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February 5, 2026Biomolecules0 citationsOpen Access

Neurovascular Impairment in Type 2 Diabetes Mellitus: The Role of Adipocyte-Derived Exosomes

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HSHarshal SawantJBJi Bihl

Key Points

  • The aim is to explore the role of adipocyte-derived exosomes in neurovascular impairment associated with type 2 diabetes mellitus.
  • Review of current knowledge on adipocyte-derived exosomes
  • Examination of their role in cerebrovascular complications
  • Analysis of mechanisms including oxidative stress, neuroinflammation, and blood-brain barrier disruption
  • Adipocyte-derived exosomes are linked to cerebrovascular complications in T2DM
  • They influence brain function via oxidative stress and neuroinflammation
  • Their role as potential biomarkers and therapeutic targets for T2DM complications is highlighted

Abstract

Type 2 diabetes mellitus (T2DM) is a major metabolic disorder characterized by chronic hyperglycemia with far-reaching morbidities. Among these, diabetes-related cerebrovascular complications such as ischemic and hemorrhagic stroke, cerebral blood vessel disease, and vascular dementia are significant contributors to morbidity and mortality. Adipose tissue is a metabolically active endocrine organ that becomes dysfunctional in T2DM and communicates with distant tissues via secreted factors, including extracellular vesicles such as exosomes (EXs), phospholipid bilayer-enclosed nanosized particles. These adipocyte-derived exosomes (Ad-EXs) carry bioactive cargo, including lipids, proteins, and microRNAs that influence the function of distant organs, including the brain. Evidence indicates that Ad-EXs in T2DM are a significant risk factor for cerebrovascular complications via neurovascular impairment either directly through the adipose tissue–brain axis or indirectly by other organs. This review provides an overview of current knowledge on how Ad-EXs from different adipocyte populations contribute to cerebrovascular complications through oxidative stress, blood–brain barrier disruption, neuroinflammation, and mitochondrial dysfunction. Particular emphasis is placed on recent findings and gaps in knowledge linking diabetic Ad-EXs with brain microvascular endothelial cells that mediate neurovascular crosstalk, contributing to stroke susceptibility and cognitive decline. We also discuss the potential of Ad-EXs as biomarkers and therapeutic targets for cerebrovascular complications of T2DM.

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Cite This Study

Sawant et al. (2026) studied this question.

synapsesocial.com/papers/698435b9f1d9ada3c1fb4da2https://doi.org/10.3390/biom16020233
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