Metabolism of Malus halliana Roots Provides Insights into Iron Deficiency Tolerance Mechanisms

被引:0
|
作者
Chen, You-ting [1 ,2 ]
Zhang, Xia-yi [1 ]
Zhang, De [1 ]
Zhang, Zhong-xing [1 ]
Wang, Yan-xiu [1 ]
机构
[1] Gansu Agr Univ, Coll Hort, Lanzhou 730070, Peoples R China
[2] Jingtai Cty Forestry & Grassland Bur, Affairs Ctr, Baiyin 730900, Peoples R China
来源
PLANTS-BASEL | 2024年 / 13卷 / 17期
关键词
Malus halliana; iron deficiency; physiological; metabolomic; GLUTAMATE-DEHYDROGENASE; RESPONSES; ARABIDOPSIS; STRESS; GROWTH; REUTILIZATION; ACQUISITION; CONTRIBUTE; TRANSPORT; SUCROSE;
D O I
10.3390/plants13172500
中图分类号
Q94 [植物学];
学科分类号
071001 ;
摘要
Iron (Fe) deficiency is one of the most common micronutrient imbalances limiting plant growth globally, especially in arid and saline alkali regions due to the decreased availability of Fe in alkaline soils. Malus halliana grows well in arid regions and is tolerant of Fe deficiency. Here, a physiological and metabolomic approach was used to analyze the short-term molecular response of M. halliana roots to Fe deficiency. On the one hand, physiological data show that the root activity first increased and then decreased with the prolongation of the stress time, but the change trend of root pH was just the opposite. The total Fe content decreased gradually, while the effective Fe decreased at 12 h and increased at 3 d. The activity of iron reductase (FCR) increased with the prolongation of stress. On the other hand, a total of 61, 73, and 45 metabolites were identified by GC-MS in three pairs: R12h (Fe deficiency 12 h) vs. R0h (Fe deficiency 0 h), R3d (Fe deficiency 3 d) vs. R0h, and R3d vs. R12h, respectively. Sucrose, as a source of energy, produces monosaccharides such as glucose by hydrolysis, while glucose accumulates significantly at the first (R12h vs. R0h) and third time points (R3d vs. R0h). Carbohydrates (digalacturonate, L-xylitol, ribitol, D-xylulose, glucose, and glycerol) are degraded into pyruvate through glycolysis and pentose phosphate, which participate in the TCA. Glutathione metabolism and the TCA cycle coordinate with each other, actively respond to Fe deficiency stress, and synthesize secondary metabolites at the same time. This study thoroughly examines the metabolite response to plant iron deficiency, highlighting the crucial roles of sugar metabolism, tricarboxylic acid cycle regulation, and glutathione metabolism in the short-term iron deficiency response of apples. It also lays the groundwork for future research on analyzing iron deficiency tolerance.
引用
收藏
页数:12
相关论文
共 50 条
  • [1] Transcriptome analysis in Malus halliana roots in response to iron deficiency reveals insight into sugar regulation
    Hu, Ya
    Zhu, Yan-fang
    Guo, Ai-xia
    Jia, Xu-mei
    Cheng, Li
    Zhao, Tong
    Wang, Yan-xiu
    MOLECULAR GENETICS AND GENOMICS, 2018, 293 (06) : 1523 - 1534
  • [2] Transcriptome analysis in Malus halliana roots in response to iron deficiency reveals insight into sugar regulation
    Ya Hu
    Yan-fang Zhu
    Ai-xia Guo
    Xu-mei Jia
    Li Cheng
    Tong Zhao
    Yan-xiu Wang
    Molecular Genetics and Genomics, 2018, 293 : 1523 - 1534
  • [3] Metabolic analysis in Malus halliana leaves in response to iron deficiency
    Zhang, Xia-yi
    Jia, Xu-mei
    Zhang, Rui
    Zhu, Zu-lei
    Liu, Bing
    Gao, Li-yang
    Wang, Yan-xiu
    SCIENTIA HORTICULTURAE, 2019, 258
  • [4] Effects of iron deficiency and exogenous sucrose on the intermediates of chlorophyll biosynthesis in Malus halliana
    Guo, Aixia
    Hu, Ya
    Shi, Mingfu
    Wang, Hai
    Wu, Yuxia
    Wang, Yanxiu
    PLOS ONE, 2020, 15 (05):
  • [5] Molecular cloning and functional characterization of MhHEC2-like genes in Malus halliana reveals it enhances Fe (iron) deficiency tolerance
    Zhang, Zhongxing
    Cheng, Jiao
    Wang, Shuangcheng
    Gao, Yanlong
    Xian, Xulin
    Li, Cailong
    Wang, Yanxiu
    FUNCTIONAL & INTEGRATIVE GENOMICS, 2022, 22 (06) : 1283 - 1295
  • [6] Molecular cloning and functional characterization of MhHEC2-like genes in Malus halliana reveals it enhances Fe (iron) deficiency tolerance
    Zhongxing Zhang
    Jiao Cheng
    Shuangcheng Wang
    Yanlong Gao
    Xulin Xian
    Cailong Li
    Functional & Integrative Genomics, 2022, 22 : 1283 - 1295
  • [7] Functional Identification of MhPYL4 Involved in Iron-Deficiency Stress in Malus Halliana Koehne
    Wang, Xiaoya
    Zhang, Zhongxing
    Dong, Yongjuan
    Wang, Yanxiu
    PLANTS-BASEL, 2024, 13 (16):
  • [8] Synchrotron X-ray Fluorescence Microtomography Profiling of Malus xiaojinensis Provides Insights into Mechanisms of Divalent Metals Transport Subjected to Iron Deficiency
    Zhang, Meiling
    Chen, Ming
    Wang, Zhen
    Wu, Ting
    Wang, Yi
    Zhang, Xinzhong
    Han, Zhenhai
    HORTSCIENCE, 2015, 50 (06) : 801 - 805
  • [9] PROTEOMICS APPROACH TO IDENTIFY DIFFERENTIALLY EXPRESSED PROTEINS INDUCED BY IRON DEFICIENCY IN ROOTS OF MALUS
    Wang, Jing-Ying
    Ruan, Song-Lin
    Wu, Wei-Hua
    Xu, Xue-Feng
    Wang, Yi
    Han, Zhen-Hai
    PAKISTAN JOURNAL OF BOTANY, 2010, 42 (05) : 3055 - 3064
  • [10] Identification of MhLHC gene family under iron (Fe) deficiency stress and functional characterization of MhLHCB15 gene in Malus halliana
    Dong, Yongjuan
    Zhang, Zhongxing
    Cheng, Jiao
    Wang, Xiaoya
    Zhao, Wenbin
    Zhang, Donghai
    Wang, Yanxiu
    FRUIT RESEARCH, 2025, 5