Literature DB >> 33740900

Identification of regulatory factors promoting embryogenic callus formation in barley through transcriptome analysis.

Jingqi Suo1, Chenlu Zhou1, Zhanghui Zeng1, Xipu Li1, Hongwu Bian1, Junhui Wang1, Muyuan Zhu1, Ning Han2.   

Abstract

BACKGROUND: Barley is known to be recalcitrant to tissue culture, which hinders genetic transformation and its biotechnological application. To date, the ideal explant for transformation remains limited to immature embryos; the mechanism underlying embryonic callus formation is elusive.
RESULTS: This study aimed to uncover the different transcription regulation pathways between calli formed from immature (IME) and mature (ME) embryos through transcriptome sequencing. We showed that incubation of embryos in an auxin-rich medium caused dramatic changes in gene expression profiles within 48 h. Overall, 9330 and 11,318 differentially expressed genes (DEGs) were found in the IME and ME systems, respectively. 3880 DEGs were found to be specific to IME_0h/IME_48h, and protein phosphorylation, regulation of transcription, and oxidative-reduction processes were the most common gene ontology categories of this group. Twenty-three IAA, fourteen ARF, eight SAUR, three YUC, and four PIN genes were found to be differentially expressed during callus formation. The effect of callus-inducing medium (CIM) on IAA genes was broader in the IME system than in the ME system, indicating that auxin response participates in regulating cell reprogramming during callus formation. BBM, LEC1, and PLT2 exhibited a significant increase in expression levels in the IME system but were not activated in the ME system. WUS showed a more substantial growth trend in the IME system than in the ME system, suggesting that these embryonic, shoot, and root meristem genes play crucial roles in determining the acquisition of competency. Moreover, epigenetic regulators, including SUVH3A, SUVH2A, and HDA19B/703, exhibited differential expression patterns between the two induction systems, indicating that epigenetic reprogramming might contribute to gene expression activation/suppression in this process. Furthermore, we examined the effect of ectopic expression of HvBBM and HvWUS on Agrobacterium-mediated barley transformation. The transformation efficiency in the group expressing the PLTPpro:HvBBM + Axig1pro:HvWUS construct was increased by three times that in the control (empty vector) because of enhanced plant regeneration capacity.
CONCLUSIONS: We identified some regulatory factors that might contribute to the differential responses of the two explants to callus induction and provide a promising strategy to improve transformation efficiency in barley.

Entities:  

Keywords:  Auxin response; Barley (Hordeum vulgare); Callus induction; Plant regeneration

Mesh:

Substances:

Year:  2021        PMID: 33740900      PMCID: PMC7980361          DOI: 10.1186/s12870-021-02922-w

Source DB:  PubMed          Journal:  BMC Plant Biol        ISSN: 1471-2229            Impact factor:   4.215


  64 in total

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7.  Label-Free Quantitative Phosphoproteomics Reveals Signaling Dynamics Involved in Embryogenic Competence Acquisition in Sugarcane.

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Authors:  Yanfei Ma; Andrej Miotk; Zoran Šutiković; Olga Ermakova; Christian Wenzl; Anna Medzihradszky; Christophe Gaillochet; Joachim Forner; Gözde Utan; Klaus Brackmann; Carlos S Galván-Ampudia; Teva Vernoux; Thomas Greb; Jan U Lohmann
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9.  TRA1: A Locus Responsible for Controlling Agrobacterium-Mediated Transformability in Barley.

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  2 in total

Review 1.  Function, Mechanism, and Application of Plant Melatonin: An Update with a Focus on the Cereal Crop, Barley (Hordeum vulgare L.).

Authors:  Xinxing Yang; Jie Chen; Yuan Ma; Minhua Huang; Ting Qiu; Hongwu Bian; Ning Han; Junhui Wang
Journal:  Antioxidants (Basel)       Date:  2022-03-25

2.  Comparative transcriptome analysis reveals compatible and recalcitrant genotypic response of barley microspore-derived embryogenic callus toward Agrobacterium infection.

Authors:  Yingbo Li; Guimei Guo; Hongwei Xu; Ting He; Yingjie Zong; Shuwei Zhang; Muhammad Faheem; Ruiju Lu; Longhua Zhou; Chenghong Liu
Journal:  BMC Plant Biol       Date:  2021-12-07       Impact factor: 4.215

  2 in total

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