Differential Left and Right Carotid Artery Blood Flow and Altered Hippocampal Mitochondrial Function After Transverse
Gabriel S Pena1, Yuan Liu1, Maria Canellas Da Silva1
1Department of Kinesiology University of Maryland College Park MD USA.
Insights
Turbulent blood flow, not just reduced flow, impairs hippocampal mitochondrial respiration, suggesting it drives metabolic dysfunction in vascular dementia. This study investigated how varying cerebral blood flow impacts brain health.
Area of Science:
- Neuroscience
- Cardiovascular Research
- Mitochondrial Biology
Background:
- The hippocampus is vulnerable to reduced cerebral blood flow (hypoperfusion), a factor in vascular dementia.
- While artery occlusion is common in studies, high velocity and pulsatility also damage brain blood flow.
- This study explores differential effects of high vs. low cerebral blood flow on hippocampal function.
Purpose of the Study:
- To investigate how high and low cerebral blood flow impact hippocampal glucose transport.
- To assess the effects on mitochondrial fuel oxidation and quality control proteins.
- To differentiate the effects of flow velocity and pulsatility on brain metabolism.
Main Methods:
- Sprague-Dawley rats underwent transverse aortic constriction or control surgery.
- Carotid artery diameter and blood flow were measured at 20, 30, and 40 weeks.
- Hippocampal mitochondrial respiration, glucose transporters, and mitochondrial quality control proteins were analyzed.
Main Results:
- Transverse aortic constriction increased blood flow velocity and pulsatility in the right carotid artery.
- Mitochondrial respiration rates (Complex I, I&II, II uncoupled) were reduced in the right hippocampus.
- Markers of mitochondrial fusion were upregulated in the transverse aortic constriction group.
Conclusions:
- Pulsatile, turbulent blood flow, not just limited flow, impairs mitochondrial respiration.
- Turbulent hemodynamics may be a key driver of metabolic dysfunction in vascular dementia.
- Altered mitochondrial fusion markers are associated with both limited and pulsatile flow conditions.
Background:
The hippocampus is a key brain structure that has been implicated in vascular dementia cause and is highly sensitive to changes in cerebral blood flow. Brain hypoperfusion in cardiovascular disease may facilitate neurodegeneration in the hippocampus by limiting substrate transport and metabolism. Although most animal studies have relied on artery occlusion to lower brain blood flow, brain hypoperfusion can also stem from mechanical damage resulting from high blood flow velocity and pulsatility. This study assessed, within the same rodent, whether high and low cerebral blood flow differentially affected hippocampal glucose transport protein expression, mitochondrial fuel oxidation, and expression of mitochondrial quality control proteins.
Methods:
Four-week-old male and female Sprague-Dawley rats underwent transverse aortic constriction (n=13) or control (n=18) surgeries. Bilateral carotid artery diameter and blood flow were measured 20, 30, and 40 weeks postsurgery. Right and left hippocampal mitochondrial respiration and expression of glucose transporters and mitochondrial quality control proteins were measured 40 weeks postsurgery.
Results:
Right carotid blood flow velocity and pulsatility were highest in the right and lowest in the left carotid of transverse aortic constriction animals (P<0.05). Complex I (P=0.057), complex I&II (P<0.05), and complex II uncoupled (P<0.05) respiration rates were lower in the right hippocampus of transverse aortic constriction animals when compared with the left, and markers of mitochondrial fusion were upregulated in transverse aortic constriction animals compared with controls (P<0.05).
Conclusions:
Although both limited and pulsatile blood flow alter mitochondrial fusion markers, only pulsatile flow impairs mitochondrial respiration, suggesting turbulent hemodynamics may drive metabolic dysfunction in vascular dementia.
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