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Brain microvascular injury and white matter disease provoked by diabetes-associated hyperamylinemia
Han Ly1, Nirmal Verma1, Fengen Wu1
1Department of Pharmacology and Nutritional Sciences, University of Kentucky, Lexington, KY.
Objective:
The brain blood vessels of patients with type 2 diabetes and dementia have deposition of amylin, an amyloidogenic hormone cosecreted with insulin. It is not known whether vascular amylin deposition is a consequence or a trigger of vascular injury. We tested the hypothesis that the vascular amylin deposits cause endothelial dysfunction and microvascular injury and are modulated by amylin transport in the brain via plasma apolipoproteins.
Methods:
Rats overexpressing amyloidogenic (human) amylin in the pancreas (HIP rats) and amylin knockout (AKO) rats intravenously infused with aggregated amylin were used for in vivo phenotyping. We also carried out biochemical analyses of human brain tissues and studied the effects of the aggregated amylin on endothelial cells ex vivo.
Results:
Amylin deposition in brain blood vessels is associated with vessel wall disruption and abnormal surrounding neuropil in patients with type 2 diabetes and dementia, in HIP rats, and in AKO rats infused with aggregated amylin. HIP rats have brain microhemorrhages, white matter injury, and neurologic deficits. Vascular amylin deposition provokes loss of endothelial cell coverage and tight junctions. Intravenous infusion in AKO rats of human amylin, or combined human amylin and apolipoprotein E4, showed that amylin binds to plasma apolipoproteins. The intravenous infusion of apolipoprotein E4 exacerbated the brain accumulation of aggregated amylin and vascular pathology in HIP rats.
Interpretation:
These data identify vascular amylin deposition as a trigger of brain endothelial dysfunction that is modulated by plasma apolipoproteins and represents a potential therapeutic target in diabetes-associated dementia and stroke. Ann Neurol 2017;82:208-222.
Insights
Vascular amylin deposition triggers brain endothelial dysfunction and injury in diabetes-associated dementia and stroke. Plasma apolipoproteins modulate this process, offering a potential therapeutic target.
Area of Science:
- Neuroscience
- Endocrinology
- Vascular Biology
Background:
- Amylin, a hormone co-secreted with insulin, deposits in brain blood vessels of patients with type 2 diabetes and dementia.
- The role of vascular amylin deposition—whether a cause or consequence of injury—remains unclear.
Purpose of the Study:
- To test the hypothesis that vascular amylin deposits cause endothelial dysfunction and microvascular injury.
- To investigate the modulation of amylin transport in the brain by plasma apolipoproteins.
Main Methods:
- Utilized human pancreatic (HIP) rats overexpressing human amylin and amylin knockout (AKO) rats.
- Conducted in vivo phenotyping, biochemical analyses of human brain tissues, and ex vivo endothelial cell studies.
- Administered intravenous infusions of aggregated amylin and apolipoprotein E4 in rat models.
Main Results:
- Vascular amylin deposition correlated with vessel wall disruption and neuropil abnormalities in patients and rat models.
- HIP rats exhibited brain microhemorrhages, white matter injury, and neurological deficits.
- Amylin deposition led to loss of endothelial cell coverage and tight junctions; apolipoprotein E4 exacerbated amylin accumulation and vascular pathology.
Conclusions:
- Vascular amylin deposition acts as a trigger for brain endothelial dysfunction.
- Plasma apolipoproteins modulate amylin's effects on brain vasculature.
- These findings highlight vascular amylin deposition as a potential therapeutic target for diabetes-associated dementia and stroke.
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