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Impact and Interrelationships of Striatal Proteins, EPHB2, OPRM1, and PER2 on Mild Cognitive Impairment
Nicole Bon Campomayor1,2, Hee Jin Kim1, Hyun Jun Lee1
1Department of Pharmacy, Uimyung Research Institute for Neuroscience, Sahmyook University, Hwarangro 815, Nowon-gu, Seoul, 01795, Republic of Korea.
Abstract:
With the global increase in life expectancy, there has been a rise in the incidence of cognitive impairments attributed to diverse etiologies. Notably, approximately 50% of individuals diagnosed with mild cognitive impairment (MCI) progress to dementia within 3 years. However, the precise mechanisms underlying MCI remain elusive. Therefore, this study aimed to elucidate potential mechanisms implicated in MCI utilizing Per2 knockout (KO) mice, which have previously been shown to have cognitive deficits. Behavioral (Y-maze, Barnes maze) and molecular (electrophysiology, RNA sequencing, western blot, and immunofluorescence) experiments were conducted in Per2 KO and wild-type (WT) mice. Per2 KO mice exhibited impaired spatial working memory in the Y-maze and Barnes maze. However, there were no significant group differences in hippocampal long-term potentiation (LTP) between Per2 KO and WT mice, whereas striatal LTP in Per2 KO mice was lower compared to WT mice. In RNA sequencing analysis, 58 genes were downregulated and 64 genes were upregulated in the striatum of Per2 KO mice compared to WT mice. Among the differentially expressed genes, four genes (Chrm2, EphB2, Htr1b, Oprm1) were identified. Optimal expression levels of EPHB2 and OPRM1 were found to significantly enhance cognitive performance in mice. Additionally, Per2 KO mice exhibited reduced EPHB2-NMDAR-LTP and OPRM-mTOR signaling, along with elevated amyloid beta (Aβ) levels, when compared to WT mice. However, these alterations were reversed upon administration of morphine treatment. Striatal OPRM1-mTOR signaling, EPHB2-NMDAR-LTP signaling, and Aβ expression levels may exert a combined effect on MCI under the control of Per2 expression.
Insights
Per2 knockout mice show impaired memory and reduced striatal long-term potentiation (LTP), linked to altered gene expression and amyloid beta levels. Morphine treatment reversed these cognitive deficits in mice.
Area of Science:
- Neuroscience
- Genetics
- Molecular Biology
Background:
- Cognitive impairments, including mild cognitive impairment (MCI), are increasing with life expectancy.
- Approximately 50% of individuals with MCI progress to dementia within three years.
- The underlying mechanisms of MCI are not fully understood.
Purpose of the Study:
- To investigate the role of the Per2 gene in cognitive function and identify molecular mechanisms associated with MCI.
- To elucidate potential therapeutic targets for MCI.
Main Methods:
- Behavioral tests (Y-maze, Barnes maze) were used to assess cognitive function in Per2 knockout (KO) and wild-type (WT) mice.
- Molecular analyses included electrophysiology, RNA sequencing, western blot, and immunofluorescence.
- Amyloid beta (Aβ) levels and signaling pathways (EPHB2-NMDAR-LTP, OPRM-mTOR) were examined.
Main Results:
- Per2 KO mice demonstrated impaired spatial working memory and reduced striatal long-term potentiation (LTP).
- RNA sequencing revealed differential expression of genes in the striatum of Per2 KO mice, with EPHB2 and OPRM1 showing significant effects on cognition.
- Per2 KO mice exhibited reduced EPHB2-NMDAR-LTP and OPRM-mTOR signaling, alongside elevated Aβ levels, which were reversed by morphine treatment.
Conclusions:
- Per2 plays a crucial role in maintaining cognitive function, particularly spatial working memory.
- Striatal OPRM1-mTOR and EPHB2-NMDAR-LTP signaling pathways, along with Aβ levels, are implicated in MCI pathogenesis under Per2 control.
- Targeting these pathways, potentially with agents like morphine, may offer therapeutic strategies for MCI.
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