Publication Cover
Archives of Physiology and Biochemistry
The Journal of Metabolic Diseases
Volume 128, 2022 - Issue 6
87
Views
2
CrossRef citations to date
0
Altmetric
Original Articles

Cardioprotective doses of thyroid hormones improve NO bioavailability in erythrocytes and increase HIF-1α expression in the heart of infarcted rats

, , , ORCID Icon, , , , ORCID Icon, , ORCID Icon & show all
Pages 1516-1523 | Received 07 Feb 2020, Accepted 03 Jun 2020, Published online: 17 Jun 2020

References

  • Aebi, H., 1984. Catalase in vitro. Methods in enzymology, 105, 121–126.
  • Akerboom, T., and Sies, H., 1981. Assay of glutathione, glutathione disulfide, and glutathione mixed disulfides in biological samples. Methods in enzymology, 77, 373–382.
  • Aksenov, M.Y., and Markesbery, W.R., 2001. Changes in thiol content and expression of glutathione redox system genes in the hippocampus and cerebellum in Alzheimer’s disease. Neuroscience letters, 302 (2–3), 141–145.
  • Alchera, E., et al., 2008. Adenosine-dependent activation of hypoxia-inducible factor-1 induces late preconditioning in liver cells. Hepatology (Baltimore, Md.), 48 (1), 230–239.,
  • Araujo, A.S.R., et al., 2011. Thyroid hormone-induced haemoglobin changes and antioxidant enzymes response in erythrocytes. Cell biochemistry and function, 29 (5), 408–413.
  • Araujo, A.S., et al., 2006. Myocardial antioxidant enzyme activities and concentration and glutathione metabolism in experimental hyperthyroidism. Molecular and cellular endocrinology, 249 (1-2), 133–139.
  • Banai, S., et al., 1994. Upregulation of vascular endothelial growth factor expression induced by myocardial ischaemia: implications for coronary angiogenesis. Cardiovascular research, 28 (8), 1176–1179.
  • Bauersachs, J., et al., 1999. Endothelial dysfunction in chronic myocardial infarction despite increased vascular endothelial nitric oxide synthase and soluble guanylate cyclase expression: role of enhanced vascular superoxide production. Circulation, 100 (3), 292–298.
  • Corssac, G.B., et al., 2016. Thyroid hormones effects on oxidative stress and cardiac remodeling in the right ventricle of infarcted rats. Life sciences, 146, 109–116.
  • Cosby, K., et al., 2003. Nitrite reduction to nitric oxide by deoxyhemoglobin vasodilates the human circulation. Nature medicine, 9 (12), 1498–1505.
  • De Castro, A.L., et al., 2014. Cardioprotective effects of thyroid hormones in a rat model of myocardial infarction are associated with oxidative stress reduction. Molecular and cellular endocrinology, 391 (1–2), 22–29.
  • De Castro, A.L., et al., 2015. T3 and T4 decrease ROS levels and increase endothelial nitric oxide synthase expression in the myocardium of infarcted rats. Molecular and cellular biochemistry, 408 (1-2), 235–243.
  • Eligini, S., et al., 2013. Nitric oxide synthetic pathway in red blood cells is impaired in coronary artery disease. PLoS One, 58 (8), e66945
  • Flohe, L., and Gunzler, W.A., 1984. Assays of glutathione peroxidase. Methods in enzymology, 105, 114–121.
  • Gerdes, A.M., and Iervasi, G., 2010. Thyroid replacement therapy and heart failure. Circulation, 122 (4), 385–3393.
  • Gladwin, M.T., et al., 2003. Nitric oxide’s reactions with hemoglobin: a view through the SNO-storm. Nature medicine, 9 (5), 496–500.
  • Granger, D.L., et al., 1999. Measuring nitric oxide production in human clinical studies. Methods in enzymology, 301, 49–61.
  • Heusch, G., et al., 2000. Endogenous nitric oxide and myocardial adaptation to ischemia. Circulation research, 87 (2), 146–152.
  • Hong, H.S., et al., 2019. Substance-P Prevents Cardiac Ischemia-Reperfusion Injury by Modulating Stem Cell Mobilization and Causing Early Suppression of Injury-Mediated Inflammation. Cellular physiology and biochemistry: international journal of experimental cellular physiology, biochemistry, and pharmacology, 52 (1), 40–56.
  • Jia, L., et al., 1996. S-nitrosohaemoglobin: a dynamic activity of blood involved in vascular control. Nature, 380 (6571), 221–226.
  • Johns, T.N.P., and Olson, B.J., 1954. Experimental myocardial infarction. I. A method of coronary occlusion in small animals. Annals of surgery, 140 (5), 675–682.
  • Kasuno, K., et al., 2004. Nitric oxide induces hypoxia-inducible factor 1 activation that is dependent on MAPK and phosphatidylinositol 3-kinase signaling. The journal of biological chemistry, 279 (4), 2550–2558.
  • Klein, D., et al., 1995. A method for quantification and correction of proteins after transfer to immobilization membranes. Biochemistry and molecular biology international, 36 (1), 59–66.
  • Lacerda, D., et al., 2018. Stilbenoid pterostilbene complexed with cyclodextrin preserves left ventricular function after myocardial infarction in rats: possible involvement of thiol proteins and modulation of phosphorylated GSK-3β. Free radical research, 52 (9), 988–999.
  • Laemmli, U.K., 1970. Cleavage of structural proteins during the assembly of the head of bacteriophage T4. Nature, 227 (5259), 680–685.
  • Lebel, C.P., et al., 1992. Evaluation of the probe 2’,7’-dichlorofluorescin as an indicator of reactive oxygen species formation and oxidative stress. Chemical research in toxicology, 5 (2), 227–231.
  • Llesuy, S.F., et al., 1985. Comparison of lipid peroxidation and myocardial damage induced by adramiycin and 4′-epiadramiycin in mice. Tumori, 71 (3), 241–249.
  • Lowry, O.H., et al., 1951. Protein measurement with the Folin phenol reagent. The journal of biological chemistry, 193 (1), 265–275.
  • Marklund, S. L., 1985. Pyrogallol autooxidation, in: handbook of methods for oxygen radical research. Florida: CRC. Boca Raton: Press. pp. 243–247.
  • Merx, M.W., et al., 2014. Depletion of circulating blood NOS3 increases severity of myocardial infarction and left ventricular dysfunction. Basic research in cardiology, 109 (1), 398.
  • Messarah, M., et al., 2011. Oxidative stress induced by thyroid dysfunction in rat erythrocytes and heart. Environmental toxicology and pharmacology, 31 (1), 33–41.
  • Nozawa, E., et al., 2006. Performance of two-dimensional Doppler echocardiography for the assessment of infarct size and left ventricular function in rats. Brazilian journal of medical and biological research, 39 (5), 687–695.
  • Ortiz, V.D., et al., 2016. Effects of thyroid hormones on aortic tissue after myocardial infarction in rats. European journal of pharmacology, 791, 788–793.
  • Ortiz-Barahona, A., et al., 2010. Genome-wide identification of hypoxia-inducible factor binding sites and target genes by a probabilistic model integrating transcription-profiling data and in silico binding site prediction. Nucleic acids research, 38 (7), 2332–2345.
  • Pantos, C., et al., 2008. Long-term thyroid hormone administration reshapes left ventricular chamber and improves cardiac function after myocardial infarction in rats. Basic research in cardiology, 103 (4), 308–318.
  • Peron, A.P., et al., 2006. Mechanical function is normal in remanent myocardium during the healing period of myocardial infarction-despite congestive heart failure. Arquivos brasileiros de Cardiologia, 86 (2), 105–112.
  • Sandau, K.B., et al., 2000. Induction of hypoxia-inducible-factor 1 by nitric oxide is mediated via the PI 3K pathway. Biochemical and biophysical research communications, 278 (1), 263–267.
  • Schenkel, P., et al., 2014. Catalase influence in the regulation of coronary resistance by estrogen: joint action of nitric oxide and hydrogen peroxide. Oxidative medicine and cellular longevity (longevity), 2014, 1–6.
  • Schenkel, P.C., et al., 2010. Redox-sensitive prosurvival and proapoptotic protein expression in the myocardial remodeling post-infarction in rats. Molecular and cellular biochemistry, 341 (1–2), 1–8.
  • Tavares, A.M., et al., 2010. Bone marrow derived cells decrease inflammation but not oxidative stress in an experimental model of acute myocardial infarction. Life sciences, 87 (23–26), 699–706.
  • Yang, J., et al., 2013. Arginase regulates red blood cell nitric oxide synthase and export of cardioprotective nitric oxide bioactivity. Proceedings of the national academy of sciences of the United States of America, 110 (37), 15049–15054.
  • Zhong, Z., et al., 2008. Activation of the oxygen-sensing signal cascade prevents mitochondrial injury after mouse liver ischemia-reperfusion. American journal of physiology: gastrointestinal and liver physiology, 295, 823–832.

Reprints and Corporate Permissions

Please note: Selecting permissions does not provide access to the full text of the article, please see our help page How do I view content?

To request a reprint or corporate permissions for this article, please click on the relevant link below:

Academic Permissions

Please note: Selecting permissions does not provide access to the full text of the article, please see our help page How do I view content?

Obtain permissions instantly via Rightslink by clicking on the button below:

If you are unable to obtain permissions via Rightslink, please complete and submit this Permissions form. For more information, please visit our Permissions help page.