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Updated: May 19, 2026

Preparation of Acute Hippocampal Slices from Rats and Transgenic Mice for the Study of Synaptic Alterations during Aging and Amyloid Pathology
Published on: March 23, 2011
Age-related memory decline is associated with vascular and microglial degeneration in aged rats
Rong Zhang1, Tamar Kadar, Ernest Sirimanne
1Liggins Institute, University of Auckland, Auckland, New Zealand.
Abstract:
The hippocampus processes memory is an early target of aging-related biological and structural lesions, leading to memory decline. With absent neurodegeneration in the hippocampus, which identified in rodent model of normal aging the pathology underlying age-related memory impairment is not complete. The effective glial-vascular networks are the key for maintaining neuronal functions. The changes of glial cells and cerebral capillaries with age may contribute to memory decline. Thus we examined age associated changes in neurons, glial phenotypes and microvasculature in the hippocampus of aged rats with memory decline. Young adult (6 months) and aged (35 months) male rats (Fisher/Norway-Brown) were used. To evaluate memory, four days of acquisition phase of Morris water maze tasks were carried out in both age groups and followed by a probe trial 2 h after the acquisition. The brains were then collected for analysis using immunochemistry. The aged rats showed a delayed latency (p<0.001) and longer swimming path (p<0.001) to locate a hidden platform. They also spent less time in and made delayed and fewer entries into the correct quadrant during the probe trial. Without seen neuronal degeneration, the aged rats with memory impairments have displayed dopamine depletion, profound vascular and microglial degeneration with reduced vascular endothelial growth factor and elevated GFAP expression in the hippocampus. The data indicate the memory decline with age is associated with neuronal dysfunction, possibly due to impaired glial-vascular-neuronal networks, but not neuronal degeneration. Glial and vascular degeneration found in aged rats may represent early event of aging pathology prior to neuronal degeneration.
Insights
Aging impairs memory by affecting glial-vascular networks in the hippocampus, not neuronal degeneration. Aged rats show dopamine depletion and microglial/vascular damage, highlighting early aging pathology.
Area of Science:
- Neuroscience
- Aging Research
- Cellular Biology
Background:
- The hippocampus is crucial for memory and vulnerable to aging.
- Age-related memory decline occurs even without hippocampal neurodegeneration.
- Glial-vascular networks are vital for neuronal function and may be affected by aging.
Purpose of the Study:
- To investigate age-associated changes in neurons, glial cells, and microvasculature in the hippocampus of aged rats exhibiting memory decline.
- To determine the underlying pathology of age-related memory impairment in the absence of overt neurodegeneration.
Main Methods:
- Utilized young adult (6 months) and aged (35 months) male Fisher/Norway-Brown rats.
- Assessed memory function using the Morris water maze task (acquisition and probe trials).
- Analyzed hippocampal tissue using immunohistochemistry to examine neuronal, glial, and vascular changes.
Main Results:
- Aged rats demonstrated significant memory deficits, including longer latency and swimming paths to find the platform, and reduced time/entries in the target quadrant.
- Despite intact neurons, aged rats showed dopamine depletion, vascular and microglial degeneration, reduced vascular endothelial growth factor, and increased GFAP expression.
- These findings suggest neuronal dysfunction due to impaired glial-vascular-neuronal networks.
Conclusions:
- Age-related memory decline in rats is linked to neuronal dysfunction, not neuronal degeneration.
- Impaired glial-vascular-neuronal networks are implicated in age-related memory loss.
- Glial and vascular degeneration may be early pathological events in aging, preceding neuronal damage.
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