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Cortical transcriptome analysis after spinal cord injury reveals the regenerative mechanism of central nervous system in CRMP2 knock-in mice
- Source :
- Neural Regeneration Research, Neural Regeneration Research, Vol 16, Iss 7, Pp 1258-1265 (2021)
- Publication Year :
- 2020
- Publisher :
- Wolters Kluwer - Medknow, 2020.
-
Abstract
- Recent studies have shown that mutation at Ser522 causes inhibition of collapsin response mediator protein 2 (CRMP2) phosphorylation and induces axon elongation and partial recovery of the lost sensorimotor function after spinal cord injury (SCI). We aimed to reveal the intracellular mechanism in axotomized neurons in the CRMP2 knock-in (CRMP2KI) mouse model by performing transcriptome analysis in mouse sensorimotor cortex using micro-dissection punching system. Prior to that, we analyzed the structural pathophysiology in axotomized or neighboring neurons after SCI and found that somatic atrophy and dendritic spine reduction in sensorimotor cortex were suppressed in CRMP2KI mice. Further analysis of the transcriptome has aided in the identification of four hemoglobin genes Hba-a1, Hba-a2, Hbb-bs, and Hbb-bt that are significantly upregulated in wild-type mice with concomitant upregulation of genes involved in the oxidative phosphorylation and ribosomal pathways after SCI. However, we observed substantial upregulation in channel activity genes and downregulation of genes regulating vesicles, synaptic function, glial cell differentiation in CRMP2KI mice. Moreover, the transcriptome profile of CRMP2KI mice has been discussed wherein energy metabolism and neuronal pathways were found to be differentially regulated. Our results showed that CRMP2KI mice displayed improved SCI pathophysiology not only via microtubule stabilization in neurons, but also possibly via the whole metabolic system in the central nervous system, response changes in glial cells, and synapses. Taken together, we reveal new insights on SCI pathophysiology and the regenerative mechanism of central nervous system by the inhibition of CRMP2 phosphorylation at Ser522. All these experiments were performed in accordance with the guidelines of the Institutional Animal Care and Use Committee at Waseda University, Japan (2017-A027 approved on March 21, 2017; 2018-A003 approved on March 25, 2018; 2019-A026 approved on March 25, 2019).
- Subjects :
- cns regeneration
cortex
crmp2
hemoglobin
metabolic pathway
spinal cord injury
spine
transcriptome
Dendritic spine
Central nervous system
Biology
lcsh:RC346-429
Cell biology
Transcriptome
Glial cell differentiation
medicine.anatomical_structure
Developmental Neuroscience
Downregulation and upregulation
CRMP2
Gene knockin
medicine
CNS regeneration
Collapsin response mediator protein family
Axon
lcsh:Neurology. Diseases of the nervous system
Research Article
Subjects
Details
- Language :
- English
- ISSN :
- 18767958 and 16735374
- Volume :
- 16
- Issue :
- 7
- Database :
- OpenAIRE
- Journal :
- Neural Regeneration Research
- Accession number :
- edsair.doi.dedup.....0ff26e0405632d058530eb1db7dbf719