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Published on: July 25, 2022
Carbon Monoxide-Neuroglobin Axis Targeting Metabolism Against Inflammation in BV-2 Microglial Cells
Daniela Dias-Pedroso1, José S Ramalho1, Vilma A Sardão2
1CEDOC, NOVA Medical School, Universidade Nova de Lisboa, Lisbon, Portugal.
Abstract:
Microglia are the immune competent cell of the central nervous system (CNS), promoting brain homeostasis and regulating inflammatory response against infection and injury. Chronic or exacerbated neuroinflammation is a cause of damage in several brain pathologies. Endogenous carbon monoxide (CO), produced from the degradation of heme, is described as anti-apoptotic and anti-inflammatory in several contexts, including in the CNS. Neuroglobin (Ngb) is a haemoglobin-homologous protein, which upregulation triggers antioxidant defence and prevents neuronal apoptosis. Thus, we hypothesised a crosstalk between CO and Ngb, in particular, that the anti-neuroinflammatory role of CO in microglia depends on Ngb. A novel CO-releasing molecule (ALF826) based on molybdenum was used for delivering CO in microglial culture.BV-2 mouse microglial cell line was challenged with lipopolysaccharide (LPS) for triggering inflammation, and after 6 h ALF826 was added. CO exposure limited inflammation by decreasing inducible nitric oxide synthase (iNOS) expression and the production of nitric oxide (NO) and tumour necrosis factor-α (TNF-α), and by increasing interleukine-10 (IL-10) release. CO-induced Ngb upregulation correlated in time with CO's anti-inflammatory effect. Moreover, knocking down Ngb reversed the anti-inflammatory effect of CO, suggesting that dependents on Ngb expression. CO-induced Ngb upregulation was independent on ROS signalling, but partially dependent on the transcriptional factor SP1. Finally, microglial cell metabolism is also involved in the inflammatory response. In fact, LPS treatment decreased oxygen consumption in microglia, indicating a switch to glycolysis, which is associated with a proinflammatory. While CO treatment increased oxygen consumption, reverting LPS effect and indicating a metabolic shift into a more oxidative metabolism. Moreover, in the absence of Ngb, this phenotype was no longer observed, indicating Ngb is needed for CO's modulation of microglial metabolism. Finally, the metabolic shift induced by CO did not depend on alteration of mitochondrial population. In conclusion, neuroglobin emerges for the first time as a key player for CO signalling against exacerbated inflammation in microglia.
Insights
Carbon monoxide (CO) reduces neuroinflammation in microglia by upregulating neuroglobin (Ngb). This Ngb-dependent mechanism also modulates microglial metabolism, offering new therapeutic avenues for brain pathologies.
Area of Science:
- Neuroimmunology
- Neuroinflammation
- Cellular Metabolism
Background:
- Microglia are key immune cells in the central nervous system (CNS), regulating homeostasis and inflammation.
- Chronic neuroinflammation contributes to brain pathologies.
- Carbon monoxide (CO) exhibits anti-inflammatory and anti-apoptotic effects in the CNS, potentially mediated by Neuroglobin (Ngb).
Purpose of the Study:
- To investigate the role of Neuroglobin (Ngb) in mediating the anti-neuroinflammatory effects of carbon monoxide (CO) in microglia.
- To explore the impact of CO and Ngb on microglial cell metabolism during inflammation.
Main Methods:
- Utilized a novel molybdenum-based CO-releasing molecule (ALF826) in BV-2 mouse microglial cell cultures.
- Induced inflammation using lipopolysaccharide (LPS) and assessed inflammatory markers (iNOS, NO, TNF-α, IL-10).
- Investigated the role of Ngb via knockdown experiments and analyzed cellular metabolism (oxygen consumption) and transcriptional factor SP1.
Main Results:
- CO exposure significantly reduced LPS-induced inflammation by decreasing pro-inflammatory mediators and increasing IL-10.
- CO treatment upregulated Ngb expression, which was essential for its anti-inflammatory effects; Ngb knockdown reversed these effects.
- CO modulated microglial metabolism, increasing oxygen consumption and promoting an oxidative shift, a process dependent on Ngb.
Conclusions:
- Neuroglobin (Ngb) is a critical mediator of carbon monoxide's (CO) anti-neuroinflammatory actions in microglia.
- CO signaling, through Ngb, influences microglial metabolic pathways, shifting from glycolysis towards oxidative metabolism.
- This study highlights Ngb as a key player in CO's protective effects against exacerbated neuroinflammation and metabolic dysregulation in microglia.

