Microglial Voltage-Gated Proton Channel Hv1 in Ischemic Stroke

被引:0
作者
Long-Jun Wu
机构
[1] Rutgers University,Department of Cell Biology and Neuroscience
来源
Translational Stroke Research | 2014年 / 5卷
关键词
Microglia; Voltage-gated proton channel Hv1; NADPH oxidase; Reactive oxygen species; Sodium-proton exchanger; Acid-sensing ion channels; Ischemic stroke;
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学科分类号
摘要
Microglia, resident immune cells in the brain, contribute both to the damage and resolution of ischemic stroke. However, the mechanisms of microglia's detrimental or beneficial role in the disease are poorly understood. The voltage-gated proton channel, Hv1, rapidly removes protons from depolarized cytoplasm, and is highly expressed in the immune system. In the brain, Hv1 is selectively and functionally expressed in microglia but not neurons. Although the physiological function of microglial Hv1 is still not clear, Hv1 is one of major ion channels expressed in resting microglia. Under pathological conditions, microglial Hv1 is required for NADPH oxidase (NOX)-dependent generation of reactive oxygen species (ROS) by providing charge compensation for exported electrons and relieving intracellular acidosis. In a mouse model of cerebral middle artery occlusion, Hv1 knockout mice are protected from ischemic damage, showing reduced NOX-dependent ROS production, microglial activation and neuronal cell death. Therefore, microglial Hv1 aids in NOX-dependent ROS generation, which subsequently induces neuronal cell death and a significant fraction of brain damage after ischemic stroke. These studies illuminate a critical role of microglial Hv1 in ischemic brain injury, providing a rationale for Hv1 as a potential therapeutic target for the treatment of ischemic stroke. The current understanding of Hv1 in ischemic injury through NOX-dependent ROS production may serve as a common model to reveal the deleterious role of microglia in neurological diseases other than ischemic stroke, such as multiple sclerosis, amyotrophic lateral sclerosis, Alzheimer's disease, and neuropathic pain.
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页码:99 / 108
页数:9
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  • [1] Kettenmann H(2011)Physiology of microglia Physiol Rev 91 461-553
  • [2] Hanisch UK(2009)Microglial physiology: unique stimuli, specialized responses Annu Rev Immunol 27 119-145
  • [3] Noda M(2010)Microglial activation in stroke: therapeutic targets Neurotherapeutics 7 378-391
  • [4] Verkhratsky A(2010)SnapShot: reactive oxygen intermediates (ROI) Cell 140 951-415
  • [5] Ransohoff RM(2003)Mechanisms, challenges and opportunities in stroke Nat Rev Neurosci 4 399-198
  • [6] Perry VH(2010)The science of stroke: mechanisms in search of treatments Neuron 67 181-69
  • [7] Yenari MA(2007)Microglia-mediated neurotoxicity: uncovering the molecular mechanisms Nat Rev Neurosci 8 57-313
  • [8] Kauppinen TM(2007)The NOX family of ROS-generating NADPH oxidases: physiology and pathophysiology Physiol Rev 87 245-744
  • [9] Swanson RA(1973)Biological defense mechanisms. The production by leukocytes of superoxide, a potential bactericidal agent J Clin Invest 52 741-1233
  • [10] Nathan C(2005)Oxidative and antioxidative potential of brain microglial cells Antioxid Redox Signal 7 1223-238