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.

Molecular Neurobiology
|November 19, 2021
PubMed

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.