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Author Wang Y., Wang Y., Yang R., Wang F., Fu J., Yang W., Bai T., Wang S., Yin H.
Title Effects of gibberellin priming on seedling emergence and transcripts involved in mesocotyl elongation in rice under deep direct-seeding conditions.
Abstract:
Mesocotyl elongation is a key trait influencing seedling emergence and establishment in direct-seeding rice cultivation. The phytohormone gibberellin (GA) has positive effects on mesocotyl elongation in rice. However, the physiological and molecular basis underlying the regulation of mesocotyl elongation mediated by GA priming under deep-sowing conditions remains largely unclear. In the present study, we performed a physiological and comprehensive transcriptomic analysis of the function of GA priming in mesocotyl elongation and seedling emergence using a direct-seeding <i>japonica</i> rice cultivar ZH10 at a 5-cm sowing depth. Physiological experiments indicated that GA priming significantly improved rice seedling emergence by increasing the activity of starch-metabolizing enzymes and compatible solute content to supply the energy essential for subsequent development. Transcriptomic analysis revealed 7074 differentially expressed genes (false discovery rate of <0.05, |log2(fold change)| of ≥1) after GA priming. Furthermore, gene ontology (GO) and Kyoto encyclopedia of genes and genomes (KEGG) enrichment analyses revealed that genes associated with transcriptional regulation, plant hormone biosynthesis or signaling, and starch and sucrose metabolism were critical for GA-mediated promotion of rice mesocotyl elongation. Further analyses showed that the expression of the transcription factor (TF) genes (v-myb avian myeloblastosis viral oncogene homolog (MYB) alternative splicing 1 (<i>MYBAS1</i>), phytochrome-interacting factors 1 (<i>PIF1</i>), <i>Oryza sativa</i> teosinte branched 1/cycloidea/proliferating cell factor 5 (<i>OsTCP5</i>), slender 1 (<i>SLN1</i>), and mini zinc finger 1 (<i>MIF1</i>)), plant hormone biosynthesis or signaling genes (brassinazole-resistant 1 (<i>BZR1</i>), ent-kaurenoic acid oxidase-like (<i>KAO</i>), GRETCHEN HAGEN 3.2 (<i>GH3.2</i>), and small auxin up RNA 36 (<i>SAUR36</i>)), and starch and sucrose metabolism genes (alpha-amylases (<i>AMY2A</i> and <i>AMY1.4</i>)) was highly correlated with the mesocotyl elongation and deep-sowing tolerance response. These results enhance our understanding of how nutrient metabolism-related substances and genes regulate rice mesocotyl elongation. This may facilitate future studies on related genes and the development of novel rice varieties tolerant to deep sowing.
Journal J Zhejiang Univ Sci B
Country China
Volume 22(12)
Pages 1002-1021
Year 2021
PubMed ID 34904413
PubMed Central ID 8669327
DOI 10.1631/jzus.B2100174
URL -
Relation
Gene AMY2A AMY3E BHLH101 BZR1 GH3-2 KAO MIF1 MYBAS1 SAUR11 SLRL1 TCP5
INSD -
Strain Wild Core Collection -
Induced Mutation Lines(NIG Collection) -
Sterile Seed Strain -
Lethal Embryo
Mutantion Strain
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Stages in Each Organ
- Muant Lines (Gene)
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Cultivated Varieties(NIG Collection) -
Stages in Each Organ -
/rice/oryzabase