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Published on: February 11, 2019
Characterization of microsphere embolism-induced impairment of learning and memory function and the cholinergic
1Department of Pharmacology, Tokyo University of Pharmacy & Life Science, Hachioji, Japan.
Abstract:
The impairments of learning and memory function and of the cholinergic system were examined in rats with microsphere embolism. Microsphere embolism was induced by injection of 900 microspheres with a diameter of 48 microm into the right internal carotid artery. The retention latency of a passive avoidance test was shortened and the escape latency of a water maze test was prolonged, when the animals were tested on the 5th to 10th day after the embolism, suggesting learning and memory dysfunction. Cholinergic parameters of the striatum and hippocampus, such as acetylcholine (ACh) content (67 and 60% decrease, respectively), choline acetyltransferase (ChAT) activity (45 and 56% decrease, respectively), and Bmax of muscarinic acetylcholine M1-receptor (43 and 37% decrease, respectively), were reduced on the 11th day after the embolism, suggesting attenuation of ACh synthesis and a decrease in the number of muscarinic acetylcholine M1-receptors mainly in the striatum and hippocampus. Areas not stained with triphenyltetrazolium chloride, an indication of infarction, were detected mainly in the striatum and hippocampus and partly in the frontal cortex on the 11th day after the embolism. The results suggest that an animal with microsphere embolism may be a good ischemic model with relatively sustained impairments of learning and memory function and of the striatal and hippocampal cholinergic system.
Insights
Rats with microsphere embolism showed sustained learning and memory deficits. This model exhibited reduced acetylcholine levels and muscarinic M1-receptor availability in key brain regions.
Area of Science:
- Neuroscience
- Ischemic Stroke Research
- Animal Models
Background:
- Learning and memory impairments are often linked to cholinergic system dysfunction.
- Developing reliable animal models for studying ischemic brain injury is crucial.
Purpose of the Study:
- To investigate learning and memory impairments in rats following microsphere embolism.
- To examine the impact of microsphere embolism on the cholinergic system in specific brain regions.
Main Methods:
- Microsphere embolism induced by injecting 48-micrometer microspheres into the carotid artery.
- Behavioral tests (passive avoidance, water maze) assessed cognitive function.
- Cholinergic parameters (ACh content, ChAT activity, M1-receptor Bmax) and infarction (TTC staining) were measured.
Main Results:
- Significant learning and memory deficits observed 5-10 days post-embolism.
- Reduced acetylcholine content, choline acetyltransferase activity, and M1-receptor density in striatum and hippocampus.
- Infarction primarily localized to striatum and hippocampus.
Conclusions:
- Microsphere embolism in rats induces lasting impairments in learning and memory.
- This model demonstrates significant cholinergic system deficits in the striatum and hippocampus.
- The microsphere embolism model is suitable for studying sustained ischemic effects on cognition and the cholinergic system.
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