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Targeting Soluble VCAM1 and GSK3β Improves Cerebrovascular Function and Reduces Stroke Pathology in Diabetic Mice
Masuma Akter Brishti1, Mousumi Mandal1, Udai Pratap Singh1
1Department of Pharmaceutical Sciences, College of Pharmacy, University of Tennessee Health Science Center, Memphis, TN 38163, USA.
Abstract:
Type 2 diabetes (T2D) features insulin resistance that promotes cerebrovascular injury, yet the immune signals linking metabolic stress to vascular dysfunction remain unclear. We tested the hypothesis that insulin resistance and soluble vascular cell adhesion molecule-1 (sVCAM1) act through complementary pathways in mast cells (MCs) to raise circulating histamine levels and impair cerebral vascular function. In a high-fat diet (HFD) plus low-dose streptozotocin (STZ) model, plasma histamine rose sharply after the onset of insulin resistance and remained elevated. Plasma sVCAM1 levels also increased after insulin resistance. In vitro, recombinant sVCAM1 upregulated histidine decarboxylase (HDC) in native MCs in a dose-dependent manner, indicating a shift toward histamine synthesis, but did not enhance degranulation. In contrast, pharmacological inhibition of Akt with MK2206 activated Glycogen Synthase Kinase 3 beta (GSK3β) and increased MC degranulation without affecting HDC expression. Diabetic endothelial cell monolayers exhibited a ~twofold reduction in transendothelial electrical resistance consistent with impaired blood-brain barrier (BBB) integrity. Diabetic cerebral arteries showed receptor remodeling that favored constriction with histamine H1 receptor (H1R) expression increasing in vascular smooth muscle, while endothelial H1R and histamine H2 receptor (H2R) decreased. Functionally, insulin treatment lowered HOMA2-IR in T2D mice but did not restore cerebral artery myogenic tone or improve stroke outcomes after distal middle cerebral artery occlusion (dMCAO). Neutralizing VCAM1 with a monoclonal antibody reduced circulating sVCAM1 and histamine levels, and, together with the GSK3β inhibitor Tideglusib, stabilized MCs, normalized cerebral artery tone, and reduced post-MCAO infarct size and edema. These findings identify two distinct yet complementary mast cell pathways in T2D, highlight an immune-vascular interface that drives cerebrovascular dysfunction, and propose sVCAM1 blockade plus GSK3β inhibition as rational strategies to protect cerebral vascular function in the diabetic brain.
Insights
Type 2 diabetes impairs brain blood vessels via histamine and VCAM1. Targeting these pathways with VCAM1 blockade and GSK3β inhibition protects against cerebrovascular injury and stroke.
Area of Science:
- Immunology
- Endocrinology
- Neuroscience
Background:
- Type 2 diabetes (T2D) involves insulin resistance and cerebrovascular injury.
- Immune signals linking metabolic stress to vascular dysfunction in T2D are not fully understood.
Purpose of the Study:
- To investigate if insulin resistance and soluble vascular cell adhesion molecule-1 (sVCAM1) impact mast cells (MCs) to affect histamine levels and cerebral vascular function.
- To explore therapeutic strategies for protecting the diabetic brain.
Main Methods:
- Utilized a high-fat diet (HFD) plus streptozotocin (STZ) mouse model of T2D.
- Assessed plasma histamine, sVCAM1, and MC responses in vitro and in vivo.
- Examined blood-brain barrier (BBB) integrity and cerebral artery remodeling.
- Evaluated the effects of insulin, VCAM1 neutralization, and GSK3β inhibition on cerebrovascular function and stroke outcomes after middle cerebral artery occlusion (MCAO).
Main Results:
- T2D mice showed elevated plasma histamine and sVCAM1, linked to insulin resistance.
- sVCAM1 increased histamine synthesis in MCs, while Akt inhibition promoted MC degranulation.
- Diabetic mice exhibited impaired BBB integrity and cerebral artery constriction.
- VCAM1 blockade and GSK3β inhibition normalized cerebral artery tone and reduced stroke damage.
Conclusions:
- Identified two distinct mast cell pathways in T2D contributing to cerebrovascular dysfunction.
- Demonstrated that sVCAM1 blockade combined with GSK3β inhibition protects cerebral vascular function in T2D.
- Proposed these combined strategies as potential treatments for diabetic cerebrovascular complications.

