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Discovery of gene regulation mechanisms associated with uniconazole-induced cold tolerance in banana using integrated transcriptome and metabolome analysis.
Qin, Liuyan; Tian, Dandan; Guo, Chenglin; Wei, Liping; He, Zhangfei; Zhou, Wei; Huang, Quyan; Li, Baoshen; Li, Chaosheng; Jiang, Mengyun.
Afiliação
  • Qin L; Biotechnology Research Institute, Guangxi Academy of Agricultural Sciences, Nanning, 530007, China.
  • Tian D; Biotechnology Research Institute, Guangxi Academy of Agricultural Sciences, Nanning, 530007, China.
  • Guo C; Institute of Plant Protection, Guangxi Academy of Agricultural Sciences, Nanning, 530007, China. guochenglin0278@126.com.
  • Wei L; Biotechnology Research Institute, Guangxi Academy of Agricultural Sciences, Nanning, 530007, China.
  • He Z; Biotechnology Research Institute, Guangxi Academy of Agricultural Sciences, Nanning, 530007, China.
  • Zhou W; Biotechnology Research Institute, Guangxi Academy of Agricultural Sciences, Nanning, 530007, China.
  • Huang Q; Biotechnology Research Institute, Guangxi Academy of Agricultural Sciences, Nanning, 530007, China.
  • Li B; Biotechnology Research Institute, Guangxi Academy of Agricultural Sciences, Nanning, 530007, China.
  • Li C; Biotechnology Research Institute, Guangxi Academy of Agricultural Sciences, Nanning, 530007, China.
  • Jiang M; Biotechnology Research Institute, Guangxi Academy of Agricultural Sciences, Nanning, 530007, China.
BMC Plant Biol ; 24(1): 342, 2024 Apr 26.
Article em En | MEDLINE | ID: mdl-38671368
ABSTRACT

BACKGROUND:

The gibberellic acid (GA) inhibitor, uniconazole, is a plant growth regulator commonly used in banana cultivation to promote dwarfing but also enhances the cold resistance in plants. However, the mechanism of this induced cold resistance remains unclear.

RESULTS:

We confirmed that uniconazole induced cold tolerance in bananas and that the activities of Superoxide dismutase and Peroxidase were increased in the uniconazole-treated bananas under cold stress when compared with the control groups. The transcriptome and metabolome of bananas treated with or without uniconazole were analyzed at different time points under cold stress. Compared to the control group, differentially expressed genes (DEGs) between adjacent time points in each uniconazole-treated group were enriched in plant-pathogen interactions, MAPK signaling pathway, and plant hormone signal transduction, which were closely related to stimulus-functional responses. Furthermore, the differentially abundant metabolites (DAMs) between adjacent time points were enriched in flavone and flavonol biosynthesis and linoleic acid metabolism pathways in the uniconazole-treated group than those in the control group. Temporal analysis of DEGs and DAMs in uniconazole-treated and control groups during cold stress showed that the different expression patterns in the two groups were enriched in the linoleic acid metabolism pathway. In addition to strengthening the antioxidant system and complex hormonal changes caused by GA inhibition, an enhanced linoleic acid metabolism can protect cell membrane stability, which may also be an important part of the cold resistance mechanism of uniconazole treatment in banana plants.

CONCLUSIONS:

This study provides information for understanding the mechanisms underlying inducible cold resistance in banana, which will benefit the production of this economically important crop.
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Texto completo: 1 Base de dados: MEDLINE Assunto principal: Triazóis / Regulação da Expressão Gênica de Plantas / Musa / Metaboloma / Transcriptoma Idioma: En Ano de publicação: 2024 Tipo de documento: Article

Texto completo: 1 Base de dados: MEDLINE Assunto principal: Triazóis / Regulação da Expressão Gênica de Plantas / Musa / Metaboloma / Transcriptoma Idioma: En Ano de publicação: 2024 Tipo de documento: Article