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Ionomic and metabolomic analyses reveal the resistance response mechanism to saline-alkali stress in Malus halliana seedlings.
Jia, Xumei; Zhu, Yanfang; Zhang, Rui; Zhu, Zulei; Zhao, Tong; Cheng, Li; Gao, Liyang; Liu, Bing; Zhang, Xiayi; Wang, Yanxiu.
Affiliation
  • Jia X; College of Horticulture, Gansu Agricultural University, 730070, Lanzhou, China.
  • Zhu Y; Gansu Academy of Agricultural Sciences, 730070, Lanzhou, China.
  • Zhang R; College of Horticulture, Gansu Agricultural University, 730070, Lanzhou, China.
  • Zhu Z; College of Horticulture, Gansu Agricultural University, 730070, Lanzhou, China.
  • Zhao T; College of Horticulture, Gansu Agricultural University, 730070, Lanzhou, China.
  • Cheng L; College of Horticulture, Gansu Agricultural University, 730070, Lanzhou, China.
  • Gao L; College of Horticulture, Gansu Agricultural University, 730070, Lanzhou, China.
  • Liu B; College of Horticulture, Gansu Agricultural University, 730070, Lanzhou, China.
  • Zhang X; College of Horticulture, Gansu Agricultural University, 730070, Lanzhou, China.
  • Wang Y; College of Horticulture, Gansu Agricultural University, 730070, Lanzhou, China. Electronic address: wangxy@gsau.edu.cn.
Plant Physiol Biochem ; 147: 77-90, 2020 Feb.
Article in En | MEDLINE | ID: mdl-31846851
ABSTRACT
Saline-alkali stress is a major abiotic stress limiting plant growth. The selection of saline-alkali-tolerant rootstock is an effective strategy to reduce salinization-alkalization influence in apple production. M. halliana is a highly saline-alkali-resistant apple rootstock in northwestern China. However, few metabolic response studies have been conducted on this species. In plants under saline-alkali stress, the uptake of K, Mg and Zn in M. halliana leaves were inhibited, whereas the absorption of Fe2+, Cu2+ or Mn2+ were increased. Metabolic analysis revealed 140 differentially expressed metabolites, which were mainly involved in alkaloid biosynthesis, phenylalanine biosynthesis, ATP-binding cassette (ABC) transporters, and mineral absorption. Especially, the expression of sucrose, amino acids, alkaloids, flavonoids and carotenoids were significantly upregulated under saline-alkali stress. qRT-PCR analysis demonstrated that NHX8 and ZTP1 involved in Na+ and Fe2+ transport were upregulated, while AKT1, MRS2-4 and ZTP29 involved in K+, Mg2+ and Zn2+ transport were downregulated, respectively. ANT, ATP2A, CALM and SOS2 are involved in Ca2+ signal transduction, and ABCB1, ABCC10 and NatA are key transporters that maintain ionic homeostasis. M. halliana regulates Na+/K+ homeostasis by mediating Ca2+ signalling and ABC transporters. The accumulation of metabolites contributes to improving the saline-alkali resistance of M. halliana because of the scavenging of ROS. An increase in pheophorbide a content in porphyrin and chlorophyll metabolism leads to leaf senescence in M. halliana leaves, which contributes to a reduction in stress-induced injury. These findings provide important insights into the saline-alkali tolerance mechanism in apple, which also provides an important starting point for future research.
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Full text: 1 Collection: 01-internacional Database: MEDLINE Main subject: Malus / Seedlings / Alkalies / Metabolome / Salt Tolerance Country/Region as subject: Asia Language: En Journal: Plant Physiol Biochem Journal subject: BIOQUIMICA / BOTANICA Year: 2020 Type: Article Affiliation country: China

Full text: 1 Collection: 01-internacional Database: MEDLINE Main subject: Malus / Seedlings / Alkalies / Metabolome / Salt Tolerance Country/Region as subject: Asia Language: En Journal: Plant Physiol Biochem Journal subject: BIOQUIMICA / BOTANICA Year: 2020 Type: Article Affiliation country: China