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Soluble epoxide hydrolase deficiency alters pancreatic islet size and improves glucose homeostasis in a model of insulin resistance.
Author(s) -
LURIA AYALA R,
Bettaieb Ahmed,
Xi Yannan,
Inoue Hiromi,
Tsai Hsing-Ju,
Imig John D,
Haj Fawaz G,
Hammock Bruce D
Publication year - 2012
Publication title -
the faseb journal
Language(s) - English
Resource type - Journals
SCImago Journal Rank - 1.709
H-Index - 277
eISSN - 1530-6860
pISSN - 0892-6638
DOI - 10.1096/fasebj.26.1_supplement.686.4
Subject(s) - epoxide hydrolase 2 , insulin resistance , medicine , endocrinology , glucose homeostasis , chemistry , insulin , pancreatic islets , homeostasis , islet , biology , enzyme , biochemistry
Visceral obesity has been defined as an important element of the metabolic syndrome and contributes to the development of insulin resistance and cardiovascular disease. Increasing endogenous levels of epoxyeicosatrienoic acids (EETs) are known for their analgesic, antihypertensive, and antiinflammatory effects. The availability of EETs is limited primarily by the soluble epoxide hydrolase (sEH), which metabolizes EETs to their less active diols. In this study, we tested the hypothesis that EETs are involved in glucose regulation and in retarding the development of insulin resistance. To address the role of EETs in regulating glucose homeostasis and insulin signaling, we used mice with targeted gene deletion of sEH and a subsequent study with a selective sEH inhibitor. When WT mice are fed a high fat diet, insulin resistance develops. However, KO or inhibition of sEH activity resulted in a significant decrease in plasma glucose. These findings are characterized by enhancement of tyrosyl phosphorylation of the insulin receptorand its downstream cascade. In addition, pancreatic islets were larger when sEH was disrupted. This effect was associated with an increase in vasculature. These data suggest that an increase in EETs due to sEH‐gene knockout leads to an increase in the size of islets and improved insulin signaling and sensitivity.