The antioxidant HDL-associated paraoxonase-1 (PON1) attenuates diabetes development and stimulates β-cell insulin

Marie Koren-Gluzer1, Michael Aviram, Edna Meilin

  • 1The Lipid Research Laboratory, Technion Faculty of Medicine, The Rappaport Family Institute for Research in the Medical Sciences, Rambam Medical Center, Haifa 31096, Israel.

Atherosclerosis
|August 25, 2011
PubMed
Abstract

Insights

Paraoxonase-1 (PON1) reduces diabetes incidence and enhances insulin release from pancreatic beta cells. This enzyme

Area of Science:

  • Biochemistry
  • Endocrinology
  • Metabolic Diseases

Background:

  • Paraoxonase-1 (PON1) is an enzyme with known antioxidant properties.
  • Its direct role in diabetes development and pancreatic beta-cell function remains to be fully elucidated.

Purpose of the Study:

  • To investigate the direct impact of PON1 on the development of diabetes.
  • To analyze PON1's effect on insulin secretion and synthesis in pancreatic beta cells.

Main Methods:

  • Administration of recombinant PON1 (rePON1) to mice prior to streptozotocin (STZ)-induced diabetes.
  • In vitro incubation of beta cells with PON1 and assessment of insulin secretion and cellular content.
  • Evaluation of oxidative stress markers and cell survival under various conditions.
  • Investigation of PON1's catalytic activity, HDL association, and free sulfhydryl group function.

Main Results:

  • rePON1 injection reduced diabetes incidence and increased serum insulin levels in mice.
  • PON1 dose-dependently enhanced insulin secretion and cellular content in beta cells.
  • PON1 increased beta-cell survival under high glucose and decreased oxidative stress.
  • PON1's free sulfhydryl group, but not its catalytic activity or HDL association, was essential for insulin release.

Conclusions:

  • PON1 demonstrates potent anti-diabetic effects through both antioxidant mechanisms and direct stimulation of insulin release from beta cells.
  • PON1 may play a role in insulin biosynthesis, independent of its antioxidant function.
  • These findings highlight PON1 as a potential therapeutic target for diabetes management.

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