Dastmalchi Keyvan, Wang Isabel, Stark Ruth E
Department of Chemistry and Biochemistry, The City College of New York, City University of New York Graduate Center Ph.D. Programs in Biochemistry and Chemistry, and CUNY Institute for Macromolecular Assemblies, New York, NY 10031, USA.
Department of Chemistry and Biochemistry, The City College of New York, City University of New York Graduate Center Ph.D. Programs in Biochemistry and Chemistry, and CUNY Institute for Macromolecular Assemblies, New York, NY 10031, USA.
Food Chem. 2016 Nov 1;210:473-80. doi: 10.1016/j.foodchem.2016.04.123. Epub 2016 Apr 27.
The need for safe, effective preservatives is a prominent issue in the food and drug industries, reflecting demand for natural alternatives to synthetic chemicals viewed as harmful to consumers and the environment. Thus, this study determined the identities and scavenging capacities of antioxidant metabolites produced as a response to potato tuber wounding, using activity-guided fractionation of polar extracts from a Yukon Gold cultivar that had previously exhibited exceptionally high radical-scavenging activity. Activity-guided fractionation using the ABTS(+) radical scavenging assay and LC-MS with TOF-MS for compositional analysis of the most potent antioxidant fractions yielded identification of nine constituents: coumaroylputrescine; feruloylquinic acid; isoferuloylputrescine; ferulic acid; 22,25-dimethoxy-3-[[2,3,4-tri-O-methyl-6-O-(2,3,4,6-tetra-O-methyl-β-d-glucopyranosyl)-β-d-glucopyranosyl]oxy]-(3β)-lanost-9(11)-en-24-one; 4-(2Z)-2-decen-1-yl-5-[1-(4-hydroxyphenyl)decyl]-1,2-benzenediol; 8-[(2E)-3,7-dimethyl-2,6-octadien-1-yl]-5-hydroxy-2,8-dimethyl-6-(3-methyl-2-buten-1-yl)-2H-1-benzopyran-4,7(3H,8H)-dione; 3-[(2-O-β-d-glucopyranosyl-β-d-glucopyranosyl)oxy]-20-[(6-O-β-d-xylopyranosyl-β-d-glucopyranosyl)oxy]-dammar-24-en-19-al; (3β)-28-oxo-28-(phenylmethoxy)oleanan-3-yl 2-O-β-d-galactopyranosyl-3-O-(phenylmethyl)-, butyl ester β-d-glucopyranosiduronic acid. A positive correlation was observed between the scavenging activities and the polarities of the active fractions. The antioxidant capacities of the fractions were also characterised by monitoring the activity throughout a 45-minute assay period.
在食品和制药行业中,对安全、有效的防腐剂的需求是一个突出问题,这反映出人们对合成化学品的天然替代品的需求,因为合成化学品被认为对消费者和环境有害。因此,本研究利用活性导向分级分离法,从先前表现出极高自由基清除活性的育空金品种的极性提取物中,确定了马铃薯块茎受伤后产生的抗氧化代谢物的种类及其清除能力。使用ABTS(+)自由基清除测定法和带有飞行时间质谱仪的液相色谱-质谱联用仪对最有效的抗氧化级分进行成分分析的活性导向分级分离,鉴定出了九种成分:香豆酰腐胺;阿魏酰奎尼酸;异阿魏酰腐胺;阿魏酸;22,25-二甲氧基-3-[[2,3,4-三-O-甲基-6-O-(2,3,4,6-四-O-甲基-β-D-吡喃葡萄糖基)-β-D-吡喃葡萄糖基]氧基]-(3β)-羊毛甾-9(11)-烯-24-酮;4-(2Z)-2-癸烯-1-基-5-[1-(4-羟基苯基)癸基]-1,2-苯二酚;8-[(2E)-3,7-二甲基-2,6-辛二烯-1-基]-5-羟基-2,8-二甲基-6-(3-甲基-2-丁烯-1-基)-2H-1-苯并吡喃-4,7(3H,8H)-二酮;3-[(2-O-β-D-吡喃葡萄糖基-β-D-吡喃葡萄糖基)氧基]-20-[(6-O-β-D-吡喃木糖基-β-D-吡喃葡萄糖基)氧基]-达玛-24-烯-19-醛;(3β)-28-氧代-28-(苯基甲氧基)齐墩果烷-3-基 2-O-β-D-吡喃半乳糖基-3-O-(苯基甲基)-,丁酯 β-D-吡喃葡萄糖醛酸。在清除活性与活性级分的极性之间观察到正相关。还通过在45分钟的测定期间监测活性来表征各馏分的抗氧化能力。