Interplay between Oxidative Stress and Nutrient Sensing Signaling in the Developmental Origins of Cardiovascular Disease
Abstract
:1. Introduction
2. Evidence for Programming of Cardiovascular Disease in the Human
3. Impact of Oxidative Stress on Cardiovascular Programming in Animal Models
4. Impact of ADMA Induced NO–ROS Imbalance in Cardiovascular Programming
5. Metabolic Crosstalk between Arginine Metabolism and Nutrient Sensing Signaling
6. Reprograming Strategy via Targeting NO-ROS Balance and Nutrient Sensing Signaling
7. Conclusions
Acknowledgments
Author Contributions
Conflicts of Interest
Abbreviations
ADMA | Asymmetric dimethylarginine |
AGXT2 | Alanine-glyoxylate aminotransferase 2 |
CAT | Cationic amino acid transporter |
CVD | Cardiovascular disease |
DDAH | Dimethylarginine dimethylaminohydrolase |
DOHaD | Developmental origins of health and disease |
l-NAME | NG-nitro-l-arginine-methyl ester |
mTOR | Mammalian target of rapamycin |
NOS | Nitric oxide synthase |
OCT | Ornithine carbamoyltransferase |
PGC-1α | PPARγ coactivator-1α |
PPAR | Peroxisome proliferator-activated receptor |
PRMT | Protein arginine methyltransferase |
RAS | Renin-angiotensin system |
SDMA | Symmetric dimethylarginine |
SIRT | Silent information regulator transcript |
STZ | Streptozotocin |
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Animal Model | Species | Cardiovascular Phenotypes | Programming Mechanisms Related to Oxidative Stress | Age at Evaluation | Ref. |
---|---|---|---|---|---|
Maternal protein restriction | Rats | Hypertension, vascular dysfunction | ↑ Oxidative stress, ↓ glutathione | 12 wk | [43] |
STZ-induced diabetes | Rats | Hypertension | ↑ ADMA, ↓ NO | 12 wk | [44] |
Maternal l-NAME administration | Rats | Hypertension | ↑ Oxidative stress | 12 wk | [45,46] |
Maternal suramin administration | Rats | Hypertension | ↑ ADMA, ↓ NO, ↓ H2S | 12 wk | [47] |
Maternal caloric restriction | Rats | Hypertension | ↑ ADMA, ↓ NO | 12 wk | [48] |
Prenatal hypoxia plus postnatal high-fat intake | Rats | Vulnerable to cardiac ischemia/reperfusion (I/R) injury | ↑ Superoxide production | 12 wk | [49] |
Maternal ethanol consumption | Rats | Coronary tissue proliferation | ↑ Lipid peroxidation | 12 wk | [50] |
Protein restricted diet | Rats | Hypertension | ↑ ROS production and ↓ Antioxidant capacity in heart | 14 wk | [51] |
Prenatal dexamethasone exposure | Rats | Hypertension | ↓ NO | 16 wk | [52] |
Prenatal dexamethasone exposure plus postnatal high-fat intake | Rats | Hypertension | ↓ NO, ↑ Oxidative stress | 16 wk | [53] |
Maternal caloric restriction | Rats | Hypertension, vascular dysfunction | ↑ Superoxide production | 16 wk | [54,55] |
Prenatal hypoxia exposure | Rats | Endothelial dysfunction | ↑ Oxidative stress in aorta | 16 wk | [56] |
Prenatal LPS exposure | Rats | Hypertension, endothelial dysfunction | ↓ NO, ↓ antioxidant enzyme expression | 19 wk | [57] |
Maternal high-fat intake | Rats | Hypertension | ↑ Lipid peroxidation, ↓ NO | 24 wk | [58] |
Maternal nicotine exposure | Rats | Hypertension, vulnerable to cardiac I/R injury | ↑ Arterial ROS production | 8 mo | [59,60] |
Maternal caloric restriction | Rats | Hypertension, cardiac damage | ↑ Oxidative stress in heart | 22 mo | [61] |
STZ-induced diabetes | Mice | Myocardial ischemia/reperfusion injury | ↑ Oxidative stress | 8 wk | [62] |
Maternal protein restriction | Mice | Vulnerable to vascular injury | ↑ Oxidative stress | 11 wk | [63] |
Maternal protein restriction | Mice | Atherosclerosis | ↑ Oxidative stress | 6 mo | [64] |
Prenatal 11β-HSD inhibition | Mice | Endothelial dysfunction | ↑ Oxidative stress | 6 mo | [65] |
Maternal high-fat intake | Mice | Hypertension | ↑ Arterial ROS production, ↓ NO | 7.5 mo | [66] |
Prenatal betamethasone exposure | Sheep | Hypertension | ↑ ROS production, ↓ NO | 18 mo | [67,68] |
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Tain, Y.-L.; Hsu, C.-N. Interplay between Oxidative Stress and Nutrient Sensing Signaling in the Developmental Origins of Cardiovascular Disease. Int. J. Mol. Sci. 2017, 18, 841. https://doi.org/10.3390/ijms18040841
Tain Y-L, Hsu C-N. Interplay between Oxidative Stress and Nutrient Sensing Signaling in the Developmental Origins of Cardiovascular Disease. International Journal of Molecular Sciences. 2017; 18(4):841. https://doi.org/10.3390/ijms18040841
Chicago/Turabian StyleTain, You-Lin, and Chien-Ning Hsu. 2017. "Interplay between Oxidative Stress and Nutrient Sensing Signaling in the Developmental Origins of Cardiovascular Disease" International Journal of Molecular Sciences 18, no. 4: 841. https://doi.org/10.3390/ijms18040841
APA StyleTain, Y. -L., & Hsu, C. -N. (2017). Interplay between Oxidative Stress and Nutrient Sensing Signaling in the Developmental Origins of Cardiovascular Disease. International Journal of Molecular Sciences, 18(4), 841. https://doi.org/10.3390/ijms18040841