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Published on: November 22, 2024
Sequential transcriptomic alterations in the cerebral cortex of mice after cerebral venous sinus thrombosis
Rui Ding1, Jing Cheng1, Shanshan Wei2
1Department of Neurosurgery, Renmin Hospital of Wuhan University, Wuhan 430060, China.
Abstract:
To investigate the expression alterations of specific genes that occur after venous stroke, we identified differentially expressed genes (DEGs) between sham and damaged cortical tissues at 2 and 7 days after induction of cerebral venous sinus thrombosis (CVST) model. The profiles of DEGs were analyzed using GO, KEGG, GSEA, and PPI, and the crucial gene was further verified by western blot and immunofluorescence. We found 969 and 883 DEGs at 2 and 7 days after CVST, respectively. A marked increase in biological-process categories, such as immune system process and inflammatory response, and a decrease in neuropeptide signaling pathway were observed both at 2 and 7 days post-CVST. The KEGG pathway was enriched to varying degrees on complement and coagulation cascades, cytokine-cytokine receptor interaction, and multiple immune-inflammatory signaling pathways at 2 and 7 days post-CVST, separately. Furthermore, GSEA highlights the potential roles of the NOD-like receptor signaling pathway and cytokine-cytokine receptor interaction in CVST. Importantly, numerous genes related to KEGG pathways above featured prominently in the PPI network analysis, with IL1b being one of the most conspicuous. These time-dependent alterations in gene profiles and enrichment pathways reveal the unique pathophysiological characteristics of CVST and indicate novel therapeutic targets for venous stroke. SIGNIFICANCE: Cerebral venous sinus thrombosis (CVST) is an underrated and potentially fatal cause of stroke with a reported mortality of 5-10% worldwide. Currently, in addition to anticoagulant and thrombolytic therapy, effective treatments targeting the injured brain parenchyma after CVST remain limited. Besides, accurate diagnostic markers are still sorely lacking. In the present study, we will detect the transcriptomic alterations of the cerebral cortex of mice post-CVST by RNA-sequencing, screen differentially expressed genes and abnormal pathways through bioinformatics methods, analyze the correlation of these signals and CVST pathology, and finally validate the key molecules through western blot and immunofluorescence assays. Collectively, the study aimed to offer a reference for the discovery of specific genes/pathway alterations in the damaged cortical tissues of CVST mice and further reveal the underlying pathogenesis, thereby providing evidence for the diagnosis and treatment of CVST.
Insights
This study identified gene expression changes after venous stroke in mice, revealing increased immune responses and altered pathways. These findings highlight potential new targets for treating cerebral venous sinus thrombosis (CVST).
Area of Science:
- Neuroscience
- Genomics
- Pathophysiology
Background:
- Cerebral venous sinus thrombosis (CVST) is a serious stroke type with limited treatment options for brain tissue injury.
- Understanding the molecular mechanisms of CVST is crucial for developing targeted therapies and diagnostic markers.
Purpose of the Study:
- To investigate time-dependent gene expression alterations in the cerebral cortex following CVST induction in a mouse model.
- To identify key biological pathways and genes involved in the pathophysiology of venous stroke.
- To provide a basis for discovering novel therapeutic targets for CVST.
Main Methods:
- RNA sequencing was used to identify differentially expressed genes (DEGs) at 2 and 7 days post-CVST.
- Bioinformatic analyses including Gene Ontology (GO), KEGG pathway, Gene Set Enrichment Analysis (GSEA), and Protein-Protein Interaction (PPI) network analysis were performed.
- Key genes were validated using western blot and immunofluorescence assays.
Main Results:
- 969 and 883 DEGs were identified at 2 and 7 days post-CVST, respectively.
- Significant enrichment of immune system processes, inflammatory responses, complement and coagulation cascades, and cytokine-cytokine receptor interactions were observed.
- The NOD-like receptor signaling pathway and IL1b were highlighted as crucial components in CVST pathology.
Conclusions:
- Time-dependent transcriptomic alterations reveal unique pathophysiological characteristics of CVST.
- Immune and inflammatory pathways play a significant role in the development of venous stroke.
- Identified genes and pathways, such as IL1b, represent potential therapeutic targets for treating CVST.

