Impaired cardiac anti-oxidant activity in diabetes: human and correlative experimental studies

Kim A Connelly1, Andrew Advani, Suzanne L Advani

  • 1Keenan Research Centre for Biomedical Science, St. Michael's Hospital, 30 Bond St, 209 Victoria Street, Room 7-052, Toronto, ON, M5B 1W8, Canada, connellyk@smh.ca.

Acta Diabetologica
|June 14, 2014
PubMed

Insights

Diabetic hearts show increased oxidative stress due to higher thioredoxin interacting protein (TxnIP) levels, which inhibit the thioredoxin antioxidant system. Reducing TxnIP expression restored normal function, suggesting a therapeutic target for diabetic heart disease.

Area of Science:

  • Cardiovascular Biology
  • Metabolic Disorders
  • Oxidative Stress Research

Background:

  • Diabetes mellitus is linked to increased reactive oxygen species (ROS) in the heart.
  • The thioredoxin system, a key antioxidant pathway, may be impaired in diabetic cardiomyopathy.
  • Thioredoxin interacting protein (TxnIP) is an endogenous inhibitor of the thioredoxin system, potentially upregulated by high glucose.

Purpose of the Study:

  • To investigate the role of TxnIP in high glucose-induced oxidative stress in the diabetic heart.
  • To assess the relationship between diabetes, TxnIP expression, thioredoxin activity, and ROS levels in human and animal cardiac tissues.
  • To determine if TxnIP is the mediator of high glucose-induced reduction in thioredoxin activity.

Main Methods:

  • Analysis of TxnIP mRNA and protein expression, and thioredoxin activity in human atrial biopsies from diabetic and non-diabetic subjects.
  • Examination of TxnIP expression and thioredoxin activity in rodent models of type 1 and type 2 diabetes.
  • In vitro studies using cultured cardiac myocytes with high glucose treatment and TxnIP gene silencing (siRNA).

Main Results:

  • Diabetes was associated with significantly increased TxnIP gene and protein expression in human heart samples.
  • A corresponding significant reduction in thioredoxin activity was observed in diabetic human and animal hearts.
  • High glucose in cultured myocytes increased ROS and TxnIP expression, reducing thioredoxin activity; these effects were reversed by TxnIP siRNA.

Conclusions:

  • High glucose-induced overexpression of TxnIP contributes to reduced thioredoxin activity and increased ROS in the diabetic heart.
  • Impaired thiol reductive capacity, mediated by altered TxnIP expression, is a significant factor in diabetic cardiac oxidative stress.
  • Targeting TxnIP may offer a novel therapeutic strategy for managing diabetic heart complications.

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