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WGA Rescources

11.8 Neuroprotection (259)

Showing records 1 to 25

Display all abstracts in classification 11.8 Neuroprotection

Search within classification 11.8 Neuroprotection
70244 24(S)-Hydroxycholesterol protects the ex vivo rat retina from injury by elevated hydrostatic pressure
Ishikawa M
Scientific reports 2016; 6: 33886
69967 Neuroprotective effects of antibodies on retinal ganglion cells in an adolescent retina organ culture
Bell K
Journal of Neurochemistry 2016; 139: 256-269
70193 Dock3-NMDA receptor interaction as a target for glaucoma therapy
Kimura A
Histology and Histopathology 2017; 32: 215-221
70102 Neuroprotective Effect of Magnesium Acetyltaurate Against NMDA-Induced Excitotoxicity in Rat Retina
Lambuk L
Neurotoxicity research 2017; 31: 31-45
70277 Caloric restriction promotes cell survival in a mouse model of normal tension glaucoma
Guo X
Scientific reports 2016; 6: 33950
70695 Palmitic acid triggers cell apoptosis in RGC-5 retinal ganglion cells through the Akt/FoxO1 signaling pathway
Yan P
Metabolic brain disease 2017; 32: 453-460
70146 Apelin-36 is protective against N-methyl-D-aspartic-acid-induced retinal ganglion cell death in the mice
Sakamoto K
European Journal of Pharmacology 2016; 791: 213-220
70195 Chi-Ju-Di-Huang-Wan protects rats against retinal ischemia by downregulating matrix metalloproteinase-9 and inhibiting p38 mitogen-activated protein kinase
Chao HM
Chinese medicine 2016; 11: 39
70577 The neuroprotective effect of latanoprost acts via klotho-mediated suppression of calpain activation after optic nerve transection
Yamamoto K
Journal of Neurochemistry 2017; 140: 495-508
70714 Lutein Attenuates Both Apoptosis and Autophagy upon Cobalt (II) Chloride-Induced Hypoxia in Rat Műller Cells
Fung FK
PLoS ONE 2016; 11: e0167828
70585 Effect of geranylgeranylacetone on the protection of retinal ganglion cells in a mouse model of normal tension glaucoma
Dong Z
Heliyon 2016; 2: e00191
70376 Translational Pharmacology in Glaucoma Neuroprotection
Levin LA
Handb Exp Pharmacol 2017; 242: 209-230
70157 TSPO activation modulates the effects of high pressure in a rat ex vivo glaucoma model
Ishikawa M
Neuropharmacology 2016; 111: 142-159
70234 Is glaucoma a mitochondrial neurodegenerative disease
Zhang Z
Chinese Journal of Ophthalmology 2016; 52: 714-717
70584 cGMP-Phosphodiesterase Inhibition Prevents Hypoxia-Induced Cell Death Activation in Porcine Retinal Explants
Olivares-González L
PLoS ONE 2016; 11: e0166717
70559 Overexpression of Soluble Fas Ligand following Adeno-Associated Virus Gene Therapy Prevents Retinal Ganglion Cell Death in Chronic and Acute Murine Models of Glaucoma
Krishnan A
Journal of immunology 2016; 197: 4626-4638
70158 The protection of rat retinal ganglion cells from ischemia/reperfusion injury by the inhibitory peptide of mitochondrial μ-calpain
Ozaki T
Biochemical and Biophysical Research Communications 2016; 478: 1700-1705
70614 Visual light effects on mitochondria: The potential implications in relation to glaucoma
Osborne NN
Mitochondrion 2017; 36: 29-35
70468 α-Aminoadipic acid protects against retinal disruption through attenuating Müller cell gliosis in a rat model of acute ocular hypertension
Wang X
Drug design, development and therapy 2016; 10: 3449-3457
70673 Role of cyclic AMP in the eye of glaucoma
Shim MS
BMB reports 2017; 50: 60-70
70140 Research progress of stem cells on glaucomatous optic nerve injury
Zhou YS
International Journal of Ophthalmology 2016; 9: 1226-1229
70125 Selective Vulnerability of Specific Retinal Ganglion Cell Types and Synapses after Transient Ocular Hypertension
Ou Y
Journal of Neuroscience 2016; 36: 9240-9252
70385 Wogonin prevents TLR4-NF-κB-medicated neuro-inflammation and improves retinal ganglion cells survival in retina after optic nerve crush
Xu Y
Oncotarget 2016; 7: 72503-72517
70775 Why autophagy is good for retinal ganglion cells?
Boya P
Eye 2017; 31: 185-190
70884 Apelin protects against NMDA-induced retinal neuronal death via an APJ receptor by activating Akt and ERK1/2, and suppressing TNF-α expression in mice
Ishimaru Y
Journal of Pharmacological Sciences 2017; 133: 34-41

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