834
Views
16
CrossRef citations to date
0
Altmetric
Article; Pharmaceutical Biotechnology

Synthesis and antioxidant activity of some 1-aryl/aralkyl piperazine derivatives with xanthine moiety at N4

, , &
Pages 1165-1171 | Received 26 Feb 2014, Accepted 30 May 2014, Published online: 17 Nov 2014

References

  • Tsang AHK, Chung KKK. Oxidative and nitrosative stress in Parkinson's disease. Biochimica et Biophysica Acta. 2009;1792:643–650.
  • Chauhan V, Chauhan A. Oxidative stress in Alzheimer's disease. Pathophysiology. 2006;13:195–208.
  • Chung CP, Schmidt D, Stein CM, Morrow JM, Salomon RM. Increased oxidative stress in patients with depression and its relationship to treatment. Psychiatry Research. 2013;206:213–216.
  • Stefanescu C, Ciobica A. The relevance of oxidative stress status in first episode and recurrent depression. J Affective Disord. 2012;143:34–38.
  • Zheleva-Dimitrova D, Nedialkov P, Kitanov G. Radical scavenging and antioxidant activities of methanolic extracts from Hypericum species growing in Bulgaria. Pharmacognosy Magazine. 2010;6:74–78.
  • López-Alarcóna C, Denicola A. Evaluating the antioxidant capacity of natural products: a review on chemical and cellular-based assays. Analytica Chimica Acta. 2013;763:1–10.
  • Niki E. Assessment of antioxidant capacity in vitro and in vivo. Free Radic Biol Med. 2010;49:503–515.
  • Aqil F, Ahmad I, Mehmood Z. Antioxidant and free radical scavenging properties of twelve traditionally used Indian medicinal plants. Turkish J Biol. 2006;30:177–183.
  • Zhang XY, Yao JK. Oxidative stress and therapeutic implications in psychiatric disorders. Prog in Neuro-Psychopharmac & Biol Psychiatry. 2013;46:197–199.
  • Amita T, Mridula M, Manju V. Piperazine: the molecule of diverse pharmacological importance. Inter J of Ayurveda and Pharm. 2011;2:1547–1548.
  • Pietrzycka A, Stepniewski M., Waszkielewicz AM, Marona H. Preliminary evaluation of antioxidant activity of some 1-(phenoxyethyl)-piperazine derivatives. Acta Poloinae Pharmaceutica and Drug Res. 2006;63:19–24.
  • Salat K, Moniczewski A, Salat R, Janaszek M, Filipek B, Malawska B, Wieckowski K. Preliminary evaluation of antioxidant activity of some 1-(phenoxyethyl)-piperazine derivatives. Pharmacol, Biochem Behav. 2012;101:138–147.
  • Peikov P, Sidzhakova D, Gagausov J. Laboratory technology of synthesis of 1-(3-iodoropropyl)-3,7-dimethylxanthine. Farmacia. 1988;38:1–4. Bulgarian.
  • Zheleva-Dimitrova D, Balabanova V. Antioxidant and acetylcholinesterase inhibitory potential of Arnica montana cultivated in Bulgaria. Turkish J Biol. 2012;36:732–737.
  • Arnao M, Cano A, Acosta M. The hydrophilic and lipophilic contribution to total antioxidant activity. Food Chem. 2001;73:239–244.
  • Benzie I, Strain J. The ferric reducing ability of plasma (FRAP) as a measure of ‘antioxidant power’: the FRAP assay. Anal Biochem. 1996;239:70–76.
  • Takao T, Kitatani F, Watanabe N. Yagi A, Sakata K. A simple screening method for antioxidants and isolation of several antioxidants produced by marine bacteria from fish and shellfish. Biosci, Biotech and Biochem. 1994;58:1780–1783.
  • Aires-de-Sousa J, Hemmer M, Gasteiger J. Prediction of 1H NMR chemical shifts using neural networks. Anal Chem. 2002;74:80–90.
  • Banfi D, Patiny L. Resurrecting and processing NMR spectra on-line. Chimia. 2008;62:280–281.
  • Binev Y, Aires-de-Sousa J. Structure-based predictions of 1H NMR chemical shifts using feed-forward neural networks. J Chem Inf Comput Sci. 2004;44:940–945.
  • Binev Y, Corvo M, Aires-de-Sousa J. The impact of available experimental data on the prediction of 1H NMR chemical shifts by neural networks. J Chem Inf Comput Sci. 2004;44:946–949.