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GSK3β-activation is a point of convergence for HIV-1 and opiate-mediated interactive neurotoxicity
Ruturaj R Masvekar1, Nazira El-Hage2, Kurt F Hauser3
1Department of Anatomy and Neurobiology, Virginia Commonwealth University, Richmond, VA 23298, USA.
Abstract:
Infection of the CNS with HIV-1 occurs rapidly after primary peripheral infection. HIV-1 can induce a wide range of neurological deficits, collectively known as HIV-1-associated neurocognitive disorders. Our previous work has shown that the selected neurotoxic effects induced by individual viral proteins, Tat and gp120, and by HIV(+) supernatant are enhanced by co-exposure to morphine. This mimics co-morbid neurological effects observed in opiate-abusing HIV(+) patients. Although there is a correlation between opiate drug abuse and progression of HIV-1-associated neurocognitive disorders, the mechanisms underlying interactions between HIV-1 and opiates remain obscure. Previous studies have shown that HIV-1 induces neurotoxic effects through abnormal activation of GSK3β. Interestingly, expression of GSK3β has shown to be elevated in brains of young opiate abusers indicating that GSK3β is also linked to neuropathology seen with opiate-abusing patients. Thus, we hypothesize that GSK3β activation is a point of convergence for HIV- and opiate-mediated interactive neurotoxic effects. Neuronal cultures were treated with supernatant from HIV-1SF162-infected THP-1 cells, in the presence or absence of morphine and GSK3β inhibitors. Our results show that GSK3β inhibitors, including valproate and small molecule inhibitors, significantly reduce HIV-1-mediated neurotoxic outcomes, and also negate interactions with morphine that result in cell death, suggesting that GSK3β-activation is an important point of convergence and a potential therapeutic target for HIV- and opiate-mediated neurocognitive deficits.
Insights
HIV-1 infection and morphine co-exposure worsen neurotoxicity by activating GSK3β. Inhibiting GSK3β reduces these harmful effects, offering a potential therapeutic target for HIV-associated neurocognitive disorders.
Area of Science:
- Neuroscience
- Infectious Diseases
- Pharmacology
Background:
- HIV-1 rapidly infects the central nervous system (CNS), causing neurocognitive disorders.
- Opiate abuse exacerbates HIV-1 neurotoxicity, but underlying mechanisms are unclear.
- Both HIV-1 and opiate abuse are linked to abnormal Glycogen Synthase Kinase 3 beta (GSK3β) activation.
Purpose of the Study:
- To investigate if GSK3β activation is a shared pathway for HIV-1 and morphine neurotoxicity.
- To evaluate the therapeutic potential of GSK3β inhibitors in mitigating combined HIV-1 and opiate neurotoxicity.
Main Methods:
- Neuronal cultures were exposed to HIV-1SF162 infected cell supernatant.
- Cultures were treated with morphine and/or GSK3β inhibitors (valproate, small molecule inhibitors).
- Neurotoxic outcomes and cell death were assessed.
Main Results:
- GSK3β inhibitors significantly reduced HIV-1-induced neurotoxicity.
- GSK3β inhibitors negated the enhanced cell death caused by co-exposure to HIV-1 and morphine.
- These findings indicate GSK3β activation is a convergence point for interactive neurotoxicity.
Conclusions:
- GSK3β activation is a critical mediator of combined HIV-1 and opiate neurotoxicity.
- Targeting GSK3β represents a promising therapeutic strategy for HIV-1-associated neurocognitive disorders in opiate-abusing patients.
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