4.7 Article

Comprehensive evaluation of the response to aluminum stress in olive tree (Olea europaea L.)

期刊

FRONTIERS IN PLANT SCIENCE
卷 13, 期 -, 页码 -

出版社

FRONTIERS MEDIA SA
DOI: 10.3389/fpls.2022.968499

关键词

olive (Olea europaea L; ); aluminum tolerance; germplasm evaluation; metabolome; transcriptome

资金

  1. Key Research and Development Program of Zhejiang Province
  2. International Science and Technology Cooperation Program of China
  3. [2021C02002]
  4. [2013DFG32780]

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This study provides a comprehensive evaluation of the response of the olive tree to aluminum stress at the germplasm, metabolome, and transcriptome levels. It identifies different groups of germplasm with diverse responses to aluminum stress and reveals the pathways and related metabolites/genes involved in regulating the response to aluminum stress in olive. This research offers valuable insights for further genetic improvement of aluminum tolerance in the olive tree.
Olive (Olea europaea L.) is an ancient tree species in the Mediterranean, but the lack of knowledge about aluminum-resistant varieties limits its introduction to acidic soil. The objective of this study was to have a comprehensive evaluation of the response to aluminum stress in olive tree at germplasm, metabolome, and transcriptome levels. In this experiment, seedlings of 97 olive germplasm with 1.0-3.0 cm roots and two leaves were treated with 50 mu M Al3+ (pH = 5.0). By factor analysis of the traits of defoliation rate, rooting rate, length of extended root, and length of new root, 97 germplasm were classified into five different groups according to their diverse responses to aluminum stress: 5 highly resistant (5.15%), 30 moderately resistant (30.93%), 31 general (31.96%), 23 moderately sensitive (23.71%), and 8 highly sensitive (8.25%) germplasm. The three most sensitive and three most resistant germplasm were further used for metabolome and transcriptome analysis. Exposed to aluminum stress, 96 differentially accumulated metabolites (DAMs)/4,845 differentially expressed genes (DEGs) and 66 DAMs/2,752 DEGs were identified in highly sensitive and resistant germplasm, respectively. Using multi-omics technology, the pathways and related DAMs/DEGs involved in cell wall/cytoplasm receptors, reactive oxygen species balance, hormone induction, synthesis of organic acids, Al3+ transport, and synthesis of metabolites were identified to mainly regulate the response to aluminum stress in olive. This study provides a theoretical guide and prior germplasm and genes for further genetic improvement of aluminum tolerance in the olive tree.

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