← Explorer/Network

Erythropoietin plus insulin‐like growth factor‐I protects against neuronal damage in a murine model of human immunodeficiency virus‐associated neurocognitive disorders

Kang Y, Digicaylioglu M, Russo R +5 more2010Annals of NeurologyJournal Article
10.1002/ana.22070PubMed
Neurological

Abstract

AbstractObjectiveProlonged human immunodeficiency virus‐1 (HIV‐1) infection leads to neurological debilitation, including motor dysfunction and frank dementia. Although pharmacological control of HIV infection is now possible, HIV‐associated neurocognitive disorders (HAND) remain intractable. Here, we report that chronic treatment with erythropoietin (EPO) and insulin‐like growth factor‐I (IGF‐I) protects against HIV/gp120‐mediated neuronal damage in culture and in vivo.MethodsInitially, we tested the neuroprotective effects of various concentrations of EPO, IGF‐I, or EPO+IGF‐I from gp120‐induced damage in vitro. To assess the chronic effects of EPO+IGF‐I administration in vivo, we treated HIV/gp120‐transgenic or wild‐type mice transnasally once a week for 4 months and subsequently conducted immunohistochemical analyses.ResultsLow concentrations of EPO+IGF‐I provided neuroprotection from gp120 in vitro in a synergistic fashion. In vivo, EPO+IGF‐I treatment prevented gp120‐mediated neuronal loss, but did not alter microgliosis or astrocytosis. Strikingly, in the brains of both humans with HAND and gp120‐transgenic mice, we found evidence for hyperphosphorylated tau protein (paired helical filament‐I tau), which has been associated with neuronal damage and loss. In the mouse brain following transnasal treatment with EPO+IGF‐I, in addition to neuroprotection we observed increased phosphorylation/activation of Akt (protein kinase B) and increased phosphorylation/inhibition of glycogen synthase kinase (GSK)‐3β, dramatically decreasing downstream hyperphosphorylation of tau. These results indicate that the peptides affected their cognate signaling pathways within the brain parenchyma.InterpretationOur findings suggest that chronic combination therapy with EPO+IGF‐I provides neuroprotection in a mouse model of HAND, in part, through cooperative activation of phosphatidylinositol 3‐kinase/Akt/GSK‐3β signaling. This combination peptide therapy should therefore be tested in humans with HAND. ANN NEUROL 2010;68:342–352

Key Biomarkers

Hyperphosphorylated tau proteinPaired helical filament-I tauPhosphorylated AktPhosphorylated GSK-3β

Symptom Clusters

DementiaMotor dysfunctionNeuronal damageNeuronal loss

References (3)

  • Erythropoietin-mediated neuroprotection involves cross-talk between Jak2 and NF-κB signalling cascadesNature · 2001
  • Erythropoietin crosses the blood-brain barrier to protect against experimental brain injuryProceedings of the National Academy of Sciences · 2000
  • Erythropoietin: novel approaches to neuroprotection in human brain diseaseMetabolic Brain Disease · 2004

Related Papers

  • Association of mold exposure and solid household fuel use with depression and anxiety among older adults in ChinaEnvironmental Health · 2025 · 1 shared tag
  • Pain, Fear, Anxiety, and Stress: Relations to the Endogenous Opioid SystemAdvances in neurobiology · 2024 · 1 shared tag
  • Probing the VIPR2 Microduplication Linkage to Schizophrenia in Animal and Cellular ModelsFrontiers in Neuroscience · 2021 · 1 shared tag
  • CGRP sensory neurons promote tissue healing via neutrophils and macrophagesNature · 2024 · 1 shared tag
  • High Value Phycotoxins From the Dinoflagellate ProrocentrumFrontiers in Marine Science · 2021 · 1 shared tag
  • Invited review: Mechanisms of hypophagia during diseaseJournal of Dairy Science · 2021 · 1 shared tag