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Microglial ferroptosis mediated neuroinflammation in central nervous system diseases

Shu-Xian Ren1, Feng-Jing Jia2, Jing Zhu2

  • 1Department of Neurology, Shanghai No. 9 People's Hospital, Shanghai Jiaotong University School of Medicine, Shanghai 200011, China; Academy of Integrative Medicine, Shanghai University of Traditional Chinese Medicine, Shanghai 201203, China; School of Integrative Medicine, Shanghai University of Traditional Chinese Medicine, Shanghai 201203, China.

Insights

Microglial ferroptosis, a cell death process involving iron, drives neuroinflammation in central nervous system (CNS) diseases. Targeting this mechanism offers potential for precision intervention in various brain disorders.

Area of Science:

  • Neuroscience
  • Immunology
  • Cell Biology

Background:

  • Microglial ferroptosis is a key pathological mechanism in central nervous system (CNS) diseases.
  • It links iron dyshomeostasis, lipid peroxidation, oxidative stress, and neuroinflammation.

Purpose of the Study:

  • To review the molecular mechanisms of microglial ferroptosis in mediating neuroinflammation.
  • To classify CNS diseases based on microglial ferroptosis.
  • To discuss therapeutic strategies and challenges.

Main Methods:

  • Literature review and synthesis of current research on microglial ferroptosis.
  • Classification of CNS diseases based on disease course and pathology.
  • Discussion of therapeutic targets and clinical translation barriers.

Main Results:

  • Microglial ferroptosis involves iron homeostasis disruption, lipid peroxidation, ROS amplification, GPX4 defense collapse, mitochondrial ROS, and inflammasome activation.
  • Pathological significance varies across chronic neurodegenerative, acute CNS injuries, and neuropsychiatric diseases.
  • Potential therapeutic strategies target iron, lipids, antioxidants, and inflammation, with a focus on microglia-specific delivery.

Conclusions:

  • Microglial ferroptosis is a central driver of neuroinflammation across diverse CNS diseases.
  • Understanding these mechanisms is crucial for developing precision therapeutic interventions.
  • Addressing challenges in specificity, detection, and translation is vital for clinical application.