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Published on: November 23, 2014
Microglia aggravate white matter injury via C3/C3aR pathway after experimental subarachnoid hemorrhage
Lei Yang1, Jinpeng Wu1, Fan Zhang2
1Department of Neurosurgery, The Affiliated Hospital, Southwest Medical University, Luzhou, China; Laboratory of Neurological Diseases and Brain Function, The Affiliated Hospital, Southwest Medical University, Luzhou, China.
Abstract:
The activation of glial cells is intimately associated with the pathophysiology of neuroinflammation and white matter injury (WMI) during both acute and chronic phases following subarachnoid hemorrhage (SAH). The complement C3a receptor (C3aR) has a dual role in modulating inflammation and contributes to neurodevelopment, neuroplasticity, and neurodegeneration. However, its impact on WMI in the context of SAH remains unclear. In this study, 175 male C57BL/6J mice underwent SAH through endovascular perforation. Oxyhemoglobin (oxy-Hb) was employed to simulate SAH in vitro. A suite of techniques, including immunohistochemistry, transcriptomic sequencing, and a range of molecular biotechnologies, were utilized to evaluate the activation of the C3-C3aR pathway on microglial polarization and WMI. Results revealed that post-SAH abnormal activation of microglia was accompanied by upregulation of complement C3 and C3aR. The inhibition of C3aR decreased abnormal microglial activation, attenuated neuroinflammation, and ameliorated WMI and cognitive deficits following SAH. RNA-Seq indicated that C3aR inhibition downregulated several immune and inflammatory pathways and mitigated cellular injury by reducing p53-induced death domain protein 1 (Pidd1) and Protein kinase RNA-like ER kinase (Perk) expression, two factors mainly function in sensing and responding to cellular stress and endoplasmic reticulum (ER) stress. The deleterious effects of the C3-C3aR axis in the context of SAH may be related to endoplasmic reticulum (ER) stress-dependent cellular injury and inflammasome formation. Agonists of Perk can exacerbate the cellular injury and neuroinflammation, which was attenuated by C3aR inhibition after SAH. Additionally, intranasal administration of C3a during the subacute phase of SAH was found to decrease astrocyte reactivity and alleviate cognitive deficits post-SAH. This research deepens our understanding of the complex pathophysiology of WMI following SAH and underscores the therapeutic potential of C3a treatment in promoting white matter repair and enhancing functional recovery prognosis. These insights pave the way for future clinical application of C3a-based therapies, promising significant benefits in the treatment of SAH and its related complications.
Insights
Inhibiting the C3a receptor (C3aR) reduces neuroinflammation and white matter injury after subarachnoid hemorrhage (SAH). This approach also improves cognitive deficits, highlighting C3aR as a therapeutic target for SAH recovery.
Area of Science:
- Neuroscience
- Immunology
- Pathophysiology
Background:
- Glial cell activation drives neuroinflammation and white matter injury (WMI) in subarachnoid hemorrhage (SAH).
- The complement C3a receptor (C3aR) influences inflammation, neurodevelopment, and neurodegeneration, but its role in SAH-induced WMI is unknown.
Purpose of the Study:
- To investigate the role of the C3-C3aR pathway in microglial activation and WMI following SAH.
- To evaluate the therapeutic potential of C3aR inhibition and C3a treatment in a mouse model of SAH.
Main Methods:
- Subarachnoid hemorrhage (SAH) was induced in mice; oxyhemoglobin (oxy-Hb) was used in vitro.
- Immunohistochemistry, transcriptomic sequencing (RNA-Seq), and molecular biotechnologies assessed C3-C3aR pathway activation, microglial polarization, and WMI.
- C3aR inhibition and intranasal C3a administration were employed.
Main Results:
- SAH led to increased complement C3 and C3aR expression, correlating with microglial activation and WMI.
- C3aR inhibition reduced microglial activation, neuroinflammation, WMI, and cognitive deficits.
- C3aR inhibition downregulated inflammatory pathways and mitigated cellular injury by reducing Pidd1 and Perk expression, suggesting a role in ER stress.
- Intranasal C3a administration reduced astrocyte reactivity and improved cognitive deficits.
Conclusions:
- The C3-C3aR axis exacerbates SAH-induced WMI, potentially via ER stress and inflammasome activation.
- C3aR inhibition is a promising therapeutic strategy for mitigating WMI and cognitive impairment post-SAH.
- C3a treatment shows potential for promoting white matter repair and functional recovery after SAH.
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