Related Experiment Video
Updated: Jun 14, 2026

Obtaining Human Microglia from Adult Human Brain Tissue
Published on: August 30, 2020
NOX4 expression in human microglia leads to constitutive generation of reactive oxygen species and to constitutive
Bin Li1, Karen Bedard, Silvia Sorce
1Department of Pathology and Immunology, Faculty of Medicine, University of Geneva, Geneva, Switzerland.
Abstract:
Reactive oxygen species (ROS) generation by microglia is implicated in neuroinflammation and neurotoxicity, as well as in host defense, cell proliferation and excitatory amino acid release. Recent studies demonstrate that primary microglia preparations not only express the phagocyte NADPH oxidase NOX2, but also the NOX1 and NOX4 isoforms. Here we investigated the relationship between neuroinflammation and NOX isoform expression in the human microglia cell line clone 3 (HMC3). HMC3 cells are typical microglia, as suggested by the constitutive expression of Iba-1 and CD14, and IFN-gamma-induced expression of CD11b, CD68 and MHCII. However, the characteristics of NOX isoform expression and ROS generation by HMC3 cells were unexpected. RT-PCR demonstrated abundant expression of NOX4, but almost no NOX2 mRNA. ROS generation was constitutive and appeared predominantly intracellular, as superoxide was detected within intracellular vesicles, while the cell-permeable H(2)O(2) was found in the extracellular space. ROS generation by HMC3 was efficiently suppressed by siRNA directed against NOX4, but not by control siRNA. NOX4 suppression did not alter expression of the microglia-typical genes MHCII, CD68 and CD11b, nor did it affect the expression of iNOS, VEGF or TGF-beta. However, there was a marked decrease in IL-6 mRNA. Taken together, we demonstrate a constitutive NOX4-dependent ROS generation in a microglial cell line which leads to expression of IL-6 mRNA. The possibility that microglia could switch from tightly regulated NOX2-dependent ROS generation to constitutive NOX4-dependent ROS generation is of interest for the understanding of the role of microglia in maintaining the balance between neuroprotection and neuroinflammatory damage.
Insights
Microglia generate reactive oxygen species (ROS) constitutively via NOX4, not NOX2, influencing interleukin-6 (IL-6) mRNA expression. This finding is key to understanding microglia
Area of Science:
- Neuroscience
- Immunology
- Cell Biology
Background:
- Microglia are key immune cells in the central nervous system.
- Microglia-derived reactive oxygen species (ROS) play roles in neuroinflammation and neuroprotection.
- NADPH oxidase (NOX) enzymes, including NOX1, NOX2, and NOX4, are primary sources of ROS.
Purpose of the Study:
- To investigate the expression of NOX isoforms (NOX1, NOX2, NOX4) in the human microglia cell line (HMC3).
- To determine the role of NOX isoforms in constitutive ROS generation by HMC3 cells.
- To explore the relationship between NOX-dependent ROS production and inflammatory gene expression in HMC3 cells.
Main Methods:
- RT-PCR was used to analyze NOX isoform mRNA expression in HMC3 cells.
- ROS production was detected intracellularly and extracellularly.
- Small interfering RNA (siRNA) targeting NOX4 was employed to assess its role in ROS generation and gene expression.
Main Results:
- HMC3 cells predominantly expressed NOX4 mRNA, with minimal NOX2 expression.
- Constitutive intracellular ROS generation was observed, significantly reduced by NOX4 suppression.
- NOX4 suppression decreased IL-6 mRNA levels without affecting other microglia-associated genes (MHCII, CD68, CD11b) or inflammatory markers (iNOS, VEGF, TGF-beta).
Conclusions:
- Human microglia cell line HMC3 exhibits constitutive NOX4-dependent ROS generation.
- NOX4-mediated ROS production in HMC3 cells influences IL-6 mRNA expression.
- This suggests a potential shift in microglial ROS production mechanisms, impacting neuroinflammation and neuroprotection balance.
Related Concept Videos
T Cell Types and Functions
Th1 cells stimulate dendritic cells to express necessary co-stimulatory molecules on their surfaces for...
NF-κB-dependent Signaling Pathway
NF-κB-dependent Signaling Mechanism
The heterodimer of NF-κB...

