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Inhibition of platelet activation alleviates diabetes-associated cognitive dysfunction via attenuating blood-brain
Fuxing Xu1, Juan Hu2, Xuying Li3
1Department of Anesthesiology & Center for Brain Science, The First Affiliated Hospital of Xi'an Jiaotong University, Xi'an, Shaanxi 710061, China; Department of Anesthesiology, Shanxi Province Cancer Hospital, Shanxi Hospital Affiliated to Cancer Hospital, Chinese Academy of Medical Sciences, Cancer Hospital Affiliated to Shanxi Medical University, Taiyuan, Shanxi 030013, China.
Insights
Inhibition of platelet activation improves cognitive function in diabetic mice by reducing blood-brain barrier injury. This approach targets the CD40L-CD40-HIF1α pathway, offering a potential treatment for diabetes-associated cognitive dysfunction.
Area of Science:
- Neuroscience
- Endocrinology
- Vascular Biology
Background:
- Diabetes-associated cognitive dysfunction (DACD) is a leading cause of mortality in diabetic patients.
- Blood-brain barrier (BBB) injury in pre-diabetes contributes to microvascular complications, including DACD.
- Increased CD40 expression on endothelial cells and platelet-derived CD40 ligand (sCD40L) are implicated in BBB dysfunction.
Purpose of the Study:
- To investigate the role of platelet activation and the CD40L-CD40 pathway in diabetes-associated cognitive dysfunction.
- To evaluate the therapeutic potential of inhibiting platelet activation in mitigating DACD and associated BBB injury.
Main Methods:
- Diabetic and non-diabetic mice underwent platelet activation inhibition, with or without cilostazol treatment.
- Cognitive function, platelet activation, BBB structure, and permeability were assessed.
- In vitro studies used mouse brain microvascular endothelial cells (b.End3) exposed to CD40L under high glucose conditions, with CD40 and HIF1α silencing.
Main Results:
- Inhibition of platelet activation improved cognitive behaviors in diabetic mice.
- This intervention reduced BBB permeability, increased tight junction proteins, and normalized Aβ transporters.
- In vitro, CD40L exacerbated BBB disruption by increasing HIF1α and decreasing tight junction proteins, effects reversed by CD40 and HIF1α silencing.
Conclusions:
- Inhibition of platelet activation ameliorates DACD by alleviating BBB injury.
- The CD40L-CD40-HIF1α signaling pathway is a key mechanism in this process.
- Targeting platelet activation presents a potential therapeutic strategy for DACD.
Abstract:
Cognitive dysfunction has become the second leading cause of death among the diabetic patients. In pre-diabetic stage, blood-brain barrier (BBB) injury occurs and induced the microvascular complications of diabetes, especially, diabetes-associated cognitive dysfunction (DACD). Endothelial cells are the major component of BBB, on which the increased expression of CD40 could mediate BBB dysfunction in diabetics. Since platelets play an important role in regulating endothelial cell barrier function and over 95 % of the circulating soluble CD40 ligand (sCD40L) is derived from activated platelets, we speculated that the release of CD40L from activated platelets induced by diabetes was the key mechanism that aggravated BBB injury and leaded to DACD. We performed inhibition of platelet activation on diabetic and non-diabetic mice, with or without cilostazol treatment, and then compared cognitive function, platelet activation, BBB structure and permeability. In vitro, mouse brain microvascular endothelial cell line (b.End3) were exposed to CD40L for 24 h at 5.5 mM or 30 mM glucose media after silencing CD40 and HIF1α or not to investigate the effects of CD40 on BBB disruption and the underlying molecular pathways. Inhibition of platelet activation improved cognitive behaviors in diabetic mice, accompanied with reduced BBB permeability, increased tight junction proteins, balanced Aβ transporters, as well as attenuated Aβ deposition and hippocampal neurons damage. In vitro, CD40L increased HIF1α, diminished tight junction proteins and dysregulated Aβ transporters in b.End3 cells, which could be restored by CD40 siRNA and HIF1α siRNA. Hence, inhibition of platelet activation ameliorates DACD via alleviating BBB injury, which involving the regulation of CD40L-CD40-HIF1α signaling pathway. Our study may demonstrate a potential therapeutic target for the treatment of DACD.
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