Antioxidant potential of betel fruits (Piper betle) extract and molecular docking study of betel fruit bioactive compounds against human ROS kinase free radical receptors
暂无分享,去创建一个
Fatimawali | B. Kepel | W. Bodhi | T. Tallei | Marko Jeremia Kalalo | Tri Andira Hebber | Siboantua Broolin Simanjuntak
[1] T. Emran,et al. Potential of betacyanin as inhibitor of SARS-CoV-2 revealed by molecular docking study , 2021 .
[2] C. Ginting,et al. Hepatoprotective properties of red betel (Piper crocatum Ruiz and Pav) leaves extract towards H2O2-induced HepG2 cells via anti-inflammatory, antinecrotic, antioxidant potency , 2020, Saudi pharmaceutical journal : SPJ : the official publication of the Saudi Pharmaceutical Society.
[3] A. Roy,et al. Molecular docking analysis of capsaicin with apoptotic proteins , 2020, Bioinformation.
[4] Leilei Tian,et al. Hydrophobic Interaction: A Promising Driving Force for the Biomedical Applications of Nucleic Acids , 2020, Advanced science.
[5] B. Beena,et al. Greener nanoscience: Piper betel leaf extract mediated synthesis of CaO nanoparticles and evaluation of its antibacterial and anticancer activity , 2020 .
[6] G. Ramajayam,et al. Molecular docking analysis of alkaloid compounds with beta-catenin towards the treatment of colon cancer , 2020, Bioinformation.
[7] Anjum Aara,et al. Antioxidant activity of eugenol in Piper betel leaf extract , 2020, Journal of family medicine and primary care.
[8] S. Parveen,et al. A new chiral boron-dipyrromethene (BODIPY)-based fluorescent probe: molecular docking, DFT, antibacterial and antioxidant approaches , 2019, Journal of biomolecular structure & dynamics.
[9] A. Karuniawan,et al. Ethnobotanical dataset on local edible fruits in North Sulawesi, Indonesia , 2019, Data in brief.
[10] A. Nag,et al. Extraction of betel leaves (Piper betle L.) essential oil and its bio-actives identification: Process optimization, GC-MS analysis and anti-microbial activity , 2019, Industrial Crops and Products.
[11] C. Bustamante,et al. Hydrophobic catalysis and a potential biological role of DNA unstacking induced by environment effects , 2019, Proceedings of the National Academy of Sciences.
[12] Niranjan Koirala,et al. Total Phenolic Content, Flavonoid Content and Antioxidant Potential of Wild Vegetables from Western Nepal , 2019, Plants.
[13] A. Tkatchenko,et al. Tailoring van der Waals dispersion interactions with external electric charges , 2018, Nature Communications.
[14] A. Roy,et al. Formulation and characterization of betel leaf (Piper betle L.) essential oil based nanoemulsion and its in vitro antibacterial efficacy against selected food pathogens , 2018 .
[15] D. Herschlag,et al. Hydrogen Bonds: Simple after All? , 2018, Biochemistry.
[16] Chenghua Sun,et al. Hydrogen bonding effect between active site and protein environment on catalysis performance in H2-producing [NiFe] hydrogenases. , 2018, Physical chemistry chemical physics : PCCP.
[17] Mamdouh M. Ali,et al. Design, synthesis, molecular docking and cytotoxic evaluation of novel 2-furybenzimidazoles as VEGFR-2 inhibitors. , 2017, European journal of medicinal chemistry.
[18] S. Losada-Barreiro,et al. Free radicals and polyphenols: The redox chemistry of neurodegenerative diseases. , 2017, European journal of medicinal chemistry.
[19] M. A. Neelakantan,et al. Structural characterization, surface characteristics and non covalent interactions of a heterocyclic Schiff base: Evaluation of antioxidant potential by UV–visible spectroscopy and DFT , 2017 .
[20] M. Silvestre,et al. Coconut (Cocos nucifera) Ethanolic Leaf Extract Reduces Amyloid-β (1-42) Aggregation and Paralysis Prevalence in Transgenic Caenorhabditis elegans Independently of Free Radical Scavenging and Acetylcholinesterase Inhibition , 2017, Biomedicines.
[21] S. Pawar,et al. Biochemical profiling of antifungal activity of betel leaf (Piper betle L.) extract and its significance in traditional medicine , 2017 .
[22] Olivier Michielin,et al. SwissADME: a free web tool to evaluate pharmacokinetics, drug-likeness and medicinal chemistry friendliness of small molecules , 2017, Scientific Reports.
[23] E. Kurutaş. The importance of antioxidants which play the role in cellular response against oxidative/nitrosative stress: current state , 2015, Nutrition Journal.
[24] G. Kulkarni,et al. A comparative study on the antioxidant activity of methanolic extracts of Terminalia paniculata and Madhuca longifolia , 2011 .
[25] M. Mezei,et al. Molecular docking: a powerful approach for structure-based drug discovery. , 2011, Current computer-aided drug design.
[26] C. Pace,et al. Contribution of hydrophobic interactions to protein stability. , 2011, Journal of molecular biology.
[27] V. Lobo,et al. Free radicals, antioxidants and functional foods: Impact on human health , 2010, Pharmacognosy reviews.
[28] David S. Goodsell,et al. AutoDock4 and AutoDockTools4: Automated docking with selective receptor flexibility , 2009, J. Comput. Chem..
[29] J. Mérillon,et al. Comparative study of antioxidant properties and total phenolic content of 30 plant extracts of industrial interest using DPPH, ABTS, FRAP, SOD, and ORAC assays. , 2009, Journal of agricultural and food chemistry.
[30] J. Israelachvili,et al. Recent progress in understanding hydrophobic interactions , 2006 .
[31] C. Lipinski. Lead- and drug-like compounds: the rule-of-five revolution. , 2004, Drug discovery today. Technologies.
[32] Chi-Tang Ho,et al. Comparison of Antioxidant Activities of Isoflavones from Kudzu Root (Pueraria lobata Ohwi) , 2003 .
[33] M. S. Blois,et al. Antioxidant Determinations by the Use of a Stable Free Radical , 1958, Nature.