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Editorial

Oxidative Stress in Cardiovascular Disease

by
Gábor Csányi
1,* and
Francis J. Miller Jr.
2,*
1
Vascular Medicine Institute, E1228-1B BST, University of Pittsburgh, 200 Lothrop Street, Pittsburgh, PA 15261, USA
2
Departments of Internal Medicine and Anatomy and Cell Biology, University of Iowa, Veterans Affairs Medical Center, Iowa City, IA 52242, USA
*
Authors to whom correspondence should be addressed.
Int. J. Mol. Sci. 2014, 15(4), 6002-6008; https://doi.org/10.3390/ijms15046002
Submission received: 7 March 2014 / Revised: 25 March 2014 / Accepted: 31 March 2014 / Published: 9 April 2014
(This article belongs to the Special Issue Oxidative Stress in Cardiovascular Disease)

Abstract

:
In the special issue “Oxidative Stress in Cardiovascular Disease” authors were invited to submit papers that investigate key questions in the field of cardiovascular free radical biology. The original research articles included in this issue provide important information regarding novel aspects of reactive oxygen species (ROS)-mediated signaling, which have important implications in physiological and pathophysiological cardiovascular processes. The issue also included a number of review articles that highlight areas of intense research in the fields of free radical biology and cardiovascular medicine.

Cardiovascular disorders (CVD) and their consequences account for one out of every three deaths in the United States, and CVD are the most serious health problem of the Western world [1]. With an ageing population and spread of the Western diet and lifestyle, the burden and medical costs of CVD will significantly increase worldwide in the coming decades. Although significant effort has been directed towards elucidating biomolecular events governing the initiation and progression of CVD, much remains unclear. As such, a better understanding of the mechanisms leading to CVD and their clinical consequences is urgently needed and one of the most serious challenges in medicine.
Reactive oxygen species (ROS) at physiological levels are now appreciated to function as signaling molecules to regulate a wide range of processes in the cardiovascular system and to contribute to the maintenance of cardiovascular homeostasis [2]. In contrast, excessive and/or sustained increase in ROS generation plays a pivotal role in the initiation, progression and clinical consequences of CVD [35]. Despite great progress in the field of free radical biology and advances in cardiovascular medicine, we still do not have a complete understanding of the underlying mechanisms of CVD and consequences of pathophysiologically elevated ROS in cardiovascular tissue. Much is still to be discovered regarding the mechanisms that control activation of individual ROS sources in vascular cells, the specific role of individual NADPH oxidase (Nox) isoforms in CVD, the crosstalk between Nox enzymes and other ROS sources, paracrine role of ROS and lipid peroxidation products, and identification of new redox targets and their pathophysiological role in CVD. Major efforts are also necessary to develop specific inhibitors of ROS sources suitable for clinical application.
This issue of the International Journal of Molecular Sciences focuses on the regulation of ROS sources in CVD, further explores how ROS interact with their downstream targets, identifies novel redox cell signaling pathways, and discusses emerging treatment strategies. The forum contains fourteen review papers and sixteen original research articles. The review papers were selected to highlight areas of intense research in the fields of free radical biology and cardiovascular medicine. For example, the review articles explore the possible links between systemic vascular disease and chronic obstructive pulmonary disorder [6], highlight potential new treatment strategies [7,8], and discuss the role of pathogens [9], dopamine receptors [10], receptor for advanced glycation endproducts (RAGE) [11], epidermal growth factor receptor [12], and protein glutathionylation [13] in CVD. Pitocco and colleagues discuss the role of oxidative stress in the pathogenesis of diabetes mellitus and its complications [14]. Additionally, Magenta et al. have provided a thorough overview of the mechanisms by which microRNAs regulate oxidative stress responses in CVD [15].
The first original research article in the special issue, by Feng et al., evaluated the effects of α-lipoic acid treatment on the kidneys of non-obese Goto-Kakizaki rats that develop type 2 diabetes mellitus. The authors show that α-lipoic acid treatment decreased the mRNA expression of p22phox and p47phox in the kidney, increased glutathione levels, and attenuated the progression of diabetic nephropathy [16].
Obesity is becoming a global epidemic in both children and adults and it is associated with numerous CVD comorbidities such as systemic hypertension, stroke, heart disease, lipid abnormalities and atherosclerosis, and type 2 diabetes mellitus. A study by González-Muniesa et al. demonstrated that a given genetic background favoring a chronic disturbance of the metabolic homeostasis leads to upregulation of proinflammatory- and oxidative stress-related genes, which could underlie the development of obesity-associated diseases [17]. Dietary strategies and nutrient supplementation have been long used for the management of obesity and prevention of obesity-associated disorders. De la Iglesia et al. investigated the effectiveness of a new dietary strategy (energy restriction, a specific macronutrient distribution, high meal frequency, and high antioxidant capacity) in patients with obesity. The authors showed that this new diet attenuated levels of oxidative stress biomarkers, reduced android fat mass, and decreased blood pressure in obese patients [18]. Along the same lines, Tie et al. demonstrated that polypeptides isolated from achyranthes bidentata, a commonly used Chinese medicinal herb, reduce oxidative stress and exert cardioprotection following myocardial ischemia/reperfusion injury in rats [19]. Duarte and her co-workers showed that apigenin, an anti-inflammatory dietary flavonoid, inhibits lipopolysaccharide-induced endothelial cell apoptosis via restoring normal mitochondrial complex I activity, inhibiting mitochondrial ROS generation, and decreasing enzymatic activity of caspase-3 [20]. Interestingly, oleic acid supplementation has been shown to stimulate vascular endothelial growth factor (VEGF) synthesis and secretion in aortic vascular smooth muscle cells (VSMC) from lean Zucker rats via a mechanism involving increased ROS generation, and the actions of oleic acid were impaired in aortic VSMC from obese Zucker rats [21].
Recent studies demonstrated that a decrease in endogenous sulfur dioxide (SO2) production is associated with the development of CVD; however, the mechanisms responsible for this effect are not entirely clear [22]. In this issue, Jin et al. investigated the effects of an SO2 donor on myocardial injury and cardiac function in isopropylarterenol (ISO)-treated rats. The paper published by this group showed that SO2 treatment attenuates myocardial injury and improves cardiac function via inhibiting cardiomyocyte apoptosis [23].
Cardiovascular surgery exposes the heart and various blood vessels to prolonged periods of warm and cold ischemia. Wiedemann and his co-workers showed that analysis of mitochondrial function can be used as a suitable method for the assessment of cold ischemic injury [24]. Following electrical stimulation, cardiac myocytes isolated from senescence marker protein-30 knockout mice generated significantly more ROS compared to wild type controls, a mechanism that has been implicated in angiotensin II release and regulation of coronary vascular tone [25].
Advanced glycation end products (AGEs) play a pivotal role in the development and progression of diabetic heart failure. Brouwers et al. investigated whether reduction of AGEs by overexpression of the glycation precursor detoxifying enzyme glyoxalase-I (GLO-I) prevents diabetes-induced oxidative damage, inflammation, and fibrosis in the heart [26].
Al Ghouleh et al. utilized 2D Differential In-Gel Electrophoresis and Mass Spectrometry (2D-DIGE/MS) to identify new downstream targets of VSMC Nox1 signaling with significant translational potential [27]. Actin-related protein 2/3 complex subunit 2 (ARPC2), with no previous link to Nox isozymes, hydrogen peroxide, or other ROS, was identified downstream of Nox1-mediated p38 MAPK activation and demonstrated to play an important role in VSMC migration.
A research article by Cao et al. explored the mechanisms that regulate the metabolism of asymmetric dimethylarginine (ADMA), an endogenous inhibitor of nitric oxide synthase, in Dahl salt-sensitive rats [28]. They demonstrated that high salt intake decreases the expression and activity of dimethylarginine dimethylaminohydrolase (DDAH), an enzyme that metabolizes ADMA, leading to increased ADMA and lower plasma nitrite/nitrate levels.
Increasing evidence demonstrates that activated platelets are causally involved in the onset of vascular inflammatory processes and play a key role in the development of atherosclerosis [29]. In the present issue, Badrnya et al. showed that high-density lipoproteins (HDL) compete with the binding of oxidized low-density lipoprotein (oxLDL) to the platelet surface, leading to attenuated platelet activation and decreased ROS generation, mechanisms that may contribute to the atheroprotective and antithrombotic effects of HDL [30].
Deficiency of Nox subunits, such as p47phox, Nox1, or Nox2, in ApoE null mice attenuates lesion formation, demonstrating a critical role for Nox-derived ROS in the early stage of atherosclerosis [3133]. Much less, however, is known about the role of Nox enzymes and ROS during plaque progression and the late complicated phase of the disease. The article, by Kinkade et al. demonstrated that apocynin treatment beginning at 17 weeks of age (i.e., after the development of atherosclerosis) and continued for an additional 17 weeks reduced vascular ROS levels and attenuated lesion progression in ApoE−/−/LDLR−/− mice [34].
Finally, Hartono et al. showed that in a murine model of renal artery stenosis increased ROS generation occurs early in the disease, initiating a progressive cascade of events that lead to upregulation of oxidative stress-related genes, interstitial inflammation, renal fibrosis, and atrophy [35].

Conclusions

Despite the enormous progress in the field of vascular free radical biology and cardiovascular medicine, many avenues remain to be explored. For example, we require a better understanding of the regulatory mechanisms responsible for oxidase activation in the heart and the vessel wall, the crosstalk between different sources of ROS, and their precise downstream targets and function. The development of new molecular tools, transgenic and knockout animals, and pharmacological agents that block the undesirable actions of pathophysiological ROS will also greatly advance the field of cardiovascular research. All manuscripts published in this special issue contributed to a better understanding of the regulation and function of ROS in CVD. The articles explored how ROS interact with their downstream targets, identified novel ROS targets, and discussed new strategies to attenuate oxidative stress in CVD. We remain committed to advancing knowledge of the free radical biology and cardiovascular fields and to identifying novel targets at which to intervene, so that more successful CVD therapies can be developed.

Acknowledgments

This work was supported by National Institutes of Health grants K99-HL114648 (to Gábor Csányi) and the Office of Research and Development, Department of Veterans Affairs (1BX001729 to Francis J. Miller).

Conflicts of Interest

The authors declare no conflict of interest.

References

  1. Lloyd-Jones, D.; Adams, R.; Carnethon, M.; de Simone, G.; Ferguson, T.B.; Flegal, K.; Ford, E.; Furie, K.; Go, A.; Greenlund, K.; et al. Heart disease and stroke statistics—2009 update: A report from the american heart association statistics committee and stroke statistics subcommittee. Circulation 2009, 119, 480–486. [Google Scholar]
  2. Droge, W. Free radicals in the physiological control of cell function. Physiol. Rev 2002, 82, 47–95. [Google Scholar]
  3. Csanyi, G.; Yao, M.; Rodriguez, A.I.; Al Ghouleh, I.; Sharifi-Sanjani, M.; Frazziano, G.; Huang, X.; Kelley, E.E.; Isenberg, J.S.; Pagano, P.J. Thrombospondin-1 regulates blood flow via CD47 receptor-mediated activation of NADPH oxidase 1. Arterioscler. Thromb. Vasc. Biol 2012, 32, 2966–2973. [Google Scholar]
  4. Sugiyama, S.; Kugiyama, K.; Aikawa, M.; Nakamura, S.; Ogawa, H.; Libby, P. Hypochlorous acid, a macrophage product, induces endothelial apoptosis and tissue factor expression: Involvement of myeloperoxidase-mediated oxidant in plaque erosion and thrombogenesis. Arterioscler. Thromb. Vasc. Biol 2004, 24, 1309–1314. [Google Scholar]
  5. Touyz, R.M.; Briones, A.M. Reactive oxygen species and vascular biology: Implications in human hypertension. Hypertens. Res 2011, 34, 5–14. [Google Scholar]
  6. Corbi, G.; Bianco, A.; Turchiarelli, V.; Cellurale, M.; Fatica, F.; Daniele, A.; Mazzarella, G.; Ferrara, N. Potential mechanisms linking atherosclerosis and increased cardiovascular risk in copd: Focus on sirtuins. Int. J. Mol. Sci 2013, 14, 12696–12713. [Google Scholar]
  7. Kikuchi, K.; Tancharoen, S.; Takeshige, N.; Yoshitomi, M.; Morioka, M.; Murai, Y.; Tanaka, E. The efficacy of edaravone (radicut), a free radical scavenger, for cardiovascular disease. Int. J. Mol. Sci 2013, 14, 13909–13930. [Google Scholar]
  8. Saparov, A.; Chen, C.W.; Beckman, S.A.; Wang, Y.; Huard, J. The role of antioxidation and immunomodulation in postnatal multipotent stem cell-mediated cardiac repair. Int. J. Mol. Sci 2013, 14, 16258–16279. [Google Scholar]
  9. Di Pietro, M.; Filardo, S.; de Santis, F.; Sessa, R. Chlamydia pneumoniae infection in atherosclerotic lesion development through oxidative stress: A brief overview. Int. J. Mol. Sci 2013, 14, 15105–15120. [Google Scholar]
  10. Cuevas, S.; Villar, V.A.; Jose, P.A.; Armando, I. Renal dopamine receptors, oxidative stress, and hypertension. Int. J. Mol. Sci 2013, 14, 17553–17572. [Google Scholar]
  11. Daffu, G.; del Pozo, C.H.; O’Shea, K.M.; Ananthakrishnan, R.; Ramasamy, R.; Schmidt, A.M. Radical roles for rage in the pathogenesis of oxidative stress in cardiovascular diseases and beyond. Int. J. Mol. Sci 2013, 14, 19891–19910. [Google Scholar]
  12. Makki, N.; Thiel, K.W.; Miller, F.J., Jr. The epidermal growth factor receptor and its ligands in cardiovascular disease. Int. J. Mol. Sci 2013, 14, 20597–20613. [Google Scholar]
  13. Pastore, A.; Piemonte, F. Protein glutathionylation in cardiovascular diseases. Int. J. Mol. Sci 2013, 14, 20845–20876. [Google Scholar]
  14. Pitocco, D.; Tesauro, M.; Alessandro, R.; Ghirlanda, G.; Cardillo, C. Oxidative stress in diabetes: Implications for vascular and other complications. Int. J. Mol. Sci 2013, 14, 21525–21550. [Google Scholar]
  15. Magenta, A.; Greco, S.; Gaetano, C.; Martelli, F. Oxidative stress and micrornas in vascular diseases. Int. J. Mol. Sci 2013, 14, 17319–17346. [Google Scholar]
  16. Feng, B.; Yan, X.F.; Xue, J.L.; Xu, L.; Wang, H. The protective effects of alpha-lipoic acid on kidneys in type 2 diabetic goto-kakisaki rats via reducing oxidative stress. Int. J. Mol. Sci 2013, 14, 6746–6756. [Google Scholar]
  17. Gonzalez-Muniesa, P.; Marrades, M.P.; Martinez, J.A.; Moreno-Aliaga, M.J. Differential proinflammatory and oxidative stress response and vulnerability to metabolic syndrome in habitual high-fat young male consumers putatively predisposed by their genetic background. Int. J. Mol. Sci 2013, 14, 17238–17255. [Google Scholar]
  18. De la Iglesia, R.; Lopez-Legarrea, P.; Celada, P.; Sanchez-Muniz, F.J.; Martinez, J.A.; Zulet, M.A. Beneficial effects of the resmena dietary pattern on oxidative stress in patients suffering from metabolic syndrome with hyperglycemia are associated to dietary tac and fruit consumption. Int. J. Mol. Sci 2013, 14, 6903–6919. [Google Scholar]
  19. Tie, R.; Ji, L.; Nan, Y.; Wang, W.; Liang, X.; Tian, F.; Xing, W.; Zhu, M.; Li, R.; Zhang, H. Achyranthes bidentata polypeptides reduces oxidative stress and exerts protective effects against myocardial ischemic/reperfusion injury in rats. Int. J. Mol. Sci 2013, 14, 19792–19804. [Google Scholar]
  20. Duarte, S.; Arango, D.; Parihar, A.; Hamel, P.; Yasmeen, R.; Doseff, A.I. Apigenin protects endothelial cells from lipopolysaccharide (LPS)-induced inflammation by decreasing caspase-3 activation and modulating mitochondrial function. Int. J. Mol. Sci 2013, 14, 17664–17679. [Google Scholar]
  21. Doronzo, G.; Viretto, M.; Barale, C.; Russo, I.; Mattiello, L.; Anfossi, G.; Trovati, M. Oleic acid increases synthesis and secretion of vegf in rat vascular smooth muscle cells: Role of oxidative stress and impairment in obesity. Int. J. Mol. Sci 2013, 14, 18861–18880. [Google Scholar]
  22. Li, W.; Tang, C.; Jin, H.; Du, J. Regulatory effects of sulfur dioxide on the development of atherosclerotic lesions and vascular hydrogen sulfide in atherosclerotic rats. Atherosclerosis 2011, 215, 323–330. [Google Scholar]
  23. Jin, H.; Liu, A.D.; Holmberg, L.; Zhao, M.; Chen, S.; Yang, J.; Sun, Y.; Tang, C.; Du, J. The role of sulfur dioxide in the regulation of mitochondrion-related cardiomyocyte apoptosis in rats with isopropylarterenol-induced myocardial injury. Int. J. Mol. Sci 2013, 14, 10465–10482. [Google Scholar]
  24. Wiedemann, D.; Schachner, T.; Bonaros, N.; Dorn, M.; Andreas, M.; Kocher, A.; Kuznetsov, A.V. Impact of cold ischemia on mitochondrial function in porcine hearts and blood vessels. Int. J. Mol. Sci 2013, 14, 22042–22051. [Google Scholar]
  25. Mizukami, H.; Saitoh, S.; Machii, H.; Yamada, S.; Hoshino, Y.; Misaka, T.; Ishigami, A.; Takeishi, Y. Senescence marker protein-30 (SMP30) deficiency impairs myocardium-induced dilation of coronary arterioles associated with reactive oxygen species. Int. J. Mol. Sci 2013, 14, 9408–9423. [Google Scholar]
  26. Brouwers, O.; de Vos-Houben, J.M.; Niessen, P.M.; Miyata, T.; van Nieuwenhoven, F.; Janssen, B.J.; Hageman, G.; Stehouwer, C.D.; Schalkwijk, C.G. Mild oxidative damage in the diabetic rat heart is attenuated by glyoxalase-1 overexpression. Int. J. Mol. Sci 2013, 14, 15724–15739. [Google Scholar]
  27. Al Ghouleh, I.; Rodriguez, A.; Pagano, P.J.; Csanyi, G. Proteomic analysis identifies an nadph oxidase 1 (NOX1)-mediated role for actin-related protein 2/3 complex subunit 2 (ARPC2) in promoting smooth muscle cell migration. Int. J. Mol. Sci 2013, 14, 20220–20235. [Google Scholar]
  28. Cao, Y.; Mu, J.J.; Fang, Y.; Yuan, Z.Y.; Liu, F.Q. Impact of high salt independent of blood pressure on PRMT/ADMA/DDAH pathway in the aorta of dahl salt-sensitive rats. Int. J. Mol. Sci 2013, 14, 8062–8072. [Google Scholar]
  29. Massberg, S.; Schurzinger, K.; Lorenz, M.; Konrad, I.; Schulz, C.; Plesnila, N.; Kennerknecht, E.; Rudelius, M.; Sauer, S.; Braun, S.; et al. Platelet adhesion via glycoprotein iib integrin is critical for atheroprogression and focal cerebral ischemia: An in vivo study in mice lacking glycoprotein iib. Circulation 2005, 112, 1180–1188. [Google Scholar]
  30. Badrnya, S.; Assinger, A.; Volf, I. Native high density lipoproteins (HDL) interfere with platelet activation induced by oxidized low density lipoproteins (OXLDL). Int. J. Mol. Sci 2013, 14, 10107–10121. [Google Scholar]
  31. Barry-Lane, P.A.; Patterson, C.; van der Merwe, M.; Hu, Z.; Holland, S.M.; Yeh, E.T.; Runge, M.S. P47phox is required for atherosclerotic lesion progression in apoe(−/−) mice. J. Clin. Investig 2001, 108, 1513–1522. [Google Scholar]
  32. Judkins, C.P.; Diep, H.; Broughton, B.R.; Mast, A.E.; Hooker, E.U.; Miller, A.A.; Selemidis, S.; Dusting, G.J.; Sobey, C.G.; Drummond, G.R. Direct evidence of a role for nox2 in superoxide production, reduced nitric oxide bioavailability, and early atherosclerotic plaque formation in apoe−/− mice. Am. J. Physiol. Heart Circ. Physiol 2010, 298, H24–H32. [Google Scholar]
  33. Sheehan, A.L.; Carrell, S.; Johnson, B.; Stanic, B.; Banfi, B.; Miller, F.J., Jr. Role for nox1 nadph oxidase in atherosclerosis. Atherosclerosis 2011, 216, 321–326. [Google Scholar]
  34. Kinkade, K.; Streeter, J.; Miller, F.J. Inhibition of nadph oxidase by apocynin attenuates progression of atherosclerosis. Int. J. Mol. Sci 2013, 14, 17017–17028. [Google Scholar]
  35. Hartono, S.P.; Knudsen, B.E.; Zubair, A.S.; Nath, K.A.; Textor, S.J.; Lerman, L.O.; Grande, J.P. Redox signaling is an early event in the pathogenesis of renovascular hypertension. Int. J. Mol. Sci 2013, 14, 18640–18656. [Google Scholar]

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MDPI and ACS Style

Csányi, G.; Jr., F.J.M. Oxidative Stress in Cardiovascular Disease. Int. J. Mol. Sci. 2014, 15, 6002-6008. https://doi.org/10.3390/ijms15046002

AMA Style

Csányi G, Jr. FJM. Oxidative Stress in Cardiovascular Disease. International Journal of Molecular Sciences. 2014; 15(4):6002-6008. https://doi.org/10.3390/ijms15046002

Chicago/Turabian Style

Csányi, Gábor, and Francis J. Miller Jr. 2014. "Oxidative Stress in Cardiovascular Disease" International Journal of Molecular Sciences 15, no. 4: 6002-6008. https://doi.org/10.3390/ijms15046002

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