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Published on: October 23, 2014
Paraventricular oxytocin neurons attenuate post-ischemic brain injury by suppressing microglia-mediated
Rui Liu1,2,3, Xinyu Yang1,2,3,4, Haozhi Gong1,2,3
1Department of Neurosurgery and Department of Interventional Radiology, Xuanwu Hospital, Capital Medical University, Beijing, China.
Background:
Neuroinflammation is caused by the overactivation of microglia, contributing to secondary brain injury in ischemic stroke. Oxytocin (OXT), a neuropeptide synthesized by neurons in the paraventricular nucleus (PVN) of the hypothalamus, has demonstrated potential in mitigating inflammatory responses across various pathological conditions. However, research on the role of PVNOXT neurons in ischemic stroke is limited, and the modulatory effect of these neurons on neuroinflammation remains unclear.
Methods:
Transient middle cerebral artery occlusion (tMCAO) was performed in mice. OXT levels were measured in the peri-infarct cortex, serum, and cerebrospinal fluid (CSF), and OXTR expression was assessed in the peri-infarct cortex after tMCAO. Chemogenetic approaches were used to selectively activate PVNOXT neurons in OXT-Cre mice, after which neurological function, infarct volume, and blood-brain barrier integrity were evaluated. To investigate the mechanisms underlying the regulation of ischemic injury by PVNOXT neurons, RNA sequencing of the ipsilateral ischemic hemisphere was performed. Additional analyses, including flow cytometry, molecular assays, and Transwell migration experiments, were conducted to validate the downstream signaling pathways and cellular responses.
Results:
OXT levels significantly reduced in the peri-infarct cortex, serum, and CSF, whereas OXTR expression increased in the peri-infarct cortex after tMCAO. Chemogenetic activation of PVNOXT neurons increased OXT levels in both the brain and circulation, reduced infarct volume, and improved neurological outcomes. In addition, transcriptomic analysis identified CXCL3 as one of the most significantly downregulated chemokines after the activation of PVNOXT neurons, and CXCL3 downregulation was associated with reduced neutrophil chemotaxis. Further in vivo and in vitro investigations demonstrated that PVNOXT neurons inhibit microglial CXCL3 expression via the OXTR-ERK signaling pathway, thereby restricting the infiltration of neutrophils. In contrast, the administration of recombinant CXCL3 promoted the recruitment of neutrophils and exacerbated ischemic injury.
Conclusions:
PVNOXT neurons alleviate post-ischemic brain injury by inhibiting the secretion of CXCL3 from microglia, consequently reducing neutrophil chemotaxis. These results underscore the therapeutic potential of targeting PVNOXT neurons and their downstream signaling pathways to mitigate immune-mediated damage in ischemic stroke.
Insights
Activating oxytocin (OXT) neurons in the brain reduces brain injury after stroke. This neuroprotective effect is achieved by decreasing inflammation and neutrophil infiltration, highlighting a potential new therapy for ischemic stroke.
Area of Science:
- Neuroscience
- Immunology
- Endocrinology
Background:
- Neuroinflammation, driven by microglia overactivation, exacerbates secondary brain injury in ischemic stroke.
- Oxytocin (OXT), a hypothalamic neuropeptide, shows anti-inflammatory potential but its role in ischemic stroke is understudied.
- The precise modulatory effect of paraventricular nucleus (PVN) OXT neurons on neuroinflammation in stroke remains unclear.
Purpose of the Study:
- To investigate the role of PVN OXT neurons in regulating neuroinflammation and brain injury following ischemic stroke.
- To determine if activating PVN OXT neurons can mitigate ischemic stroke outcomes.
- To elucidate the underlying molecular mechanisms by which PVN OXT neurons influence immune responses in stroke.
Main Methods:
- Transient middle cerebral artery occlusion (tMCAO) model in mice to induce ischemic stroke.
- Chemogenetic activation of PVN OXT neurons in OXT-Cre mice to assess functional and histological outcomes.
- Measurement of OXT levels, OXTR expression, and assessment of blood-brain barrier integrity.
- RNA sequencing, flow cytometry, and in vitro assays to identify and validate downstream signaling pathways, focusing on chemokine CXCL3 and neutrophil migration.
Main Results:
- tMCAO led to decreased OXT levels and increased OXTR expression in the brain.
- Activation of PVN OXT neurons improved neurological function, reduced infarct volume, and enhanced blood-brain barrier integrity.
- PVN OXT neuron activation downregulated CXCL3 expression in microglia via the OXTR-ERK pathway, inhibiting neutrophil chemotaxis and reducing ischemic injury.
Conclusions:
- PVN OXT neurons exert neuroprotective effects in ischemic stroke by suppressing microglial CXCL3 secretion and reducing neutrophil infiltration.
- Targeting PVN OXT neurons and their downstream signaling pathways presents a promising therapeutic strategy for mitigating immune-mediated brain damage in ischemic stroke.
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