Reactive Glia Inflammatory Signaling Pathways and Epilepsy
Abstract
:1. Introduction
2. Glial Inflammatory Pathways and Epilepsy
2.1. Toll-Like Receptor Signaling Pathway
2.1.1. MyD88-Dependent Pathway
2.1.2. MyD88-Independent Pathway
2.2. Inflammasome
2.3. The TNFα-TNFR1 Signaling Pathway
2.4. The IL-6-Grp130/JAK-STAT Signaling Pathway
2.5. The TGF-β-Receptor II Signaling Pathway
2.6. The Chemokine Signaling Pathway
2.7. The Lipocalin2-LCN2R Signaling Pathway
3. Relationship between Reactive Astrocytes and Microglia in Neuroinflammation
4. Neuroinflammation and Seizures
5. Therapeutic Approaches to Ameliorate Seizures Based on Glia Functionality
Author Contributions
Funding
Conflicts of Interest
References
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Signaling Pathway | Compound | Mechanism of Action | Reference |
---|---|---|---|
IL-1β/IL-1R1 | Anakinra | Antagonist of IL-1R1 receptor | Reviewed in [10,24] |
Anti-IL-1β Mabs | Blocking IL-1β | Reviewed in [10,24] | |
Minocycline | unknown | [25] | |
EGCG, punicalagin | unknown | [26,27,28] | |
HMGB1/TLR4-RAGE | BoxA, P5779 | Antagonist of TLR4-RAGEs | Reviewed in [22,30,31] |
Anti-HMGB1 Mabs | Blocking HMGB1 | Reviewed in [22,30,31] | |
Glycyrrhizin, EGCG | unknown | Reviewed in [22,30,31] | |
N-acetyl-cysteine + sulforaphane | Prevents the formation of active disulfide form of HMGB1 | Reviewed in [22,30,31] | |
TNFα/TNFR1 | Anti-TNFα Mabs | Blocking TNFα | Reviewed in [32] |
Dihydrothalidomide, Nilotinib, Cannabinoids | Non-specific TNFα inhibitors | Reviewed in [32] | |
IL-6/Grp130-JAK-STAT | Anti-IL-6 Mabs | Blocking IL-6 | [33,34] |
WP1066 | STAT3 inhibitor | [33,34] | |
Albumin/TGF-β RI/II | Losartan | Blocking TGF-β signaling | [35] |
CCL2/CCR2 | RS102895 | Antagonist of CCR2 | [36,37,38] |
Bindarit | Decreases the expression of CCL2 | [36,37,38] | |
CXCL10/CXCR3 | Anti-CXCL10 | Blocking CXCL10 | [39,40,41] |
Microglia activation | NLY01 | Prevents microglial production of IL1α, TNFα, C1q | [42,43] |
Propranolol | Prevents microglia activation | [44] | |
Anti-C1q Mabs | Blocks C1q | [45,46] | |
Controlling the levels of glutamate | Ceftriaxone | Enhances EAATs expression | [47] |
Riluzole | Improves EAATs activity | [48] | |
Sulfasalazine | Decreases activity of the xCT antiporter | [5,48,49] | |
Controlling the levels of ROS | Resveratrol | antioxidant | [3,20,48] |
N-acetyl-cysteine + sulforaphane | antioxidant | [3,20,48] |
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Share and Cite
Sanz, P.; Garcia-Gimeno, M.A. Reactive Glia Inflammatory Signaling Pathways and Epilepsy. Int. J. Mol. Sci. 2020, 21, 4096. https://doi.org/10.3390/ijms21114096
Sanz P, Garcia-Gimeno MA. Reactive Glia Inflammatory Signaling Pathways and Epilepsy. International Journal of Molecular Sciences. 2020; 21(11):4096. https://doi.org/10.3390/ijms21114096
Chicago/Turabian StyleSanz, Pascual, and Maria Adelaida Garcia-Gimeno. 2020. "Reactive Glia Inflammatory Signaling Pathways and Epilepsy" International Journal of Molecular Sciences 21, no. 11: 4096. https://doi.org/10.3390/ijms21114096
APA StyleSanz, P., & Garcia-Gimeno, M. A. (2020). Reactive Glia Inflammatory Signaling Pathways and Epilepsy. International Journal of Molecular Sciences, 21(11), 4096. https://doi.org/10.3390/ijms21114096