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The regulatory mechanism of chilling-induced dormancy transition from endo-dormancy to non-dormancy in Polygonatum kingianum Coll.et Hemsl rhizome bud.
- Source :
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Plant molecular biology [Plant Mol Biol] 2019 Feb; Vol. 99 (3), pp. 205-217. Date of Electronic Publication: 2019 Jan 09. - Publication Year :
- 2019
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Abstract
- Key Message: We identified three dormant stages of Polygonatum kingianum and changes that occurred during dormancy transition in the following aspects including cell wall and hormones, as well as interaction among them. Polygonatum kingianum Coll.et Hemsl (P. kingianum) is an important traditional Chinese medicine, but the mechanism of its rhizome bud dormancy has not yet been studied systematically. In this study, three dormancy phases were induced under controlled conditions, and changes occurring during the transition were examined, focusing on phytohormones and the cell wall. As revealed by HPLC-MS (High Performance Liquid Chromatography-Mass Spectrometry) analysis, the endo- to non-dormancy transition was association with a reduced abscisic acid (ABA)/gibberellin (GA <subscript>3</subscript> ) ratio, a decreased level of auxin (IAA) and an increased level of trans-zeatin (tZR). Transmission electron microscopy showed that plasmodesmata (PDs) and the cell wall of the bud underwent significant changes between endo- and eco-dormancy. A total of 95,462 differentially expressed genes (DEGs) were identified based on transcriptomics, and clustering and principal component analysis confirmed the different physiological statuses of the three types of bud samples. Changes in the abundance of transcripts associated with IAA, cytokinins (CTKs), GA, ABA, brassinolide (BR), jasmonic acid (JA), ethylene, salicylic acid (SA), PDs and cell wall-loosening factors were analysed during the bud dormancy transition in P. kingianum. Furthermore, nitrilase 4 (NIT4) and tryptophan synthase alpha chain (TSA1), which are related to IAA synthesis, were identified as hub genes of the co-expression network, and strong interactions between hormones and cell wall-related factors were observed. This research will provide a good model for chilling-treated rhizome bud dormancy in P. kingianum and cultivation of this plant.
- Subjects :
- Abscisic Acid genetics
Abscisic Acid metabolism
Brassinosteroids metabolism
Cell Wall metabolism
Cell Wall ultrastructure
Cluster Analysis
Cyclopentanes metabolism
Cytokinins metabolism
Ethylenes metabolism
Gene Expression Profiling
Gibberellins genetics
Gibberellins metabolism
Medicine, Chinese Traditional
Oxylipins metabolism
Plant Dormancy physiology
Plant Growth Regulators metabolism
Plant Proteins genetics
Plant Proteins metabolism
Polygonatum metabolism
Rhizome metabolism
Salicylic Acid metabolism
Signal Transduction genetics
Signal Transduction physiology
Steroids, Heterocyclic metabolism
Tryptophan Synthase metabolism
Cell Wall genetics
Gene Expression Regulation, Plant
Gene Regulatory Networks
Indoleacetic Acids metabolism
Plant Dormancy genetics
Plant Growth Regulators genetics
Polygonatum genetics
Rhizome genetics
Subjects
Details
- Language :
- English
- ISSN :
- 1573-5028
- Volume :
- 99
- Issue :
- 3
- Database :
- MEDLINE
- Journal :
- Plant molecular biology
- Publication Type :
- Academic Journal
- Accession number :
- 30627860
- Full Text :
- https://doi.org/10.1007/s11103-018-0812-z