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Inhibition of soluble epoxide hydrolase ameliorates cerebral blood flow autoregulation and cognition in alzheimer's disease and diabetes-related dementia rat models

  • Chengyun Tang
  • , Jane J. Border
  • , Huawei Zhang
  • , Andrew Gregory
  • , Shan Bai
  • , Xing Fang
  • , Yedan Liu
  • , Shaoxun Wang
  • , Sung Hee Hwang
  • , Wenjun Gao
  • , Gilbert C. Morgan
  • , Jhania Smith
  • , David Bunn
  • , Cameron Cantwell
  • , Karen M. Wagner
  • , Christophe Morisseau
  • , Jun Yang
  • , Seung Min Shin
  • , Philip O’Herron
  • , Zsolt Bagi
  • Jessica A. Filosa, Yanbin Dong, Hongwei Yu, Bruce D. Hammock, Richard J. Roman, Fan Fan

Research output: Contribution to journalArticlepeer-review

Abstract

Alzheimer's Disease and Alzheimer's Disease-related dementias (AD/ADRD) pose major global healthcare challenges, with diabetes mellitus (DM) being a key risk factor. Both AD and DM-related ADRD are characterized by reduced cerebral blood flow, although the exact mechanisms remain unclear. We previously identified compromised cerebral hemodynamics as early signs in TgF344-AD and type 2 DM-ADRD (T2DN) rat models. Genome-wide studies have linked AD/ADRD to SNPs in soluble epoxide hydrolase (sEH). This study explored the effects of sEH inhibition with TPPU on cerebral vascular function and cognition in AD and DM-ADRD models. Chronic TPPU treatment improved cognition in both AD and DM-ADRD rats without affecting body weight. In DM-ADRD rats, TPPU reduced plasma glucose and HbA1c levels. Transcriptomic analysis of primary cerebral vascular smooth muscle cells from AD rats treated with TPPU revealed enhanced pathways related to cell contraction, alongside decreased oxidative stress and inflammation. Both AD and DM-ADRD rats exhibited impaired myogenic responses and autoregulation in the cerebral circulation, which were normalized with chronic sEH inhibition. Additionally, TPPU improved acetylcholine-induced vasodilation in the middle cerebral arteries (MCA) of DM-ADRD rats. Acute TPPU administration unexpectedly caused vasoconstriction in the MCA of DM-ADRD rats at lower doses. In contrast, higher doses or longer durations were required to induce effective vasodilation at physiological perfusion pressure in both control and ADRD rats. Additionally, TPPU decreased reactive oxygen species production in cerebral vessels of AD and DM-ADRD rats. These findings provide novel evidence that chronic sEH inhibition can reverse cerebrovascular dysfunction and cognitive impairments in AD/ADRD, offering a promising avenue for therapeutic development.

Original languageEnglish (US)
Pages (from-to)4429-4449
Number of pages21
JournalGeroScience
Volume47
Issue number3
DOIs
StatePublished - Jun 2025

UN SDGs

This output contributes to the following UN Sustainable Development Goals (SDGs)

  1. SDG 3 - Good Health and Well-being
    SDG 3 Good Health and Well-being

Keywords

  • AD/ADRD
  • Cerebral blood flow autoregulation
  • Myogenic response
  • Oxidative stress
  • Soluble epoxide hydrolase
  • Vascular smooth muscle cells

ASJC Scopus subject areas

  • Aging
  • veterinary (miscalleneous)
  • Complementary and alternative medicine
  • Geriatrics and Gerontology
  • Cardiology and Cardiovascular Medicine

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