improves Experimental Autoimmune Encephalomyelitis (EAE) in Lewis Rats Through its Neuroprotective, Anti-inflammatory, and Antioxidant Effects , 2021, Molecular Neurobiology.
[22] Zhiwu Chen,et al. RhoA/ROCK signaling pathway and astrocytes in ischemic stroke , 2021, Metabolic Brain Disease.
[23] Yixia Zhao,et al. Cbl-b restrains priming of pathogenic Th17 cells via the inhibition of IL-6 production by macrophages , 2020, iScience.
[24] J. Geng,et al. BMSCs differentiated into neurons, astrocytes and oligodendrocytes alleviated the inflammation and demyelination of EAE mice models , 2020, bioRxiv.
[25] Lijuan Wang,et al. Tob2 Inhibits TLR-Induced Inflammatory Responses by Association with TRAF6 and MyD88 , 2020, The Journal of Immunology.
[26] Esther J Pearl,et al. The ARRIVE guidelines 2.0: Updated guidelines for reporting animal research , 2020, PLoS biology.
[27] G. Kai,et al. In vitro and in vivo anti-inflammatory effects of different extracts from Epigynum auritum through down-regulation of NF-κB and MAPK signaling pathways. , 2020, Journal of ethnopharmacology.
[28] H. Yin,et al. Small-Molecule Modulators of Toll-like Receptors. , 2020, Accounts of chemical research.
[29] Jianting Chen,et al. Advanced oxidation protein products induce microglia-mediated neuroinflammation via MAPKs-NF-κB signaling pathway and pyroptosis after secondary spinal cord injury , 2020, Journal of Neuroinflammation.
[30] Mingyao Liu,et al. Bcl6 modulates innate immunity by controlling macrophage activity and plays critical role in experimental autoimmune encephalomyelitis , 2020, European journal of immunology.
[31] K. Tolias,et al. RhoA-ROCK Signaling as a Therapeutic Target in Traumatic Brain Injury , 2020, Cells.
[32] J. Sastre,et al. NF-κB SIGNALING COMPLEXES IN ACUTE INFLAMMATION. , 2019, Antioxidants & redox signaling.
[33] C. Farina,et al. Convergence between Microglia and Peripheral Macrophages Phenotype during Development and Neuroinflammation , 2019, The Journal of Neuroscience.
[34] Yun Yuan,et al. Scutellarin Exerts Anti-Inflammatory Effects in Activated Microglia/Brain Macrophage in Cerebral Ischemia and in Activated BV-2 Microglia Through Regulation of MAPKs Signaling Pathway , 2019, NeuroMolecular Medicine.
[35] M. Kong,et al. Dynamic response of microglia/macrophage polarization following demyelination in mice , 2019, Journal of Neuroinflammation.
[36] S. Koizumi,et al. Microglial ROCK is essential for chronic methylmercury‐induced neurodegeneration , 2019, Journal of neurochemistry.
[37] Chenyan Gao,et al. The landscape of CAR T‐cell therapy in the United States and China: A comparative analysis , 2019, International journal of cancer.
[38] G. Lal,et al. The iNOS Activity During an Immune Response Controls the CNS Pathology in Experimental Autoimmune Encephalomyelitis , 2019, Front. Immunol..
[39] B. Xiao,et al. Nasal delivery of Fasudil‐modified immune cells exhibits therapeutic potential in experimental autoimmune encephalomyelitis , 2019, CNS neuroscience & therapeutics.
[40] I. Flinn,et al. Long-term safety and activity of axicabtagene ciloleucel in refractory large B-cell lymphoma (ZUMA-1): a single-arm, multicentre, phase 1-2 trial. , 2019, The Lancet. Oncology.
[41] Jie-zhong Yu,et al. Therapeutic potentials of the Rho kinase inhibitor Fasudil in experimental autoimmune encephalomyelitis and the related mechanisms , 2018, Metabolic Brain Disease.
[42] Wei Peng,et al. Activation of EphA4 induced by EphrinA1 exacerbates disruption of the blood-brain barrier following cerebral ischemia-reperfusion via the Rho/ROCK signaling pathway. , 2018, Experimental and therapeutic medicine.
[43] Fengna Chu,et al. The roles of macrophages and microglia in multiple sclerosis and experimental autoimmune encephalomyelitis , 2018, Journal of Neuroimmunology.
[44] S. Petratos,et al. Nogo receptor expression in microglia/macrophages during experimental autoimmune encephalomyelitis progression , 2018, Neural regeneration research.
[45] Y. T. Yeung,et al. Signaling Pathways in Inflammation and Anti-inflammatory Therapies. , 2018, Current pharmaceutical design.
[46] F. Zipp,et al. The Role of ERK Signaling in Experimental Autoimmune Encephalomyelitis , 2017, International journal of molecular sciences.
[47] X. Yi,et al. Dendritic Cell/Cytokine-Induced Killer Cell Immunotherapy Combined with S-1 in Patients with Advanced Pancreatic Cancer: A Prospective Study , 2017, Clinical Cancer Research.
[48] Jing Zhang,et al. Mechanism of oxidative stress p38MAPK-SGK1 signaling axis in experimental autoimmune encephalomyelitis (EAE) , 2017, Oncotarget.
[49] S. Lee,et al. ROCK in CNS: Different Roles of Isoforms and Therapeutic Target for Neurodegenerative Disorders. , 2017, Current drug targets.
[50] R. Califf,et al. Clarifying Stem-Cell Therapy's Benefits and Risks. , 2016, The New England journal of medicine.
[51] F. Nichols,et al. TLR Tolerance as a Treatment for Central Nervous System Autoimmunity , 2016, The Journal of Immunology.
[52] B. Xiao,et al. Synergistic and Superimposed Effect of Bone Marrow-Derived Mesenchymal Stem Cells Combined with Fasudil in Experimental Autoimmune Encephalomyelitis , 2016, Journal of Molecular Neuroscience.
[53] B. Xiao,et al. Changes of synapses in experimental autoimmune encephalomyelitis by using Fasudil , 2016, Wound repair and regeneration : official publication of the Wound Healing Society [and] the European Tissue Repair Society.
[54] W. Le,et al. Differential Roles of M1 and M2 Microglia in Neurodegenerative Diseases , 2016, Molecular Neurobiology.
[55] Andrea Hodgson,et al. Caspase‐3 cleaved p65 fragment dampens NF‐κB‐mediated anti‐apoptotic transcription by interfering with the p65/RPS3 interaction , 2015, FEBS letters.
[56] J. Hyllner,et al. Cell-based therapy technology classifications and translational challenges , 2015, Philosophical Transactions of the Royal Society B: Biological Sciences.
[57] Guang-Xian Zhang,et al. FSD-C10: A more promising novel ROCK inhibitor than Fasudil for treatment of CNS autoimmunity , 2015, Bioscience reports.
[58] Andrea Hodgson,et al. Metalloprotease NleC Suppresses Host NF-κB/Inflammatory Responses by Cleaving p65 and Interfering with the p65/RPS3 Interaction , 2015, PLoS pathogens.
[59] B. Xiao,et al. Fasudil mediates cell therapy of EAE by immunomodulating encephalomyelitic T cells and macrophages , 2015, European journal of immunology.
[60] Tian-shu Ren,et al. Neuroprotective effects of Arctium lappa L. roots against glutamate-induced oxidative stress by inhibiting phosphorylation of p38, JNK and ERK 1/2 MAPKs in PC12 cells. , 2014, Environmental toxicology and pharmacology.
[61] H. Bergler,et al. Ribosomal protein S3 interacts with the NF‐κB inhibitor IκBα , 2014, FEBS letters.
[62] Jie-zhong Yu,et al. Rho Kinase Inhibitor Fasudil Regulates Microglia Polarization and Function , 2013, Neuroimmunomodulation.
[63] Jie-zhong Yu,et al. Targeting the Shift from M1 to M2 Macrophages in Experimental Autoimmune Encephalomyelitis Mice Treated with Fasudil , 2013, PloS one.
[64] B. Xiao,et al. Fasudil Ameliorates Disease Progression in Experimental Autoimmune Encephalomyelitis, Acting Possibly Through Antiinflammatory Effect , 2012, CNS neuroscience & therapeutics.
[65] C. Whitacre,et al. T-cell activation and receptor downmodulation precede deletion induced by mucosally administered antigen. , 2000, The Journal of clinical investigation.
[66] Y. Saeki,et al. IL-6 plays a crucial role in the induction phase of myelin oligodendrocyte glycoprotein 35–55 induced experimental autoimmune encephalomyelitis , 1999, Journal of Neuroimmunology.
[67] A. MacKenzie-Graham,et al. Gender differences in autoimmune demyelination in the mouse: Implications for multiple sclerosis , 1996, Annals of neurology.