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Upregulation of RasGRF1 ameliorates spatial cognitive dysfunction in mice after chronic cerebral hypoperfusion
Li-Jie Yang1, Wei Wu2, Wan-Rong Jiang1
1Department of Geriatrics, Renmin Hospital of Wuhan University, Wuhan 430060, China.
Insights
Chronic cerebral hypoperfusion impairs cognition by downregulating RasGRF1 via miRNA-323-3p. Restoring RasGRF1 improves memory and synaptic plasticity, suggesting therapeutic potential.
Area of Science:
- Neuroscience
- Molecular Biology
- Genetics
Background:
- Chronic cerebral hypoperfusion (CCH) causes cognitive impairment, but mechanisms are unclear.
- Effective treatments for CCH-induced cognitive dysfunction are lacking.
- RasGRF1 is crucial for cognition and synaptic plasticity.
Purpose of the Study:
- Investigate if altered RasGRF1 expression underlies CCH-induced cognitive deficits.
- Determine the role of miRNA-323-3p in regulating RasGRF1 expression in CCH.
- Explore therapeutic potential of targeting RasGRF1 and miRNA-323-3p.
Main Methods:
- Assessed RasGRF1 levels in CCH models.
- Predicted and validated miRNA-323-3p binding to Rasgrf1 mRNA.
- Inhibited miRNA-323-3p and used RasGRF1 siRNA in vivo and in vitro.
- Evaluated cognitive function using Morris water maze and Y maze tests.
- Measured long-term potentiation, dendritic spine density, and synapse integrity.
Main Results:
- RasGRF1 levels decreased, while miRNA-323-3p increased following CCH.
- miRNA-323-3p directly downregulated RasGRF1 expression.
- Inhibiting miRNA-323-3p restored RasGRF1 levels and improved spatial learning and memory.
- RasGRF1 upregulation reversed CCH-induced deficits in synaptic plasticity and structure.
Conclusions:
- miRNA-323-3p-mediated downregulation of RasGRF1 contributes to cognitive impairment in CCH.
- Restoring RasGRF1 levels ameliorates cognitive deficits and synaptic deterioration.
- RasGRF1 and miRNA-323-3p are promising therapeutic targets for CCH-related cognitive dysfunction.
Abstract:
Chronic cerebral hypoperfusion (CCH)-mediated cognitive impairment is a serious problem worldwide. However, given its complexity, the underlying mechanisms by which CCH induces cognitive dysfunction remain unclear, resulting in a lack of effective treatments. In this study, we aimed to determine whether changes in the expression of RasGRF1, an important protein associated with cognition and synaptic plasticity, underlie the associated impairments in cognition after CCH. We found that RasGRF1 levels markedly decreased following CCH. Through prediction and validation studies, we observed that miRNA-323-3p was upregulated after CCH and could bind to the 3'-untranslated region of Rasgrf1 mRNA and regulate its expression in vitro. Moreover, the inhibition of miRNA-323-3p upregulated Rasgrf1 expression in the hippocampus after CCH, which was reversed by Rasgrf1 siRNA. This suggests that miRNA-323-3p is an important regulator of Rasgrf1. The Morris water maze and Y maze tests showed that miRNA-323-3p inhibition and Rasgrf1 upregulation improved spatial learning and memory, and electrophysiological measurements revealed deficits in long-term potentiation after CCH that were reversed by Rasgrf1 upregulation. Dendritic spine density and mature mushroom spine density were also improved after miRNA-323-3p inhibition and Rasgrf1 upregulation. Furthermore, Rasgrf1 upregulation by miRNA-323-3p inhibition improved dendritic spine density and mature mushroom spine density and ameliorated the deterioration of synapses and postsynaptic density. Overall, RasGRF1 regulation attenuated cognitive impairment, helped maintain structural and functional synaptic plasticity, and prevented synapse deterioration after CCH. These results suggest that Rasgrf1 downregulation by miRNA-323-3p plays an important role in cognitive impairment after CCH. Thus, RasGRF1 and miRNA-323-3p may represent potential therapeutic targets for cognitive impairment after CCH.
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