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mTOR drives cerebrovascular, synaptic, and cognitive dysfunction in normative aging
Candice E Van Skike1,2, Ai-Ling Lin3, Raquel Roberts Burbank1
1Department of Cellular and Integrative Physiology, Barshop Institute for Longevity and Aging Studies, University of Texas Health San Antonio, San Antonio, Texas.
Abstract:
Cerebrovascular dysfunction and cognitive decline are highly prevalent in aging, but the mechanisms underlying these impairments are unclear. Cerebral blood flow decreases with aging and is one of the earliest events in the pathogenesis of Alzheimer's disease (AD). We have previously shown that the mechanistic/mammalian target of rapamycin (mTOR) drives disease progression in mouse models of AD and in models of cognitive impairment associated with atherosclerosis, closely recapitulating vascular cognitive impairment. In the present studies, we sought to determine whether mTOR plays a role in cerebrovascular dysfunction and cognitive decline during normative aging in rats. Using behavioral tools and MRI-based functional imaging, together with biochemical and immunohistochemical approaches, we demonstrate that chronic mTOR attenuation with rapamycin ameliorates deficits in learning and memory, prevents neurovascular uncoupling, and restores cerebral perfusion in aged rats. Additionally, morphometric and biochemical analyses of hippocampus and cortex revealed that mTOR drives age-related declines in synaptic and vascular density during aging. These data indicate that in addition to mediating AD-like cognitive and cerebrovascular deficits in models of AD and atherosclerosis, mTOR drives cerebrovascular, neuronal, and cognitive deficits associated with normative aging. Thus, inhibitors of mTOR may have potential to treat age-related cerebrovascular dysfunction and cognitive decline. Since treatment of age-related cerebrovascular dysfunction in older adults is expected to prevent further deterioration of cerebral perfusion, recently identified as a biomarker for the very early (preclinical) stages of AD, mTOR attenuation may potentially block the initiation and progression of AD.
Insights
Targeting the mechanistic/mammalian target of rapamycin (mTOR) pathway can improve brain function in aging. Inhibiting mTOR in aged rats reversed cognitive decline and restored cerebral blood flow, suggesting therapeutic potential for age-related cognitive impairment.
Area of Science:
- Neuroscience
- Gerontology
- Vascular Biology
Background:
- Age-related cerebrovascular dysfunction and cognitive decline are common but poorly understood.
- Reduced cerebral blood flow is an early indicator in Alzheimer's disease (AD) pathogenesis.
- The mechanistic/mammalian target of rapamycin (mTOR) pathway is implicated in AD and atherosclerosis-related cognitive impairment.
Purpose of the Study:
- To investigate the role of mTOR in cerebrovascular dysfunction and cognitive decline during normal aging.
- To determine if mTOR inhibition can ameliorate age-related cognitive and cerebrovascular deficits.
Main Methods:
- Utilized behavioral tests and MRI-based functional imaging in aged rats.
- Employed biochemical and immunohistochemical analyses of brain tissue.
- Administered chronic mTOR inhibition using rapamycin.
Main Results:
- mTOR inhibition with rapamycin improved learning and memory in aged rats.
- Rapamycin treatment prevented neurovascular uncoupling and restored cerebral perfusion.
- mTOR inhibition counteracted age-related decreases in synaptic and vascular density in the hippocampus and cortex.
Conclusions:
- mTOR drives cerebrovascular, neuronal, and cognitive deficits associated with normative aging.
- mTOR inhibitors show potential for treating age-related cognitive decline and cerebrovascular dysfunction.
- Targeting mTOR may offer a strategy to prevent the initiation and progression of Alzheimer's disease.
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