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Epigenetic Down-Regulation of Sirt 1 via DNA Methylation and Oxidative Stress Signaling Contributes to the Gestational Diabetes Mellitus-Induced Fetal Programming of Heart Ischemia-Sensitive Phenotype in Late Life
- Source :
- International journal of biological sciences, vol 15, iss 6, International Journal of Biological Sciences
- Publication Year :
- 2019
- Publisher :
- Ivyspring International Publisher, 2019.
-
Abstract
- Rationale: The incidence of gestational diabetes mellitus (GDM) is increasing worldwide. However, whether and how GDM exposure induces fetal programming of adult cardiac dysfunctional phenotype, especially the underlying epigenetic molecular mechanisms and theranostics remain unclear. To address this problem, we developed a late GDM rat model. Methods: Pregnant rats were made diabetic on day 12 of gestation by streptozotocin (STZ). Experiments were conducted in 6 weeks old offspring. Results: There were significant increases in ischemia-induced cardiac infarction and gender-dependent left ventricular (LV) dysfunction in male offspring in GDM group as compared to controls. Exposure to GDM enhanced ROS level and caused a global DNA methylation in offspring cardiomyocytes. GDM attenuated cardiac Sirt 1 protein and p-Akt/Akt levels, but enhanced autophagy-related proteins expression (Atg 5 and LC3 II/LC3 I) as compared to controls. Ex-vivo treatment of DNA methylation inhibitor, 5-Aza directly inhibited Dnmt3A and enhanced Sirt 1 protein expression in fetal hearts. Furthermore, treatment with antioxidant, N-acetyl-cysteine (NAC) in offspring reversed GDM-mediated DNA hypermethylation, Sirt1 repression and autophagy-related gene protein overexpression in the hearts, and rescued GDM-induced deterioration in heart ischemic injury and LV dysfunction. Conclusion: Our data indicated that exposure to GDM induced offspring cardiac oxidative stress and DNA hypermethylation, resulting in an epigenetic down-regulation of Sirt1 gene and aberrant development of heart ischemia-sensitive phenotype, which suggests that Sirt 1-mediated signaling is the potential therapeutic target for the heart ischemic disease in offspring.
- Subjects :
- Epigenomics
GDM
endocrine system diseases
Myocardial Ischemia
Reproductive health and childbirth
Cardiovascular
medicine.disease_cause
Applied Microbiology and Biotechnology
Rats, Sprague-Dawley
Fetal Development
Sirtuin 1
Pregnancy
2.1 Biological and endogenous factors
Medicine
Aetiology
Pediatric
screening and diagnosis
0303 health sciences
DNA methylation
Diabetes
ROS
3. Good health
Gestational diabetes
Detection
Heart Disease
Medical Microbiology
Prenatal Exposure Delayed Effects
Gestational
Female
Research Paper
Signal Transduction
medicine.drug
medicine.medical_specialty
Offspring
Down-Regulation
Microbiology
Diabetes Mellitus, Experimental
Experimental
03 medical and health sciences
Internal medicine
Diabetes Mellitus
Genetics
Animals
Genetic Predisposition to Disease
Epigenetics
Molecular Biology
Protein kinase B
Heart Disease - Coronary Heart Disease
Ecology, Evolution, Behavior and Systematics
Nutrition
030304 developmental biology
Fetus
Sirt 1
business.industry
Prevention
nutritional and metabolic diseases
Cell Biology
Perinatal Period - Conditions Originating in Perinatal Period
medicine.disease
Streptozotocin
Rats
4.1 Discovery and preclinical testing of markers and technologies
Diabetes, Gestational
Oxidative Stress
Endocrinology
Sprague-Dawley
Other Biological Sciences
Reactive Oxygen Species
business
heart ischemia-sensitive phenotype
Oxidative stress
Developmental Biology
Subjects
Details
- ISSN :
- 14492288
- Volume :
- 15
- Database :
- OpenAIRE
- Journal :
- International Journal of Biological Sciences
- Accession number :
- edsair.doi.dedup.....d37eabbe1a5e5925628a6fa1c6c3982c