CHANG Lulu, ZHANG Lele, YU Youwei, et al. Effect of Arginine Treatment on Disease Resistance to Alternaria Rot of Postharvest Winter Jujubeest Winter Jujube[J]. Science and Technology of Food Industry, 2021, 42(12): 321−326. (in Chinese with English abstract). doi: 10.13386/ j.issn1002-0306.2020120055.
Citation: CHANG Lulu, ZHANG Lele, YU Youwei, et al. Effect of Arginine Treatment on Disease Resistance to Alternaria Rot of Postharvest Winter Jujubeest Winter Jujube[J]. Science and Technology of Food Industry, 2021, 42(12): 321−326. (in Chinese with English abstract). doi: 10.13386/ j.issn1002-0306.2020120055.

Effect of Arginine Treatment on Disease Resistance to Alternaria Rot of Postharvest Winter Jujube

More Information
  • Received Date: December 06, 2020
  • Available Online: April 12, 2021
  • In order to study the effect of arginine (Arg) treatment on disease resistance of postharvest winter jujube fruit, the fruits were soaked in Arg solutions at different concentrations (0, 20, 200, 1000 μmol/L), then Alternariaalternata challenge inoculation was performed on the treated jujube fruits, and later the lesion diameter, the activities of resistance-related enzymes and the contents of flavones, polyphenols and lignin were determined. The results showed that Arg treatment significantly slowed down the expansion of the lesion diameter in the jujube fruitsinoculated with A.alternata. Further studies showed that Arg treatment induced the increase of the activities of phenylalamine ammonialyase (PAL), peroxidase (POD), β-1,3-glucanase (GLU) and chitinase (CHI), among which Arg treatment at 200 μmol/L was the most active concentration. At the same time, Arg treatment increased the contents of flavones, polyphenols and lignin in winter jujube, and the contents of flavones, polyphenols and lignin in the fruits treated by 200 μmol/L Arg were the highest. Therefore, Arg treatment enhanced the disease resistance of postharvest winter jujube fruits by increasing the activities of disease-resistant enzymes (PAL, POD, GLU, CHI) and the contents of flavones, polyphenols and lignin,and it can be a promising alternative that will be used in the preservation of postharvest winter jujube.
  • [1]
    Liu Y, Su Y, Sun S G. Human tau may modify glucocorticoids-mediated regulation of cAMP-dependent kinase and phosphorylated cAMP response element binding protein[J]. Neurochemical research,2012(7):935−947.
    [2]
    沈雅珉, 何三宁. 鲜枣采后贮藏保鲜技术研究进展[J]. 保鲜与加工,2016,16(5):134−138.
    [3]
    张耀君, 何宇. 冬枣保鲜技术研究进展[J]. 陕西农业科学,2018,64(1):93−97. doi: 10.3969/j.issn.0488-5368.2018.01.029
    [4]
    鲁奇林, 赵宏侠, 冯叙桥, 等. 气调包装贮藏对鲜枣采后贮藏生理和效果的影响[J]. 食品与发酵工业,2014,40(5):216−221.
    [5]
    郝晓玲, 王如福. 减压贮藏对鲜枣保鲜效果的影响[J]. 粮油加工,2004(6):70−72.
    [6]
    王大伟, 向延菊. 采后钙处理对新疆和田地区冬枣贮藏特性的影响[J]. 食品工业,2016(8):92−95.
    [7]
    Liang G B, Wang H, Zhang Y H, et al. Improving preservation effects of Taiwan jujube fruits by using chitosan coating combined with ascorbic acid during postharvest period[J]. Transactions of the chinese society of agricultural engineering,2017,33(17):304−312.
    [8]
    朱晶, 李星辰, 郭嘉川, 等. 金针菇酶解肽对冬枣保鲜效果的研究[J]. 陕西农业科学,2013,59(4):6−8. doi: 10.3969/j.issn.0488-5368.2013.04.002
    [9]
    张瑾, 王文婷, 王国霞. 银杏外种皮及银杏叶提取液对冬枣保鲜的影响研究[J]. 宁夏农林科技,2018,59(7):55−57. doi: 10.3969/j.issn.1002-204x.2018.07.022
    [10]
    肖黎斌, 韩军岐, 张润光, 等. 鲜枣采后生理、贮期病害及保鲜技术研究进展[J]. 陕西农业科学,2016,62(4):87−91. doi: 10.3969/j.issn.0488-5368.2016.04.028
    [11]
    Zhang X H, Shen L, Li F J, et al. Up-regulating arginase contributes to amelioration of chilling stress and the antioxidant system in cherry tomato fruits[J]. Journal of the Science of Food and Agriculture,2010,90(13):2195−2202. doi: 10.1002/jsfa.4070
    [12]
    邓显容. 精氨酸对鹤望兰切花的保鲜效应[J]. 现代园艺,2012(17):3−4. doi: 10.3969/j.issn.1006-4958.2012.17.001
    [13]
    曾长立. Al3+和精氨酸配合使用对月季切花保鲜效果的影响[J]. 北方园艺,2008(12):113−116.
    [14]
    万茜, 曾长立, 王倩, 等. 精氨酸对百合鲜切花的保鲜效应[J]. 江汉大学学报(自然科学版),2007(3):69−72.
    [15]
    Zheng Y, Sheng J, Zhao R, et al. Preharvest L-Arginine treatment induced postharvest disease resistance to Botrysiscinerea in tomato fruits[J]. Journal of agricultural and food chemistry,2011,59(12):6543−6549. doi: 10.1021/jf2000053
    [16]
    Li BB, Ding Y, Tang X L, et al. Effect of L-Arginine on maintaining storage quality of the white button mushroom (Agaricus bisporus)[J]. Food and bioprocess technology,2019,12(3):563−574.
    [17]
    J R McKnight, M C Satterfifield, W S Jobgen, et al. Beneficial effects of L-arginine on reducing obesity: Potential mechanisms and important implications for human health[J]. Amino acids,2010,39(2):349−357. doi: 10.1007/s00726-010-0598-z
    [18]
    S M Morris. Arginine metabolism: Boundaries of our knowledge[J]. The Journal of nutrition,2007,137(2):1602−1609.
    [19]
    曹建康, 姜微波, 赵玉梅. 果蔬采后生理生化实验指导[M]. 北京: 中国轻工业出版社, 2007: 101−105, 142−150.
    [20]
    武继芸. 不同涂膜处理对冬枣贮藏品质和抗氧化活性的影响[D]. 天津: 天津大学, 2016.
    [21]
    Fan P, D J Huber, Su Z, et al. Effect of postharvest spray of apple polyphenols on the quality of fresh-cut red pitaya fruit during shelf life[J]. Food chemistry,2018,243:19−25. doi: 10.1016/j.foodchem.2017.09.103
    [22]
    常晨, 程继亮, 强胜, 等. 加拿大一枝黄花茎秆木质素含量和木质素化程度的测定方法[J]. 植物生理学报,2018,54(5):917−924.
    [23]
    杨洪强, 高华君. 植物精氨酸及其代谢产物的生理功能[J]. 植物生理与分子生物学学报,2007,33(1):1−8.
    [24]
    季娜娜, 闵德栋, 李富军, 等. 一氧化氮合酶途径在精氨酸诱导番茄果实采后抗病性中的作用[J]. 食品科学,2018,39(1):250−257. doi: 10.7506/spkx1002-6630-201801038
    [25]
    S Toscano, A Ferrante, C Leonardi, et al. PAL activities in asparagus spears during storage after ammonium sulfate treatments[J]. Postharvest biology and technology,2018,140:34−41. doi: 10.1016/j.postharvbio.2018.02.010
    [26]
    Wang Y F, Yu T, Li Y C, et al. Postharvest biocontrol of Alternaria alternata in Chinese winter jujube by Rhodosporidium paludigenum[J]. Journal of applied microbiology,2010,107(5):1492−1498 (in Chinese).
    [27]
    Liang G B, Wang H, Zhang Y H, et al. Improving preservation effects of Taiwan jujube fruits by usingchitosan coating combined with ascorbic acid during postharvest period[J]. Journal of agricultural engineering,2017,17(33):304−312.
    [28]
    Ji C, Ku’c J. Antifungal activity of cucumber β-1, 3-glucanase and chitinase[J]. Physiological and molecular plant pathology,1996,49(4):257−265. doi: 10.1006/pmpp.1996.0053
    [29]
    Bai Y J, Zhang P L, HangW, et al. Analysis of expression profiles of chitinase and β-1, 3-glucanase genes in muskmelon fruit tissue inoculated with Alternaria alternata[J]. Food science,2018(2):185−191.
    [30]
    Zhang Q T, Zhang L L, Geng B, et al. Interactive effects of abscisic acid and nitric oxide on chilling resistance and active oxygen metabolism in peach fruit during cold storage[J]. Journal of the Science of Food and Agriculture,2019,99(7):3367−3380. doi: 10.1002/jsfa.9554
    [31]
    Liu Q Q, Luo L, Zheng L Q. Lignins: Biosynthesis and biological functions in plants[J]. International journal of molecular science,2018,19(2):335. doi: 10.3390/ijms19020335
  • Cited by

    Periodical cited type(1)

    1. 刘曼丽,钟金锋,刘雄,覃小丽. 牛血清白蛋白与辛烯基琥珀酸淀粉酯糖基化产物改善谷维素的理化性质和生物可及度. 食品与发酵工业. 2022(24): 166-171 .

    Other cited types(3)

Catalog

    Article Metrics

    Article views PDF downloads Cited by(4)

    /

    DownLoad:  Full-Size Img  PowerPoint
    Return
    Return