Prospero Homeobox 1 and Doublecortin Correlate with Neural Damage after Ischemic Stroke
Dong-Hun Lee1, Eun Chae Lee2, Sang-Won Park1
1Department of Neurosurgery, Soonchunhyang University Cheonan Hospital, College of Medicine, Soonchunhyang University, Cheonan, Korea.
Objective:
Markers of neuroinflammation during ischemic stroke are well characterized, but additional markers of neural damage are lacking. The study identified associations of behavioral disorders after stroke with histologic neural damage and molecular biological change.
Methods:
Eight-week-old, 25 g male mice of the C57BL/6J strain were subjected to middle cerebral artery occlusion (MCAO) to induce ischemic stroke. The control group was a healthy wild type (WT), and the experimental group were designed as a low severity MCAO1 and a high severity MCAO2 based on post-stroke neurological scoring. All groups underwent behavioral tests, realtime polymerase chain reaction, triphenyltetrazolium chloride (TTC) staining and Hematoxylin and Eosin staining. One-way analysis of variance was used to analyze statistical significance between groups.
Results:
In TTC staining, MCAO1 showed 29.02% and MCAO2 showed 38.94% infarct volume (p<0.0001). The pro-inflammatory cytokine interleukin (IL)-1β was most highly expressed in MCAO2 (WT 0.44 vs. MCAO1 2.69 vs. MCAO2 5.02, p<0.0001). From the distance to target in the Barnes maze test, WT had a distance of 178 cm, MCAO1 had a distance of 276 cm, and MCAO2 had a distance of 1051 (p=0.0015). The latency to target was 13.3 seconds for WT, 27.9 seconds for MCAO1, and 87.9 seconds for MCAO2 (p=0.0007). Prospero homeobox 1 (Prox1) was most highly expressed in MCAO2 (p=0.0004). Doublecortin (Dcx) was most highly expressed in MCAO2 (p<0.0001).
Conclusion:
The study demonstrated that histological damage to neural cells and changes in brain mRNA expression were associated with behavioral impairment after ischemic stroke. Prox1 and Dcx may be biomarkers of neural damage associated with long-term cognitive decline, and increased expression at the mRNA level was consistent with neural damage and long-term cognitive dysfunction.
Insights
This study reveals that neural damage and altered gene expression after ischemic stroke correlate with behavioral deficits. Prospero homeobox 1 (Prox1) and Doublecortin (Dcx) show potential as biomarkers for stroke-related cognitive decline.
Area of Science:
- Neuroscience
- Molecular Biology
- Pathology
Background:
- Ischemic stroke is a leading cause of disability, with neuroinflammation markers well-established.
- However, reliable markers for neural damage and subsequent behavioral impairments remain limited.
- Identifying these markers is crucial for understanding stroke recovery and developing targeted therapies.
Purpose of the Study:
- To investigate the association between histological neural damage and molecular changes with behavioral disorders following ischemic stroke.
- To identify potential biomarkers for neural damage and long-term cognitive dysfunction after stroke.
Main Methods:
- Middle cerebral artery occlusion (MCAO) was performed on mice to induce ischemic stroke of varying severity.
- Behavioral tests (Barnes maze), real-time polymerase chain reaction, and histological staining (TTC, H&E) were employed.
- Statistical analysis, including one-way ANOVA, was used to compare outcomes between control and MCAO groups.
Main Results:
- MCAO induced significant infarct volumes (29.02%–38.94%) and elevated pro-inflammatory cytokine IL-1β expression.
- Stroke groups exhibited impaired spatial learning and memory, evidenced by increased distance and latency in the Barnes maze.
- Expression of Prospero homeobox 1 (Prox1) and Doublecortin (Dcx) was significantly upregulated in the high-severity stroke group.
Conclusions:
- Histological neural damage and altered brain mRNA expression are linked to behavioral impairments post-ischemic stroke.
- Prospero homeobox 1 (Prox1) and Doublecortin (Dcx) mRNA expression correlate with neural damage and may serve as biomarkers for long-term cognitive dysfunction.
- These findings highlight potential molecular targets for mitigating stroke-induced cognitive deficits.
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