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Published on: February 5, 2018
Axon-glia synapses are highly vulnerable to white matter injury in the developing brain
Yan Shen1, Xiao-Bo Liu, David E Pleasure
1Department of Cell Biology and Human Anatomy, School of Medicine, University of California, Davis, Sacramento, California 95817, USA.
Insights
Researchers developed mouse models for periventricular leukomalacia (PVL), a brain injury common in premature infants. They found that axon-glia synapses are vulnerable, suggesting new therapeutic targets for PVL and other neurological diseases.
Area of Science:
- Neuroscience
- Developmental Biology
- Pathology
Background:
- Cerebral white matter injury, particularly periventricular leukomalacia (PVL), is understudied due to modeling difficulties.
- PVL is a major cause of cerebral palsy in premature infants, with unknown pathogenesis and no specific therapies.
- Understanding PVL pathogenesis is crucial for developing effective treatments for affected infants.
Purpose of the Study:
- To establish reliable mouse models for studying PVL.
- To investigate the mechanisms underlying hypoxic-ischemic white matter injury.
- To identify potential therapeutic targets for PVL.
Main Methods:
- Developed two mouse models of PVL using hypoxia-ischemia, with and without lipopolysaccharide (LPS) coadministration.
- Administered drugs (minocycline, NBQX, edaravone) to assess protective effects.
- Utilized immunoelectron microscopy to examine ultrastructural changes in white matter, focusing on axon-oligodendroglial precursor cell (OPC) synapses.
Main Results:
- LPS exacerbated white matter injury, increasing microglial activation and astrogliosis.
- Tested drugs showed varying degrees of protection, implicating excitotoxic, oxidative, and inflammatory pathways.
- Immunoelectron microscopy revealed rapid and profound damage to axon-OPC synapses, specifically glutamatergic synapses expressing vGluT1/vGluT2.
- Observed shrinkage of postsynaptic OPCs and excitotoxicity mediated by Ca(2+)-permeable AMPA receptors.
Conclusions:
- Novel mouse models provide mechanistic insights into PVL pathogenesis.
- Axon-glia synapses are highly vulnerable targets in developing brain white matter injury.
- Findings have implications for treating PVL, stroke, spinal cord injury, and multiple sclerosis.
Abstract:
The biology of cerebral white matter injury has been woefully understudied, in part because of the difficulty of reliably modeling this type of injury in rodents. Periventricular leukomalacia (PVL) is the predominant form of brain injury and the most common cause of cerebral palsy in premature infants. PVL is characterized by predominant white matter injury. No specific therapy for PVL is presently available, because the pathogenesis is not well understood. Here we report that two types of mouse PVL models have been created by hypoxia-ischemia with or without systemic coadministration of lipopolysaccharide (LPS). LPS coadministration exacerbated hypoxic-ischemic white matter injury and led to enhanced microglial activation and astrogliosis. Drug trials with the antiinflammatory agent minocycline, the antiexcitotoxic agent NBQX, and the antioxidant agent edaravone showed various degrees of protection in the two models, indicating that excitotoxic, oxidative, and inflammatory forms of injury are involved in the pathogenesis of injury to immature white matter. We then applied immunoelectron microscopy to reveal fine structural changes in the injured white matter and found that synapses between axons and oligodendroglial precursor cells (OPCs) are quickly and profoundly damaged. Hypoxia-ischemia caused a drastic decrease in the number of postsynaptic densities associated with the glutamatergic axon-OPC synapses defined by the expression of vesicular glutamate transporters, vGluT1 and vGluT2, on axon terminals that formed contacts with OPCs in the periventricular white matter, resulted in selective shrinkage of the postsynaptic OPCs contacted by vGluT2 labeled synapses, and led to excitotoxicity mediated by GluR2-lacking, Ca(2+) -permeable AMPA receptors. Overall, the present study provides novel mechanistic insights into the pathogenesis of PVL and reveals that axon-glia synapses are highly vulnerable to white matter injury in the developing brain. More broadly, the study of white matter development and injury has general implications for a variety of neurological diseases, including PVL, stroke, spinal cord injury, and multiple sclerosis.
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