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Author Spotlight: Decoding Mitochondrial Aging
Published on: June 30, 2023
Synaptosomal Mitochondrial Dysfunction in 5xFAD Mouse Model of Alzheimer's Disease
Lu Wang1,2, Lan Guo1, Lin Lu1,2
1Department of Biological Sciences, The University of Texas at Dallas, Richardson, TX, United States of America, 75080.
Abstract:
Brain mitochondrial dysfunction is hallmark pathology of Alzheimer's disease (AD). Recently, the role of synaptosomal mitochondrial dysfunction in the development of synaptic injury in AD has received increasing attention. Synaptosomal mitochondria are a subgroup of neuronal mitochondria specifically locating at synapses. They play an essential role in fueling synaptic functions by providing energy on the site; and their defects may lead to synaptic failure, which is an early and pronounced pathology in AD. In our previous studies we have determined early synaptosomal mitochondrial dysfunction in an AD animal model (J20 line) overexpressing human Amyloid beta (Aβ), the key mediator of AD. In view of the limitations of J20 line mice in representing the full aspects of amyloidopathy in AD cases, we employed 5xFAD mice which are thought to be a desirable paradigm of amyloidopathy as seen in AD subjects. In addition, we have also examined the status of synaptosomal mitochondrial dynamics as well as Parkin-mediated mitophagy which have not been previously investigated in this mouse model. In comparison to nontransgenic (nonTg mice), 5xFAD mice demonstrated prominent synaptosomal mitochondrial dysfunction. Moreover, synaptosomal mitochondria from the AD mouse model displayed imbalanced mitochondrial dynamics towards fission along with activated Parkin and LC3BII recruitment correlating to spatial learning & memory impairments in 5xFAD mice in an age-dependent manner. These results suggest that synaptosomal mitochondrial deficits are primary pathology in Aβ-rich environments and further confirm the relevance of synaptosomal mitochondrial deficits to the development of AD.
Insights
Synaptosomal mitochondrial dysfunction, a key Alzheimer's disease (AD) pathology, worsens with amyloid-beta accumulation. This study in 5xFAD mice reveals impaired mitochondrial dynamics and mitophagy contribute to cognitive decline in AD.
Area of Science:
- Neuroscience
- Cell Biology
- Pathology
Background:
- Brain mitochondrial dysfunction is a core feature of Alzheimer's disease (AD).
- Synaptosomal mitochondria, crucial for synaptic energy supply, are increasingly implicated in AD-related synaptic injury.
- Previous studies identified early synaptosomal mitochondrial dysfunction in J20 AD mouse models.
Purpose of the Study:
- To investigate synaptosomal mitochondrial dysfunction, dynamics, and mitophagy in the 5xFAD mouse model of Alzheimer's disease.
- To correlate these mitochondrial changes with cognitive impairments.
Main Methods:
- Utilized 5xFAD transgenic mice, a model for amyloidopathy in AD.
- Compared synaptosomal mitochondrial function, dynamics (fission/fusion), and Parkin-mediated mitophagy in 5xFAD mice versus non-transgenic controls.
- Assessed spatial learning and memory deficits.
Main Results:
- 5xFAD mice exhibited significant synaptosomal mitochondrial dysfunction compared to controls.
- Mitochondria in 5xFAD mice showed a shift towards fission, with increased Parkin and LC3BII recruitment.
- These mitochondrial alterations correlated with age-dependent spatial learning and memory impairments.
Conclusions:
- Synaptosomal mitochondrial deficits are a primary pathology in amyloid-beta-rich environments.
- Imbalanced mitochondrial dynamics and mitophagy are linked to cognitive decline in AD.
- These findings reinforce the critical role of synaptosomal mitochondrial health in Alzheimer's disease pathogenesis.
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