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Mistry RK, Brewer AC. Redox-Dependent Regulation of Sulfur Metabolism in Biomolecules: Implications for Cardiovascular Health. Antioxid Redox Signal. 2019 Mar 1;30(7):972-991. Search in Google Scholar

Kalhan, S.C, R.W. Hanson. Resurgence of serine: an often neglected but indispensable amino acid. J Biol Chem 2012; 287: 19786-91. Search in Google Scholar

Ganguly P, Alam SF. Role of homocysteine in the development of cardiovascular disease. Nutr J 2015; 14: 6. Search in Google Scholar

Chin K, Toue S, Kawamata Y, Watanabe A, Miwa T, Smriga M et al. A 4-week toxicity study of methionine in male rats. Int J Toxicol 2015; 34(3):233-41. Search in Google Scholar

Banecki B. Homocysteine, heat shock proteins, genistein and vitamins in ischemic stroke—pathogenic and therapeutic implications. Acta Biochem Pol 2012; 59(4):495-9. Search in Google Scholar

Mazza A, Cicero AF, Ramazzina E, Lenti S et al. Nutraceutical approaches to homocysteine lowering in hypertensive subjects at low cardiovascular risk: a multicenter, randomized clinical trial. J Biol Reg Homeost Agents 2016;30:921-7. Search in Google Scholar

Refsum H, Ueland PM, Nygĺrd O, Vollset SE. Homocysteine and cardiovascular disease. Annu Rev Med 1998; 49:31-62. Search in Google Scholar

Jacobson WD. Homocysteine and vitamins in cardiovascular disease. Clin Chem 1998; 44(8 Pt 2):1833-43. Search in Google Scholar

Ueland PM. Homocysteine species as components of plasma redox thiol status. Clin Chem 1995; 41(3):340-2 Search in Google Scholar

Mills BJ, Weiss MM, Lang CA, Liu MC, Ziegler C. Blood glutathione and cysteine changes in cardiovascular disease. J Lab Clin Med 2000; 135(5):396-401. Search in Google Scholar

Jacob N, Bruckert E, Giral P, Foglietti MJ, Turpin G. Cysteine is a cardiovascular risk factor in hyperlipidemic patients. Atherosclerosis 1999;146(1):53-9. Search in Google Scholar

El-Khairy L, Ueland PM, Refsum H, Graham IM, Vollset SE. Plasma total cysteine as a risk factor for vascular diseases. Circulation 2001; 103(21):2544-9. Search in Google Scholar

Wilcken DE, Wilcken B. The pathogenesis of coronary artery disease. A possible role for methionine metabolism. J Clin Invest 1976; 57:1079-82. Search in Google Scholar

Speidl WS, Nikfardjam M, Niessner A et al. Mild hyperhomocysteinemia is associated with a decreased fibrinolytic activity in patients after ST-elevation myocardial infarction. Thromb Res 2007; 119(3):331-6. Search in Google Scholar

D’Angelo A, Selhub J. Homocysteine and thrombotic disease. Blood 1997; 90(1):1-11. Search in Google Scholar

Csontos C, Rezman B, Foldi V, Bogar L et al. Effect of N-acetylcysteine treatment on the expression of leukocyte surface markers after burn injury. Burns 2011; 37(3):453-64. Search in Google Scholar

Palacio JR, Markert UR, Martinez P. Anti-inflammatory properties of N-acetylcysteine on lipopolysaccharideactivated macrophages. Inflamm Res 2011; 60(7):695-704. Search in Google Scholar

Alturfan EI, Beceren A, Sehirli AO, Demiralp ZE. Protective effect of N-acetyl-L-cysteine against acrylamide-induced oxidative stress in rats. Turk J Vet Anim Sci 2012; 36(4): 438-45. Search in Google Scholar

Courtney-Martin, G., R.O. Ball, P.B. Pencharz. Sulfur amino acid metabolism and requirements. Nutr Rev 2012;70: 170-5. Search in Google Scholar

Hussain A, Maddock H, Al-Rajaibi H, Carson RJ. Effects on hydrogen sulfide on the isolated perfused rat heart. Sultan Qaboos Univ Med J 2011; 11(2): 236-44. Search in Google Scholar

Xu D, Gao C, Niu W, Li Y, Wang Y, Gao C,et al. Sodium hydrogensulfide alleviates lung inflammation and cell apoptosis following resuscitated hemorrhagic schock in rats. Acta Pharmacol Sin 2013; 34(12): 1515-25. Search in Google Scholar

Wei H, Zhang R, Jin H, Liu D, Tang X, Tang C, et al. Hydrogen sulfide attenuates hyperhomocysteinemiainduced cardiomyocytic endoplasmic reticulum stress in rats. Antioxid Redox Signal 2010; 12: 1079-91. Search in Google Scholar

Fu M, Zhang W, Wu L, Yang G, Li H and Wang R. Hydrogen sulfide (H2S) metabolism in mitochondria and its regulatory role in energy production. Proc Natl Acad Sci U S A 2012; 109: 2943-8. Search in Google Scholar

Banu SA, Ravindran S and Kurian GA. Hydrogen sulfide post-conditioning preserves interfibrillar mitochondria of rat heart during ischemia reperfusion injury. Cell Stress Chaperones 2016; 21: 571-82. Search in Google Scholar

Carmel R, Jacobsen DW (ed) 2001. Homocysteine in Health and Disease. Cambridge University Press. Search in Google Scholar

Škovierová H, Vidomanová E, Mahmood S, Sopková J, Drgová A, Červeňová T, Halašova E, Lehotský J The molecular and cellular effect of homocysteine metabolism imbalance on human health. Int J Mol Sci 2016; 17(10):1733. Search in Google Scholar

Lu SC. S- Adenosylmethionine. Int J Biochem Cell Biol 2000; 32:391-5. Search in Google Scholar

Schalinske KL, Smazal AL . Homocysteine imbalance: a pathological metabolic marker. ASN Adv Nutr 2012; 3: 755-62. Search in Google Scholar

Deutz NE, Simbo SY, Ligthart-Melis GC, Cynober L, Smriga M, Engelen MP. Tolerance to increased supplemented dietary intakes of methionine in healthy older adults. Am J Clin Nutr 2017;106(2):675-83. Search in Google Scholar

Welch, G.N., G.R. Upchurch, Jr, J. Loscalzo. Homocysteine, oxidative stress, and vascular disease. Hosp Pract 1997;32: 81-92. Search in Google Scholar

El-Khairy, L., P.M. Ueland, H. Refsum, et al. Plasma total cysteine as a riskfactorfor vascular disease. Circulation 2001;103: 2544-9. Search in Google Scholar

Sagristá ML, García AE, Africa De Madariaga M et al. Antioxidant and pro-oxidant effect of the thiolic compounds N-acetyl-l-cysteine and glutathione against free radical-induced lipid peroxidation. Free Radic Res 2002;36:329-40. Search in Google Scholar

Preibisch G, Küffner C, Elstner EF. Biochemical model reactions on the prooxidative activity of homocysteine. Z Natur C 1993;48(1-2):58-62. Search in Google Scholar

Јoseph J, Joseph L, Devi S, Kennedy RH Effect of antioxidant treatment on hyperhomocysteinemia induced myocardial fibrosis and diastolic dysfunction. J Heart Lung Transplant 2008; 27:1237-41. Search in Google Scholar

Chang L, Geng B, Yu F, Zhao J, Jiang H, Du J, Tang C. Hydrogen sulfide inhibits myocardial injury induced by homocysteine in rats. Amino Acids. 2008;34(4):573-85. Search in Google Scholar

Manna P, Das J, Sil PC. Role of sulfur containing amino acids as an adjuvant therapy in the prevention of diabetes and its associated complications. Curr Diabetes Rev 2013;9(3):237-48. Search in Google Scholar

Wu XY, Luo AY, Zhou YR, Ren JH. N-acetycysteine reduces oxidative stress, nuclear factor-kB activity and cardiomyocyte apoptosis in heart failure. Mol Med Rep 2014; 10(2):615-24. Search in Google Scholar

Vacek TP, Rehman S, Neamtu D, Yu S, Givimani S, Tyagi SC. Matrix metalloproteinases in atherosclerosis: role of nitric oxide, hydrogen sulfide, homocysteine, and polymorphisms. Vasc Health Risk Manag 2015;11:173-83. Search in Google Scholar

Yang G, Li H, Tang G, et al. Increased neointimal formation in cystathionine gamma-lyase deficient mice: role of hydrogen sulfide in α5β11-integrin and matrix metalloproteinase-2 expression in smooth muscle cells. J Mol Cell Cardiol 2012;52(3):677-88. Search in Google Scholar

Bełtowski J, Jamroz-Wiśniewska A. Hydrogen sulfide and endothelium-dependent vasorelaxation. Molecules. 2014;19(12):21183-99. Search in Google Scholar

Hussain A, Maddock H, Al-Rajaibi H, Carson RJ. Effects of hydrogen sulphide on the isolated perfused rat heart. Sultan Qaboos Univ Med J 2011;11(2):236-44. Search in Google Scholar

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