Microglial DNA G-quadruplex accumulation is associated with altered autophagy-related responses and aggravated
Rijin Lin1, JiaXin Wan1, Mengyan Fan1
1Department of Neurointervention, the First Affiliated Hospital of Zhengzhou University, Henan Provincial Neurointerventional Engineering Research Center, Zhengzhou 450003, Henan, China.
Abstract:
Ischemic stroke creates a hypoxic and nutrient-deprived microenvironment that rapidly activates microglia, a central driver of post-ischemic inflammation and a key determinant of secondary tissue damage and neurological recovery. G-quadruplex (G4) structures are non-canonical nucleic acid conformations that can reshape stress responses in diverse settings, yet whether microglial DNA G4 relates to ischemic pathology remains unknown. Here, using a transient middle cerebral artery occlusion (tMCAO) mouse model and an oxygen-glucose deprivation/reoxygenation (OGD/R) primary microglia model, we examined how DNA G4 dynamics relate to microglial stress responses and post-ischemic outcomes. We found that cerebral ischemia induced a dynamic accumulation of microglial DNA G4 signal, accompanied by transient changes in autophagy-related markers. Pharmacological stabilization of G4 with pyridostatin (Pds) was associated with increased mTOR phosphorylation under ischemic stress, increased inhibitory ULK1 phosphorylation, and alterations in autophagy-related proteins, including a reduced LC3-II/LC3-I ratio, p62 accumulation, and downregulation of Beclin-1. In parallel, Pds treatment was associated with increased overall cellular stress under ischemic conditions. Under the prophylactic in vivo paradigm, Pds-treated mice showed larger infarct burden and worse neurological deficits. Importantly, the mTOR inhibitor rapamycin partially reversed Pds-associated autophagy-related changes and partially improved tissue and functional outcomes, although it did not fully normalize the broader stress-associated alterations. Collectively, our findings suggest that a pre-existing G4-stabilized state is associated with altered mTOR-ULK1/autophagy-related responses and aggravated ischemic outcomes, highlighting the G4-mTOR-autophagy-related axis as a potential contributor to post-ischemic microglial stress responses.
Insights
G-quadruplex (G4) stabilization in microglia worsens ischemic stroke outcomes by altering mTOR and autophagy pathways. Targeting this G4-mTOR-autophagy axis may improve recovery after stroke.
Area of Science:
- Neuroscience
- Molecular Biology
- Cellular Biology
Background:
- Ischemic stroke triggers microglial activation, driving inflammation and secondary tissue damage.
- G-quadruplex (G4) structures are non-canonical DNA conformations influencing cellular responses, but their role in microglial ischemic pathology is unknown.
Purpose of the Study:
- To investigate the relationship between DNA G4 dynamics and microglial stress responses in ischemic stroke.
- To determine the impact of G4 stabilization on post-ischemic outcomes.
Main Methods:
- Utilized transient middle cerebral artery occlusion (tMCAO) mouse model and oxygen-glucose deprivation/reoxygenation (OGD/R) primary microglia model.
- Examined DNA G4 accumulation, autophagy markers, and mTOR signaling pathway.
- Administered pyridostatin (Pds) to stabilize G4 structures and rapamycin to inhibit mTOR.
Main Results:
- Cerebral ischemia induced dynamic microglial DNA G4 accumulation and altered autophagy markers.
- Pharmacological G4 stabilization with Pds increased cellular stress, mTOR phosphorylation, and impaired autophagy.
- Pds treatment in vivo worsened infarct size and neurological deficits; rapamycin partially ameliorated these effects.
Conclusions:
- A pre-existing G4-stabilized state in microglia exacerbates ischemic stroke outcomes.
- The G4-mTOR-autophagy axis represents a novel pathway contributing to microglial stress responses in ischemic stroke.
- Modulating this axis holds potential for therapeutic intervention in stroke recovery.
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