Transcriptional regulation of cell proliferation competence-associated Arabidopsis genes, CDKA;1, RID1 and SRD2, by phytohormones in tissue culture.

IF 1.4 4区 生物学 Q4 BIOTECHNOLOGY & APPLIED MICROBIOLOGY Plant Biotechnology Pub Date : 2022-09-25 DOI:10.5511/plantbiotechnology.22.0513a
Natsu Takayanagi, Mai Mukai, Munetaka Sugiyama, Misato Ohtani
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Abstract

During organ regeneration, differentiated cells acquire cell proliferation competence before the re-start of cell division. In Arabidopsis thaliana (Arabidopsis), CDKA;1, a cyclin-dependent kinase, RID1, a DEAH-box RNA helicase, and SRD2, a small nuclear RNA transcription factor, are implicated in the regulation of cell proliferation competence. Here, we report phytohormonal transcriptional regulation of these cell proliferation competence-associated genes during callus initiation. We can induce the callus initiation from Arabidopsis hypocotyl explants by the culture on the auxin-containing medium. By RT-quantitative PCR analysis, we observed higher mRNA accumulation of CDKA;1, RID1, and SRD2 in culture on the auxin-containing medium than in culture on the auxin-free medium. Promoter-reporter analysis showed that the CDKA;1, RID1, and SRD2 expression was induced in the stele regions containing pericycle cells, where cell division would be resumed to make callus, by the culture in the medium containing auxin and/or cytokinin. However, the expression levels of these genes in cortical and epidermal cells, which would not originate callus cells, were variable by genes and phytohormonal conditions. We also found that the rid1-1 mutation greatly decreased the expression levels of CDKA;1 and SRD2 during callus initiation specifically at 28°C (restrictive temperature), while the srd2-1 mutation did not obviously decrease the expression levels of CDKA;1 and RID1 regardless of temperature conditions but rather even increased them at 22°C (permissive temperature). Together, our results implicated the phytohormonal and differential regulation of cell proliferation competence-associated genes in the multistep regulation of cell proliferation competence.

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组织培养中植物激素对拟南芥细胞增殖能力相关基因CDKA;1、RID1和SRD2的转录调控
在器官再生过程中,分化的细胞在重新开始细胞分裂之前获得了细胞增殖能力。在拟南芥中,细胞周期蛋白依赖性激酶CDKA;1、DEAH-box RNA解旋酶RID1和小核RNA转录因子SRD2参与细胞增殖能力的调控。在这里,我们报道了愈伤组织形成过程中这些细胞增殖能力相关基因的植物激素转录调控。通过在含生长素培养基上培养拟南芥下胚轴外植体,诱导愈伤组织形成。通过rt -定量PCR分析,我们发现含有生长素的培养基中CDKA;1、RID1和SRD2 mRNA的积累量高于不含生长素的培养基。启动子报告子分析表明,在含有生长素和/或细胞分裂素的培养基中培养,在含有中柱鞘细胞的柱状细胞区域,CDKA;1、RID1和SRD2的表达被诱导,该区域的细胞分裂将恢复形成愈伤组织。然而,这些基因在皮质细胞和表皮细胞中的表达水平受基因和植物激素条件的影响而变化,这些细胞不会产生愈伤组织细胞。我们还发现,在28℃(限制温度)下,RID1 -1突变显著降低了愈伤组织形成过程中CDKA;1和SRD2的表达水平,而SRD2 -1突变在任何温度条件下都没有明显降低CDKA;1和RID1的表达水平,在22℃(允许温度)下甚至增加了它们的表达水平。总之,我们的研究结果暗示了植物激素和细胞增殖能力相关基因的差异调控在细胞增殖能力的多步骤调控中。
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来源期刊
Plant Biotechnology
Plant Biotechnology BIOTECHNOLOGY & APPLIED MICROBIOLOGY-PLANT SCIENCES
CiteScore
2.90
自引率
18.80%
发文量
45
审稿时长
6-12 weeks
期刊介绍: Plant Biotechnology is an international, open-access, and online journal, published every three months by the Japanese Society for Plant Biotechnology. The journal, first published in 1984 as the predecessor journal, “Plant Tissue Culture Letters” and became its present form in 1997 when the society name was renamed to Japanese Society for Plant Cell and Molecular Biology, publishes findings in the areas from basic- to application research of plant biotechnology. The aim of Plant Biotechnology is to publish original and high-impact papers, in the most rapid turnaround time for reviewing, on the plant biotechnology including tissue culture, production of specialized metabolites, transgenic technology, and genome editing technology, and also on the related research fields including molecular biology, cell biology, genetics, plant breeding, plant physiology and biochemistry, metabolic engineering, synthetic biology, and bioinformatics.
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