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Updated: Sep 19, 2025

An In Vivo Duo-color Method for Imaging Vascular Dynamics Following Contusive Spinal Cord Injury
Published on: December 31, 2017
Multi-omics characterization of oncosis in spinal cord injury
Zhipeng Jiang1, Youwei Guo1, Zihan Wang1
1Department of Neurosurgery, Xiangya Hospital, Central South University, Changsha, Hunan 410008, China; Xiangya School of Basic Medical Sciences, Central South University, Changsha, Hunan Province, 410078, China; National Clinical Research Center for Geriatric Disorders, Xiangya Hospital, Central South University, Changsha, Hunan 410008, China.
Abstract:
Spinal cord injury (SCI) initiates a cascade of complex secondary damage processes, prominently involving programmed cell death (PCD). Although apoptosis and necroptosis have been extensively characterized, the role of oncosis in SCI remains inadequately understood. In this study, we examined the expression dynamics and cellular localization of oncosis-related genes (ORGs) following SCI. We conducted an analysis of bulk RNA-seq data to identify differentially expressed ORGs at five distinct time points post-injury. Six candidate genes (Trp53, Casp3, Jun, Tmem123, Chmp6, Map2) were identified based on their temporal expression patterns. Single-cell RNA sequencing and spatial transcriptomics revealed specific cell-type specificity and lesion-centered spatial enrichment of these genes. Trp53 and Casp3 were found to be rapidly upregulated in neurons and microglia, whereas Tmem123 exhibited a progressive downregulation. Jun emonstrated biphasic activation in astrocytes and oligodendrocytes. In vitro experiments using LPS-treated PC12 cells corroborated key expression trends, with transmission electron microscopy (TEM) confirming the morphological characteristics of oncosis. In vivo, quantitative reverse transcription PCR (qRT-PCR) qRT-PCR and immunofluorescence analyses in a rat SCI model further validated the altered expression of these genes. Significantly, a reduction in Map2 and an elevation in Chmp6 were associated with cytoskeletal collapse and plasma membrane rupture, respectively. Together, our findings provide the first spatiotemporal mapping of oncotic gene regulation following SCI and identify potential targets for therapeutic intervention.
Insights
Spinal cord injury (SCI) triggers cell death. This study maps the genes involved in oncosis, a poorly understood cell death pathway, revealing key genes and their regulation post-SCI for potential therapies.
Area of Science:
- Neuroscience
- Cell Biology
- Genetics
Background:
- Spinal cord injury (SCI) involves complex secondary damage, including programmed cell death (PCD).
- While apoptosis and necroptosis are well-studied, the role of oncosis in SCI pathogenesis is unclear.
- Understanding oncosis mechanisms is crucial for developing effective SCI treatments.
Purpose of the Study:
- To investigate the expression dynamics and cellular localization of oncosis-related genes (ORGs) following SCI.
- To identify specific ORGs involved in SCI-induced oncosis.
- To elucidate the spatiotemporal regulation of these genes in different cell types.
Main Methods:
- Bulk RNA sequencing to identify differentially expressed ORGs at multiple time points post-SCI.
- Single-cell RNA sequencing and spatial transcriptomics for cell-type specificity and spatial mapping.
- In vitro cell culture and in vivo rat SCI models with qRT-PCR and immunofluorescence validation.
Main Results:
- Six candidate ORGs (Trp53, Casp3, Jun, Tmem123, Chmp6, Map2) were identified with distinct temporal expression patterns.
- Trp53 and Casp3 upregulated in neurons/microglia; Tmem123 downregulated; Jun biphasic in astrocytes/oligodendrocytes.
- Map2 reduction correlated with cytoskeletal collapse, Chmp6 elevation with plasma membrane rupture, confirming oncosis hallmarks.
Conclusions:
- This study provides the first spatiotemporal map of oncotic gene regulation after SCI.
- Identified genes and their cellular localization offer potential therapeutic targets for mitigating SCI-induced damage.
- Further research into oncosis pathways could lead to novel treatment strategies for spinal cord injuries.
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