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HIV-1 Tat C modulates NOX2 and NOX4 expressions through miR-17 in a human microglial cell line
Vaishnavi Sunil Jadhav1, Karl-Heinz Krause, Sunit K Singh
1Laboratory of Neurovirology and Inflammation Biology, CSIR-Centre for Cellular and Molecular Biology (CCMB), Hyderabad, India.
Abstract:
HIV-1 invades CNS in the early course of infection, which can lead to the cascade of neuroinflammation. NADPH oxidases (NOXs) are the major producers of reactive oxygen species (ROS), which play important roles during pathogenic insults. The molecular mechanism of ROS generation via microRNA-mediated pathway in human microglial cells in response to HIV-1 Tat protein has been demonstrated in this study. Over-expression and knockdown of microRNAs, luciferase reporter assay, and site-directed mutagenesis are main molecular techniques used in this study. A significant reduction in miR-17 levels and increased NOX2, NOX4 expression levels along with ROS production were observed in human microglial cells upon HIV-1 Tat C exposure. The validation of NOX2 and NOX4 as direct targets of miR-17 was done by luciferase reporter assay. The over-expression and knockdown of miR-17 in human microglial cells showed the direct role of miR-17 in regulation of NOX2, NOX4 expression and intracellular ROS generation. We demonstrated the regulatory role of cellular miR-17 in ROS generation through over-expression and knockdown of miR-17 in human microglial cells exposed to HIV-1 Tat C protein. Activated microglial cells mediated neuroinflammatory events are observed in HIV-associated neurological disorders. The reduction in miR-17 levels was observed in microglial cells exposed to HIV-1 Tat C protein. miR-17 regulated the expression of NOX2 and NOX4, which in turn regulated the reactive oxygen species (ROS) production in microglial cells. Increased ROS production led to the activation of microglial cells and increased cytokine production. This study thus demonstrated a novel miR-17-mediated regulatory pathway of ROS production in microglial cells. HMC3 = human microglia clone 3 cell lines.
Insights
Human microglial cells exposed to HIV-1 Tat protein show reduced miR-17 levels, increasing reactive oxygen species (ROS) via NOX2/NOX4. This study reveals a novel miR-17 pathway regulating ROS in neuroinflammation.
Area of Science:
- Neuroscience
- Molecular Biology
- Immunology
Background:
- HIV-1 infection impacts the central nervous system (CNS), causing neuroinflammation.
- NADPH oxidases (NOXs) are key producers of reactive oxygen species (ROS), implicated in cellular damage.
- MicroRNAs (miRNAs) are emerging regulators of cellular processes, including inflammatory responses.
Purpose of the Study:
- To elucidate the molecular mechanism of ROS generation in human microglial cells in response to HIV-1 Tat protein.
- To investigate the role of microRNAs in regulating NOX expression and ROS production.
- To identify specific miRNAs and their targets involved in HIV-1-induced neuroinflammation.
Main Methods:
- Utilized human microglia clone 3 (HMC3) cell lines.
- Employed miRNA over-expression and knockdown techniques.
- Performed luciferase reporter assays and site-directed mutagenesis to validate miRNA-target interactions.
- Quantified ROS production and measured NOX2/NOX4 expression levels.
Main Results:
- HIV-1 Tat C exposure led to a significant decrease in miR-17 levels in microglial cells.
- NOX2 and NOX4 expression and ROS production were markedly increased upon HIV-1 Tat C exposure.
- Luciferase assays confirmed NOX2 and NOX4 as direct targets of miR-17.
- Modulating miR-17 levels directly impacted NOX2/NOX4 expression and ROS generation.
Conclusions:
- A novel miR-17-mediated regulatory pathway for ROS production in microglial cells was identified.
- Reduced miR-17 levels contribute to increased ROS production by upregulating NOX2 and NOX4.
- This pathway plays a critical role in HIV-1-induced microglial activation and neuroinflammation.
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