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中国精品科技期刊2020

差异蛋白质组学在采后果蔬生物与技术研究中的应用

朱婉贞, 陈存坤, 薛文通

朱婉贞, 陈存坤, 薛文通. 差异蛋白质组学在采后果蔬生物与技术研究中的应用[J]. 食品工业科技, 2016, (20): 377-380. DOI: 10.13386/j.issn1002-0306.2016.20.067
引用本文: 朱婉贞, 陈存坤, 薛文通. 差异蛋白质组学在采后果蔬生物与技术研究中的应用[J]. 食品工业科技, 2016, (20): 377-380. DOI: 10.13386/j.issn1002-0306.2016.20.067
ZHU Wan-zhen, CHEN Cun-kun, XUE Wen-tong. Application of differential proteomics in postharvest fruits and vegetables in the study of biological and technical[J]. Science and Technology of Food Industry, 2016, (20): 377-380. DOI: 10.13386/j.issn1002-0306.2016.20.067
Citation: ZHU Wan-zhen, CHEN Cun-kun, XUE Wen-tong. Application of differential proteomics in postharvest fruits and vegetables in the study of biological and technical[J]. Science and Technology of Food Industry, 2016, (20): 377-380. DOI: 10.13386/j.issn1002-0306.2016.20.067

差异蛋白质组学在采后果蔬生物与技术研究中的应用

基金项目: 

国家科技支撑计划项目(2015BAD19B01);

详细信息
    作者简介:

    朱婉贞(1992-),女,硕士研究生,研究方向:农产品贮藏保鲜,E-mail:18283582171@163.com。;

    薛文通(1962-),男,博士,教授,研究方向:农产品贮藏保鲜,E-mail:xwt@cau.edu.cn。;

  • 中图分类号: TS255.3

Application of differential proteomics in postharvest fruits and vegetables in the study of biological and technical

  • 摘要: 蛋白质组学作为联系表型与基因组序列之间的有效工具已得到了广泛的应用,差异蛋白质组学作为其中的一个分支,更适合于探讨果蔬在不同状态下的应答机制。本文综述了差异蛋白质组学的研究方法及利用其揭示采后果蔬成熟与衰老、抗病性、致敏性以及采后处理保鲜机制等方面的研究。 
    Abstract: Proteomics has been widely used as contact between phenotype and genome sequences,while differential proteomics,a branch of proteomics,is more suitable for response mechanism research of fruits and vegetables in different states.This article reviewed the research method of differential proteomics and its usage in revealing the mechanism of maturity and senescence,disease resistance,sensitization and post- processing preservation in fruits and vegetables.
  • [1]

    Grg A,Weiss W,Dunn M J.Current two-dimensional electrophoresis technology for proteomics[J].Proteomics,2004,4(12):3665-3685.

    [2]

    Al,R P H Y.Molecular and Cellular Proteomics[J].Molecular&Cellular Proteomics,2004,12(3):1154-1169.

    [3]

    Ross P L.Multiplexed Protein Quantitation in Saccharomyces cerevisiae Using Amine-reactive Isobaric Tagging Reagents[J].Molecular&Cellular Proteomics,2004,3(12):1154-1169.

    [4]

    Borsani J,Budde C O,Porrini L,et al.Carbon metabolism of peach fruit after harvest:changes in enzymes involved in organic acid and sugar level modifications[J].Journal of Experimental Botany,2009,60(6):1823-1837.

    [5]

    Zheng Q,Song J,Campbell-Palmer L,et al.A proteomic investigation of apple fruit during ripening and in response to ethylene treatment[J].Journal of Proteomics,2013,93:276-294.

    [6]

    Prinsi B,Negri A S,Fedeli C,et al.Peach fruit ripening:A proteomic comparative analysis of the mesocarp of two cultivars with different flesh firmness at two ripening stages[J].Phytochemistry,2011,72(10):1251-1262.

    [7]

    Liu X Z R F W.Proteomic analysis of‘Zaosu’pear(Pyrus bretschneideri Rehd.)and its early-maturing bud sport[J].Plant Science,2014(224):120-135.

    [8]

    Katz E,Boo K H,Kim H Y,et al.Label-free shotgun proteomics and metabolite analysis reveal a significant metabolic shift during citrus fruit development[J].Journal of Experimental Botany,2011,62(15):5367-5384.

    [9]

    Li L,Song J,Kalt W,et al.Quantitative proteomic investigation employing stable isotope labeling by peptide dimethylation on proteins of strawberry fruit at different ripening stages[J].Journal of Proteomics,2013,94:219-239.

    [10]

    Song J,Du L,Li L,et al.Quantitative changes in proteins responsible for flavonoid and anthocyanin biosynthesis in strawberry fruit at different ripening stages:A targeted quantitative proteomic investigation employing multiple reaction monitoring[J].Journal of Proteomics,2015,122:1-10.

    [11]

    Song J,Du L,Li L,et al.Targeted quantitative proteomic investigation employing multiple reaction monitoring on quantitative changes in proteins that regulate volatile biosynthesis of strawberry fruit at different ripening stages[J].Journal of Proteomics,2015,126:288-295.

    [12]

    Lorenzini M,Mainente F,Zapparoli G,et al.Post-harvest proteomics of grapes infected by Penicillium during withering to produce Amarone wine[J].Food Chemistry,2016,199:639-647.

    [13]

    Sharma R R S D S R.Biological Control of postharvest diseases of fruits and vegetables by microbial antagonists:A review[J].Biological Control,2009,3(50):205-221.

    [14]

    Jin P Z Y T S.Enhancing disease resistance in peach fruit with methyl jasmonate[J].Journal of the Science of Food and Agriculture,2009,89(5):802-808.

    [15]

    Yao H T S.Effects of pre-and post-harvest application of salicylic acid or methyl jasmonate on inducing disease resistance of sweet cherry fruit in storage[J].Postharvest Biology and Technology,2005,35(3):253-262.

    [16]

    Sohn K H L S C J.Expression and functional roles of the pepper pathogen-induced transcription factor RAV1 in bacterial disease resistance,and drought and salt stress tolerance[J].Plant molecular biology,2006,61(6):897-915.

    [17]

    Zeng K D Y M J.Induction of disease resistance and ROS metabolism in navel oranges by chitosan[J].Scientia horticulturae,2010,126(2):223-228.

    [18]

    Wang Q L T Q G.Response of jujube fruits to exogenous oxalic acid treatment based on proteomic analysis[J].Plant and Cell Physiology,2009,50(2):230-242.

    [19]

    Afroz A K M R A.Comparative proteomic analysis of bacterial wilt susceptible and resistant tomato cultivars[J].Peptides,2009,30(9):1600-1607.

    [20]

    Neilson E H,Goodger J Q D,Woodrow I E,et al.Plant chemical defense:at what cost?[J].Trends in Plant Science,2013,18(5):250-258.

    [21]

    Essmann J,Schmitz-Thom I,Schon H,et al.RNA Interference-Mediated Repression of Cell Wall Invertase Impairs Defense in Source Leaves of Tobacco[J].Plant Physiology,2008,147(3):1288-1299.

    [22]

    Major I T,Nicole M,Duplessis S,et al.Photosynthetic and respiratory changes in leaves of poplar elicited by rust infection[J].Photosynthesis Research,2010,104(1):41-48.

    [23]

    Moura H F N,Vasconcelos I M,Souza C E A,et al.Proteomics changes during the incompatible interaction between cowpea and Colletotrichum gloeosporioides(Penz.)Penz and Sacc[J].Plant Science,2014,217-218:158-175.

    [24]

    Volpicella M,Leoni C,Fanizza I,et al.Expression and characterization of a new isoform of the 9 k Da allergenic lipid transfer protein from tomato(variety San Marzano)[J].Plant Physiology and Biochemistry,2015,96:64-71.

    [25]

    Ortolani C I M P E.The oral allergy syndrome[J].Annals of Allergy,1988,2(61):47-52.

    [26]

    Pignataro V,Canton C,Spadafora A,et al.Proteome from Lemon Fruit Flavedo Reveals That This Tissue Produces High Amounts of the Cit s1 Germin-like Isoforms[J].Journal of Agricultural and Food Chemistry,2010,58(12):7239-7244.

    [27]

    Bassler O Y,Weiss J,Wienkoop S,et al.Evidence for Novel Tomato Seed Allergens:Ig E-Reactive Legumin and Vicilin Proteins Identified by Multidimensional Protein FractionationMass Spectrometry andin Silico Epitope Modeling[J].Journal of Proteome Research,2009,8(3):1111-1122.

    [28]

    Karin HjernR A B C.Down-regulation of the strawberry Bet v 1-homologousallergen in concert with the flavonoid biosynthesispathway in colorless strawberry mutant[J].Proteomics,2006(6):1574-1587.

    [29]

    Li T,Yun Z,Zhang D,et al.Proteomic analysis of differentially expressed proteins involved in ethylene-induced chilling tolerance in harvested banana fruit[J].Frontiers in Plant Science,2015,6:85-101.

    [30]

    Sevillano L S M T.Physiological,hormonal and molecular mechanisms regulating chilling injury in horticultural species.Postharvest technologies applied to reduce its impact[J].Journal of the Science of Food and Agriculture,2009(89):555-573.

    [31]

    Pulido P S M C,M E A.Functional analysis of the pathways for 2-Cys peroxiredoxin reduction in Arabidopsis thaliana chloroplasts[J].Journal of Experimental Botany,2010(61):4043-4054.

    [32]

    Aghdam M S,Bodbodak S.Physiological and biochemical mechanisms regulating chilling tolerance in fruits and vegetables under postharvest salicylates and jasmonates treatments[J].Scientia Horticulturae,2013,156:73-85.

    [33] 陈瑶.热处理对柑橘果实采后保鲜效果的研究[D].南昌:江西农业大学,2014.
    [34]

    Zhang L,Yu Z,Jiang L,et al.Effect of post-harvest heat treatment on proteome change of peach fruit during ripening[J].Journal of Proteomics,2011,74(7):1135-1149.

    [35]

    Yuan X,Wu Z,Li H,et al.Biochemical and proteomic analysis of‘Kyoho’grape(Vitis labruscana)berries during cold storage[J].Postharvest Biology and Technology,2014,88:79-87.

    [36]

    Page D,Gouble B,Valot B,et al.Protective proteins are differentially expressed in tomato genotypes differing for their tolerance to low-temperature storage[J].Planta,2010,232(2):483-500.

    [37]

    Li L,Luo Z,Huang X,et al.Label-free quantitative proteomics to investigate strawberry fruit proteome changes under controlled atmosphere and low temperature storage[J].Journal of Proteomics,2015,120:44-57.

    [38]

    Pedreschi R,Hertog M,Robben J,et al.Physiological implications of controlled atmosphere storage of‘Conference’pears(Pyrus communis L.):A proteomic approach[J].Postharvest Biology and Technology,2008,50(2-3):110-116.

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  • 收稿日期:  2016-03-07

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