Reactive Oxygen and Nitrogen Species in the Development of Pulmonary Hypertension
Abstract
:1. Introduction
2. Pulmonary Hypertension
3. The Lung Vasculature
4. Reactive Oxygen and Nitrogen Species
5. The Cellular Origins of Reactive Oxygen Species (ROS)
5.1. Nox Family of Enzymes
5.2. Mitochondria
5.3. Other Sources of ROS
6. The Cellular Origins of Reactive Nitrogen Species (RNS)
7. The Importance of ROS and RNS in Pulmonary Hypertension
7.1. ROS
7.1.1. Nox Enzymes
7.1.2. Mitochondrial ROS
7.1.3. Other Sources of ROS
7.1.4. Anti-Oxidant Pathways
7.1.5. TGFβ Superfamily Receptors
7.2. The Importance of RNS in Pulmonary Hypertension
7.3. Targeting ROS or RNS in the Treatment of Pulmonary Hypertension
8. Conclusions
Conflicts of Interest
References
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Type of PH | Organism | Nox mRNA | Nox Protein | Intervention | Effect on Disease | Reference |
---|---|---|---|---|---|---|
Hypoxia, IPAH | Mouse, human | ↑ Nox4 No change Nox1, Nox2 | ↑ Nox4 | Nox4 siRNA PASMC | ↓ SMC proliferation | [73] |
Hypoxia (in vitro) | Human | ↑ Nox4, Nox1 | ↑ Nox4 | Nox4 siRNA in PAFB | ↓ PAFB proliferation, ↑ apoptosis | [74] |
Hypoxia | Pig | - | ↑ Nox1 No change Nox4 | Apocynin, ROS scavengers | ↑ PA function | [65] |
Hypoxia (in vitro) | Human | ↑ Nox4 | - | Nox4 siRNA PASMC | ↓ SMC proliferation | [75] |
CIH | Mouse | ↑ Nox4, p22 | Nox2 KO | ↓ pulmonary hypertension | [57] | |
PPHN | Sheep | ↑ Nox2, Nox4 | - | Apocynin, ROS scavengers | ↑ PAEC angiogenesis, decreased apoptosis | [76] |
MCT, MCT/PN | Rat | ↑ Nox2, Nox4, no change Nox1 | - | - | - | [72] |
Hypoxia | Mouse, Human EC | ↑ Nox4 | - | GKT137831 (Nox4/Nox1) | ↓ pulmonary hypertension, ↓ PASMC proliferation | [77] |
MCT | RAT PASMC | ↑ Nox1, no change Nox2, Nox4 | ↑ Nox1 | Nox1 siRNA PASMC | ↓ SMC proliferation, migration | [70] |
MCT, FHR, Sugen Hypoxia, IPAH | Rat PA, Human lung | ↑ Nox4, Nox2, no change Nox1 | ↑ Nox4 | GKT136901 (Nox4/Nox1), VCC588646, VCC202273 | ↓ pulmonary hypertension, ↓ remodeling/PAFB proliferation | [55] |
Hypoxia | Mouse | - | - | Nox1 KO | ↑ pulmonary hypertension | [71] |
Hypoxia | Mouse | no change Nox2 | - | Nox2 KO | ↓ pulmonary hypertension | [61] |
MCT | Mouse | - | - | Nox4 transgenic, inducible KO | No change in pulmonary hypertension | [78] |
MCT | Rat | - | ↑ Nox1, Nox2 | Resveratrol | ↓ pulmonary hypertension, ↓ PASMC proliferation | [54] |
iPAH, hypoxia | Human, rat | - | ↑ Nox4 | PP242 (mTOR) | ↓PAremodeling, ↑ SMC apoptosis | [79] |
Hypoxia | Mouse | - | - | Nox2 KO | ↑ endothelial function | [60] |
Hypoxia | Mouse, human PAEC | ↑ Nox4, Nox2 (HPAEC) | ↑ Nox4, Nox2 (HPAEC) | Mitochondrial-targeted catalase | ↓ pulmonary hypertension | [80] |
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Fulton, D.J.R.; Li, X.; Bordan, Z.; Haigh, S.; Bentley, A.; Chen, F.; Barman, S.A. Reactive Oxygen and Nitrogen Species in the Development of Pulmonary Hypertension. Antioxidants 2017, 6, 54. https://doi.org/10.3390/antiox6030054
Fulton DJR, Li X, Bordan Z, Haigh S, Bentley A, Chen F, Barman SA. Reactive Oxygen and Nitrogen Species in the Development of Pulmonary Hypertension. Antioxidants. 2017; 6(3):54. https://doi.org/10.3390/antiox6030054
Chicago/Turabian StyleFulton, David J.R., Xueyi Li, Zsuzsanna Bordan, Stephen Haigh, Austin Bentley, Feng Chen, and Scott A. Barman. 2017. "Reactive Oxygen and Nitrogen Species in the Development of Pulmonary Hypertension" Antioxidants 6, no. 3: 54. https://doi.org/10.3390/antiox6030054
APA StyleFulton, D. J. R., Li, X., Bordan, Z., Haigh, S., Bentley, A., Chen, F., & Barman, S. A. (2017). Reactive Oxygen and Nitrogen Species in the Development of Pulmonary Hypertension. Antioxidants, 6(3), 54. https://doi.org/10.3390/antiox6030054