let-7g counteracts endothelial dysfunction and ameliorating neurological functions in mouse ischemia/reperfusion stroke model is a research paper published in Brain Behavior and Immunity (2020). On theSindex it has a DataRank of 0. It has been cited 42 times.
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National Institutes of Health
Grant: R01AA015913
National Institutes of Health
Grant: R01MH115786
National Institutes of Health
Grant: R01NS101135
NIAAA NIH HHS
Grant: R37 AA015913
National Institutes of Health
Grant: 5R01NS101135-04
Protective role of let-7 microRNAs in brain endothelial dysfunction during ischemia/reperfusion injury
National Institutes of Health
Grant: 3R01AA015913-05S1
PPAR-gamma-mediated neuroprotection against HIV-1 and alcohol CNS injury
National Institutes of Health
Grant: 5R01MH115786-04
Blood brain barrier injury in HIV infection complicated by diabetes: Mechanisms and protective strategies preventing cognitive impairment
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Sustainable Development Goals
Additional file 5 of Glucose competition between endothelial cells in the blood-spinal cord barrier and infiltrating regulatory T cells is linked to sleep restriction-induced hyperalgesia
Additional file 5 of Glucose competition between endothelial cells in the blood-spinal cord barrier and infiltrating regulatory T cells is linked to sleep restriction-induced hyperalgesia
Additional file 6 of Glucose competition between endothelial cells in the blood-spinal cord barrier and infiltrating regulatory T cells is linked to sleep restriction-induced hyperalgesia
Additional file 6 of Glucose competition between endothelial cells in the blood-spinal cord barrier and infiltrating regulatory T cells is linked to sleep restriction-induced hyperalgesia
Additional file 4 of Glucose competition between endothelial cells in the blood-spinal cord barrier and infiltrating regulatory T cells is linked to sleep restriction-induced hyperalgesia
Additional file 3 of Glucose competition between endothelial cells in the blood-spinal cord barrier and infiltrating regulatory T cells is linked to sleep restriction-induced hyperalgesia
Additional file 4 of Glucose competition between endothelial cells in the blood-spinal cord barrier and infiltrating regulatory T cells is linked to sleep restriction-induced hyperalgesia
Additional file 1 of Glucose competition between endothelial cells in the blood-spinal cord barrier and infiltrating regulatory T cells is linked to sleep restriction-induced hyperalgesia
Additional file 2 of Glucose competition between endothelial cells in the blood-spinal cord barrier and infiltrating regulatory T cells is linked to sleep restriction-induced hyperalgesia
Additional file 3 of Glucose competition between endothelial cells in the blood-spinal cord barrier and infiltrating regulatory T cells is linked to sleep restriction-induced hyperalgesia
Additional file 1 of Glucose competition between endothelial cells in the blood-spinal cord barrier and infiltrating regulatory T cells is linked to sleep restriction-induced hyperalgesia
Additional file 2 of Glucose competition between endothelial cells in the blood-spinal cord barrier and infiltrating regulatory T cells is linked to sleep restriction-induced hyperalgesia