数字农科院2.0

Galactinol synthase gene 5 (MdGolS5) enhances the cold resistance of apples by promoting raffinose family oligosaccharide accumulation

文献类型: 外文期刊

作者: Gongxun Xu;Meiqi He;Shuai Yan;Deguo Lyu;Cungang Cheng;Deying Zhao;Sijun Qin

作者机构:

关键词: Apple;Cold adaptation;Galactinol;Low-temperature stress;Raffinose family oligosaccharides

期刊名称: Plant Physiology and Biochemistry

ISSN: 0981-9428

年卷期: 2025 年 220 卷

页码:

收录情况: SCIE(2025版)

摘要: Low-temperature stress is a limiting factor affecting the safe overwintering and stable production of apples. Galactinol, produced by galactinol synthase (GolS), is an important plant cryoprotectant. This study showed for the first time that exogenous spraying of apple saplings with 100 mg mL−1 galactinol could effectively alleviate the damage from low-temperature stress. Further, we found that transgenic apple callus and tobacco overexpressing MdGolS5 showed strong cold tolerance. Specifically, the activities of antioxidant enzymes such as superoxide dismutase and GolS in transgenic tobacco overexpressing MdGolS5 increased under low-temperature treatment at −2 °C, and the contents of malondialdehyde, superoxide anion, and hydrogen peroxide were significantly lower than those of wild type tobacco. Moreover, large amounts of proline, galactinol, and raffinose were accumulated. In addition, the expression levels of cold-responsive genes MdCBF1, MdCBF2, MdCBF3, and MdCOR47 were significantly up-regulated in transgenic tobacco, further confirming the important role of MdGolS5 in regulating plant cold adaptation. In summary, this study not only revealed the direct effect of exogenous galactinol on the low-temperature protection of apple saplings for the first time, but also explored a new mechanism of raffinose family oligosaccharides anabolism in plant low-temperature adaptation through overexpression of MdGolS5. These results provide a theoretical basis for the genetic improvement of apple cold resistance.

分类号:

  • 相关文献

[1]啤酒花病毒病概述. 王引权,古勤生,曹孜义. 2003

[2]Expression and characterization of a novel cold-adapted chitosanase from marine renibacterium sp. Suitable for chitooligosaccharides preparation. Lin Lin Zhang,Xiao Hua Jiang,Xin Feng Xiao,Wen Xiu Zhang,Yi Qian Shi,Zhi Peng Wang,Hai Xiang Zhou. 2021

[3]Characterization of a novel cold-adapted GH1 β-glucosidase from Psychrobacillus glaciei and its application in the hydrolysis of soybean isoflavone glycosides. Jinjian He,Jiajing Duan,Pinglian Yu,Yuying Li,Mansheng Wang,Xiu Zhang,Zishu Chen,Pengjun Shi. 2024

[4]Co-domestication of cold tolerance and female flower is determined by CsEIN2 in cucumber. Li, Caixia,Dong, Shaoyun,Liu, Xiaoping,Guan, Jiantao,Beckles, Diane M.,Gu, Xingfang,Sun, Jiaqiang,Miao, Han,Zhang, Shengping. 2025

[5]An iNTT system for the large-scale screening of differentially expressed, nuclear-targeted proteins: cold-treatment-induced nucleoproteins in Rye (Secale cereale L.). 曹新有,陈明,马有志. 2016

[6]Effects of the Chloroplast Fructose-1,6-Bisphosphate Aldolase Gene on Growth and Low-Temperature Tolerance of Tomato. Bingbing Cai,Yu Ning,Qiang Li,Qingyun Li,Xizhen Ai. 2022

[7]Identification Of Main-Effect Quantitative Trait Loci (Qtls) For Low-Temperature Stress Tolerance Germination- And Early Seedling Vigor-Related Traits In Rice (Oryza Sativa L.). Najeeb, S, Ali, J, Mahender, A, Pang, YL, Zilhas, J, Murugaiyan, V, Vemireddy, LR, Li, Z. 2020

[8]Factors Underlying the Prevalence of Pythium Infection of Corn Seeds Following Seed Treatment Application of Tebuconazole. Xiujun Tang,Shuning Chen,Xiaojing Yan,Zhenying Wang,Huizhu Yuan,Daibin Yang. 2022

[9]Overexpression of the TaEXPA19 gene improves low-temperature tolerance in winter wheat (Triticum aestivum). Li, Fei,Hu, Baozhong,Peng, Lina,Feng, Xu,Miao, Yu,Dong, Jiamin,Wang, Mingjing,Wang, Xu,Li, Fenglan,Xu, Yongqing. 2023

[10]Exogenous melatonin enhances low-temperature stress of jute seedlings through modulation of photosynthesis and antioxidant potential. Susmita Dey,Ashok Biswas,Yong Deng,Ziggiju Mesenbet Birhanie,Chen Wentao,Defang Li. 2023

[11]Effects of Low-Temperature Stress on Cold Resistance Biochemical Characteristics of Dali and Siqiu Tea Seedlings. Ming Chen,Xizhe Zhu,Mengyue Hou,Wen Luo,Yongwen Jiang,Yaya Yu,Jinjin Wang,Haibo Yuan,Xiaoxia Huang,Jinjie Hua. 2024

[12]Effect of cold stress on photosynthetic physiological characteristics and molecular mechanism analysis in cold-resistant cotton (ZM36) seedlings. Youzhong Li,Jincheng Zhu,Jianwei Xu,Xianliang Zhang,Zongming Xie,Zhibo Li. 2024

[13]Genome-Wide Identification and Expression Divergence of CBF Family in Actinidia arguta and Functional Analysis of AaCBF4 Under Cold Stress. Sumei Li,Qina Zhang,Zhenzhen Zhang,Peng Zhang,Congcong Li,Leiming Sun,Jinbao Fang,Ran Wang,Feng Wei,Yukuo Li,Miaomiao Lin,Xiujuan Qi. 2025

[14]Endophytic fungus Stagonosporopsis ajaci NEAU-BLH1 from Adonis amurensis enhances seed germination under low-temperature stress and increases grain yield in direct-seeded rice. Hui Bing,Jinzhao Gu,Banghua Xia,Xinyu Kong,Yanfang Luo,Xiangjing Wang,Chongxi Liu,Junwei Zhao,Wensheng Xiang. 2025

[15]A Cold-Induced LEA3 Protein, DohD, Confers Cryoprotective Protection Against Low-Temperature Stress in Deinococcus radiodurans. Wang, Wenxiu,Qi, Zhi,Yan, Chunxia,Zhou, Zhengfu,Wang, Jin. 2025

[16]Mechanism of Exogenous Dopamine Regulating Shine Muscat Grape in Response to Low-Temperature Stress. Jiaxin Li,Qiujie Wu,Jiahui Cheng,Jingxuan Zhu,Peisen Su,Jiayuan Wu,Xiucai Fan,Guirong Li. 2025

[17]Effect of nitrogen fertilizer regulation on rice panicle morphology, yield and economic benefits under low-temperature stress. Xiaojing Du,Yanhong Zhang,Tianyu Hou,Zhiqiang Zhao,Dong Li,Mintai Kang,Xiaorong Wen,Fusen Tang,Buhaliqem Abliz,Yuhong Qi,Quan Yuan,Jie Yuan,Fengbin Wang. 2025

[18]Functional Identification Of Apple Mdglk1 W.hich Regulates Chlorophyll Biosynthesis I n Arabidopsis. An, Xiu:Hong,Tian, Yi,Li, Min,Chen, Yan:Hui,Cheng, Cun:Gang,Li, En:Mao. 2019

[19]Genetic diversity of Malus cultivars and wild relatives in the Chinese National Repository of Apple Germplasm Resources. Gao, Yuan,Liu, Fengzhi,Wang, Kun,Wang, Dajiang,Gong, Xin,Liu, Lijun,Richards, Christopher M.,Henk, Adam D.,Volk, Gayle M.. 2015

[20]The apple WD40 protein MdTTG1 interacts with bHLH but not MYB proteins to regulate anthocyanin accumulation. An, Xiu-Hong,Tian, Yi,Chen, Ke-Qin,Wang, Xiao-Fei,Hao, Yu-Jin,An, Xiu-Hong,Tian, Yi,Chen, Ke-Qin,Wang, Xiao-Fei,Hao, Yu-Jin,An, Xiu-Hong,Tian, Yi,Chen, Ke-Qin,Wang, Xiao-Fei,Hao, Yu-Jin,Tian, Yi. 2012

作者其他论文 更多>>