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Biology subjects

Munshi, M.

Publications and source records attributed to Munshi, M..

2 recordsLinked to original sources

Glycolysis downregulation is a hallmark of HIV-1 latency and sensitizes infected cells to oxidative stress

HIV-1 infects lymphoid and myeloid cells, which can harbor a latent proviral reservoir responsible for maintaining lifelong infection. Glycolytic metabolism has been identified as a determinant of susceptibility to HIV-1 infection, but its role in the development and maintenance of HIV-1 latency has not been elucidated. By combining transcriptomic, proteomic and metabolomic analysis, we here show that transition to latent HIV-1 infection downregulates glycolysis, while viral reactivation by conventional stimuli reverts this effect. Decreased glycolytic output in latently infected cells is associated with downregulation of NAD+/NADH. Consequently, infected cells rely on the parallel pentose phosphate pathway and its main product, the antioxidant NADPH, fueling antioxidant pathways maintaining HIV-1 latency. Of note, blocking NADPH downstream effectors, thioredoxin and glutathione, favors HIV-1 reactivation from latency in lymphoid and myeloid cellular models. This provides a "shock and kill effect" decreasing proviral DNA in cells from people-living-with-HIV/AIDS. Overall, our data show that downmodulation of glycolysis is a metabolic signature of HIV-1 latency that can be exploited to target latently infected cells with eradication strategies.

immunology

Antioxidant nanozyme counteracts HIV-1 by modulating intracellular redox potential

Reactive oxygen species (ROS) regulates the proliferation of human immunodeficiency virus (HIV-1) and Mycobacterium tuberculosis (Mtb) inside the infected immune cells. However, the application of this knowledge to develop therapeutic strategies remained unsuccessful due to unfavorable consequences of manipulating cellular antioxidant systems that respond to ROS. Here, we show that vanadium pentoxide (V2O5) nanosheets functionally mimic the activity of natural glutathione peroxidase (GPX) to mitigate ROS associated with HIV-1 infection without triggering detrimental changes in cellular physiology. Using genetic reporters of glutathione (GSH) redox potential (EGSH; Grx1-roGFP2) and H2O2 (Orp1-roGFP2), we showed that V2O5-nanosheets catalyze GSH-dependent neutralization of ROS in HIV-1 infected cells. Notably, V2O5-nanosheets uniformly blocked HIV-1 reactivation, multiplication, and impaired survival of drug-resistant Mtb during HIV-TB co-infection. Mechanistically, V2O5-nanosheets suppressed HIV-1 by affecting the expression of pathways coordinating redox balance, virus transactivation (e.g., NF-{kappa}B and FOS), inflammation, and apoptosis. Importantly, a combination of V2O5-nanosheets with a pharmacological inhibitor of NF-{kappa}B (BAY11-7082) abrogated activation of HIV-1 from latency. Lastly, V2O5-nanosheets counteracted ROS, disease pathophysiology, and virus expression in HIV-1 transgenic mice. Our data successfully revealed the usefulness of V2O5-nanosheets against human pathogens and suggest nanozymes as future platforms to develop interventions against infectious diseases. Significance StatementRedox stress, such as those caused by the deregulation of the antioxidant glutathione, promotes the multiplication of human immunodeficiency virus-1 (HIV-1) and Mycobacterium tuberculosis (Mtb). Here we present a vanadium pentoxide (V2O5)-based antioxidant nanozyme that targets cells infected with HIV-1. The nanozyme, by mimicking the activity of glutathione peroxidase, reprograms redox signaling to subvert HIV-1 from monocytes, lymphocytes, and HIV-1 transgenic mice. Treatment with nanozyme bolsters the antiviral potential of immune cells by reducing the expression of genes involved in virus activation, inflammation, and apoptosis. The nanozyme also inhibited the proliferation of Mtb, which is a major cause of lethality in HIV patients. These V2O5-based nanozymes may be applied to numerous human pathogens where redox signaling contributes to disease progression.

bioengineering