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Analysis of Brain Mitochondria Using Serial Block-Face Scanning Electron Microscopy
Published on: July 9, 2016
Targeting mitochondria in the aged cerebral vasculature with SS-31, a proteomic study of brain microvessels
Abigail Seman1, Partha K Chandra1,2, Stephanie D Byrum3
1Department of Pharmacology, Tulane University School of Medicine, 1430 Tulane Avenue, New Orleans, LA, 70112, USA.
Abstract:
Cognitive impairment and dementias during aging such as Alzheimer's disease are linked to functional decline and structural alterations of the brain microvasculature. Although mechanisms leading to microvascular changes during aging are not clear, loss of mitochondria, and reduced efficiency of remaining mitochondria appear to play a major role. Pharmacological agents, such as SS-31, which target mitochondria have been shown to be effective during aging and diseases; however, the benefit to mitochondrial- and non-mitochondrial proteins in the brain microvasculature has not been examined. We tested whether attenuation of aging-associated changes in the brain microvascular proteome via targeting mitochondria represents a therapeutic option for the aging brain. We used aged male (> 18 months) C57Bl6/J mice treated with a mitochondria-targeted tetrapeptide, SS-31, or vehicle saline. Cerebral blood flow (CBF) was determined using laser speckle imaging during a 2-week treatment period. Then, isolated cortical microvessels (MVs) composed of end arterioles, capillaries, and venules were used for Orbitrap Eclipse Tribrid mass spectrometry. CBF was similar among the groups, whereas bioinformatic analysis revealed substantial differences in protein abundance of cortical MVs between SS-31 and vehicle. We identified 6267 proteins, of which 12% were mitochondria-associated. Of this 12%, 107 were significantly differentially expressed and were associated with oxidative phosphorylation, metabolism, the antioxidant defense system, or mitochondrial dynamics. Administration of SS-31 affected many non-mitochondrial proteins. Our findings suggest that mitochondria in the microvasculature represent a therapeutic target in the aging brain, and widespread changes in the proteome may underlie the rejuvenating actions of SS-31 in aging.
Insights
Mitochondria dysfunction contributes to brain aging. The drug SS-31, targeting mitochondria, altered brain microvascular proteins, suggesting mitochondria are a therapeutic target for aging brains.
Area of Science:
- Neuroscience
- Gerontology
- Biochemistry
Background:
- Aging brains experience microvascular changes linked to cognitive decline and diseases like Alzheimer's.
- Mitochondrial dysfunction is a key factor in age-related microvascular alterations.
- The therapeutic potential of mitochondria-targeted agents in brain microvasculature during aging remains unexplored.
Purpose of the Study:
- To investigate if targeting mitochondria with SS-31 can mitigate aging-associated changes in the brain microvascular proteome.
- To evaluate the impact of SS-31 on both mitochondrial and non-mitochondrial proteins within the brain microvasculature.
Main Methods:
- Aged male mice were treated with the mitochondria-targeted tetrapeptide SS-31 or a vehicle control.
- Cerebral blood flow (CBF) was measured using laser speckle imaging.
- Proteomic analysis of isolated cortical microvessels was performed using Orbitrap Eclipse Tribrid mass spectrometry.
Main Results:
- While CBF remained unchanged, proteomic analysis revealed significant differences in cortical microvessel protein abundance between SS-31 and vehicle groups.
- Out of 6267 identified proteins, 12% were mitochondria-associated, with 107 significantly differentially expressed.
- Differentially expressed proteins were linked to oxidative phosphorylation, metabolism, antioxidant defense, and mitochondrial dynamics, with SS-31 also impacting non-mitochondrial proteins.
Conclusions:
- Mitochondria within the brain microvasculature represent a viable therapeutic target for combating brain aging.
- The rejuvenating effects of SS-31 in aging may stem from widespread proteomic alterations in the brain microvasculature.
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