Transcriptomic analysis reveals ozone treatment delays kiwifruit postharvest softening by modulating cell wall metabolism

被引:5
|
作者
Wang, Yan [1 ]
Niu, Yaoxing [1 ]
Ye, Lixia [1 ]
Shi, Yubing [1 ]
Luo, Anwei [1 ,2 ]
机构
[1] Northwest A&F Univ, Coll Food Sci & Engn, Xianyang, Shaanxi, Peoples R China
[2] Northwest A&F Univ, Coll Food Sci & Engn, Yangling 712100, Shaanxi, Peoples R China
关键词
cell wall; kiwifruit; ozone; transcriptome; ultrastructure; PECTIN METHYLESTERASE; QUALITY; FRUIT; POLYSACCHARIDES; POLYGALACTURONASE; BIOSYNTHESIS; STORAGE; IMPACT; GENES; WATER;
D O I
10.1111/1750-3841.16979
中图分类号
TS2 [食品工业];
学科分类号
0832 ;
摘要
Kiwifruit ripening and senescence after harvesting are closely related to its economic value. Transcriptome analysis and biochemical parameters were used to investigate the differences in gene expression levels and the potential regulation of cell wall metabolism in kiwifruit treated with ozone, thereby regulating fruit softening and prolonging postharvest life. Compared to the control group, the activities of the cell wall modification enzyme were lower under ozone treatment, the content of polysaccharide in the cell wall of primary pectin and cellulose was higher, and the content of soluble pectin was lower. Meanwhile, ozone treatment delayed the degradation of the cell wall mesosphere during storage. A total of 20 pectinesterase (PE)-related genes were identified by sequencing analysis. The data analysis and quantitative polymerase chain reaction results confirmed that cell wall modifying enzyme genes played an important role in softening and senescence after harvesting, which may reduce or induce the expression of certain genes affecting cell wall metabolism. Ozone treatment not only regulates active genes such as xyloglucan endo glycosyltransferase/hydrolase, cellulose synthase, polygalacturonase, and PE to maintain the quality of fruit after harvest but also acts synergically with cell wall modifying enzymes to inhibit the degradation of cell wall, resulting in changes in the ultrastructure of cell wall, thereby reducing the hardness of kiwifruit. In addition, according to the results of cis-acting elements, cell wall degradation is also related to downstream hormone signaling, especially PE-related genes. These results provide a theoretical basis for studying the mechanism of firmness and cell wall metabolism difference of kiwifruit and also lay a good foundation for further research.
引用
收藏
页码:2001 / 2016
页数:16
相关论文
共 50 条
  • [31] Phosphoproteomic and transcriptomic analysis of cell wall stress response in Aspergillus nidulans reveals novel cell wall integrity signaling proteins
    Chelius, Cynthia
    Boppidi, Karthik
    Lincoln, Stephen
    Kumar, Jyothi
    Reese, Samantha
    Hossain, Simin
    Thomas, Donnel
    Lawson, Kelsi
    Ramsey, Jessica
    Ramsey, Alexis
    Srivastava, Ranjan
    Harris, Steven
    Marten, Mark
    ABSTRACTS OF PAPERS OF THE AMERICAN CHEMICAL SOCIETY, 2018, 255
  • [32] Alternating temperature in postharvest cooling treatment of 'Fiano' and 'Falanghina' grapes affects cell wall enzyme rate, berry softening and polyphenols
    Coletta, Cosimo
    Botondi, Rinaldo
    Forniti, Roberto
    Baccelloni, Simone
    Bellincontro, Andrea
    Mencarelli, Fabio
    JOURNAL OF THE SCIENCE OF FOOD AND AGRICULTURE, 2019, 99 (06) : 3142 - 3148
  • [33] Abscisic acid treatment prolongs the postharvest life of strawberry fruit by regulating sucrose and cell wall metabolism
    Zhao, Yaoyao
    Brummell, David A.
    Lin, Qiong
    Duan, Yuquan
    FOOD BIOSCIENCE, 2024, 59
  • [34] Comparative transcriptomic analysis reveals the reactive oxygen species metabolism involving in melatonin-alleviated chilling injury in postharvest banana fruit
    Wu, Yanting
    Bai, Lijuan
    Dai, Xiaoze
    Ba, Liangjie
    Wan, Jiahui
    Liang, Weiqi
    Lin, Hetong
    Fan, Zhongqi
    PLANT PHYSIOLOGY AND BIOCHEMISTRY, 2025, 222
  • [35] Preharvest Application of Chitosan Improves the Postharvest Life of 'Garmrok' Kiwifruit through the Modulation of Genes Related to Ethylene Biosynthesis, Cell Wall Modification and Lignin Metabolism
    Kumarihami, H. M. Prathibhani C.
    Kim, Jin Gook
    Kim, Yun-Hee
    Lee, Mockhee
    Lee, Young-Suk
    Kwack, Yong-Bum
    Kim, Joonyup
    FOODS, 2021, 10 (02) : 1 - 17
  • [36] Expression analysis of candidate cell wall-related genes associated with changes in pectin biochemistry during postharvest apple softening
    Gwanpua, Sunny George
    Mellidou, Ifigeneia
    Boeckx, Jelena
    Kyomugasho, Clare
    Bessemans, Niels
    Verlinden, Bert E.
    Hertog, Maarten L. A. T. M.
    Hendrickx, Marc
    Nicolai, Bart M.
    Geeraerd, Annemie H.
    POSTHARVEST BIOLOGY AND TECHNOLOGY, 2016, 112 : 176 - 185
  • [37] Acidic electrolyzed water treatment retards softening and retains cell wall polysaccharides in pulp of postharvest fresh longans and its possible mechanism
    Sun, Junzheng
    Chen, Hongbin
    Xie, Huilin
    Li, Meiling
    Chen, Yihui
    Hung, Yen-Con
    Lin, Hetong
    FOOD CHEMISTRY-X, 2022, 13
  • [38] Effects of hydrogen peroxide treatment on pulp breakdown, softening, and cell wall polysaccharide metabolism in fresh longan fruit
    Lin, Yixiong
    Lin, Hetong
    Wang, Hui
    Lin, Mengshi
    Chen, Yihui
    Fan, Zhongqi
    Hung, Yen-Con
    Lin, Yifen
    CARBOHYDRATE POLYMERS, 2020, 242
  • [39] Transcriptome analysis reveals key metabolic pathways and gene expression involving in cell wall polysaccharides-disassembling and postharvest fruit softening in custard apple (Annona squamosa L.)
    Wang, Siqiang
    Liu, Chunyu
    Su, Xueru
    Chen, Lisha
    Zhu, Zhenyuan
    INTERNATIONAL JOURNAL OF BIOLOGICAL MACROMOLECULES, 2023, 240
  • [40] Transcriptome analysis revealed the effects of preharvest carvacrol spraying on postharvest antioxidant activity and cell wall metabolism in peppers
    Wang, Xiaogang
    Chen, Jianye
    Cao, Sen
    Luo, Donglan
    Ba, Liangjie
    FOOD BIOSCIENCE, 2025, 67