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首页> 外文期刊>Plant Cell, Tissue and Organ Culture: An International Journal on in Vitro Culture of Higher Plants >Transcriptome profiling reveals auxin suppressed anthocyanin biosynthesis in red-fleshed apple callus (Malus sieversii f. niedzwetzkyana)
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Transcriptome profiling reveals auxin suppressed anthocyanin biosynthesis in red-fleshed apple callus (Malus sieversii f. niedzwetzkyana)

机译:转录组分析显示红肉苹果愈伤组织(Malus sieversii f。niedzwetzkyana)中生长素抑制花青素的生物合成

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摘要

Anthocyanin biosynthesis in callus culture in vitro is strongly influenced by exogenous auxin concentrations. However, the mechanisms by which auxin regulates anthocyanin biosynthesis are largely unknown. To understand the molecular basis of this phenomenon, global gene expression was analyzed in red-fleshed apple calli treated with 1-naphthaleneacetic acid (NAA; 0.3 and 10 mg/L) and 2,4-dichlorophenoxyacetic acid (2,4-D; 0.03 and 0.6 mg/L) using RNA-seq. A total of 3070 and 2533 genes were differently expressed (log(2) ratio a parts per thousand yen 2 at P 0.0001) in the 2,4-D and NAA treatments, respectively. Thereof, 937 genes were up-regulated and 902 genes were both down-regulated. Genes involved in anthocyanin and flavonoid synthesis and transport into the vacuole were generally down-regulated. Higher concentrations of 2,4-D and NAA facilitated the transport of auxin and induced the expressions of genes involved in the homeostatic feedback regulatory loop. In the auxin signaling pathway, nine Aux/IAA family genes and seven ARF family genes were up-regulated. Moreover, 298 transcription factors were differentially expressed in the NAA and 2,4-D treatments. Among them, some members of MYB, bHLH, and WD40 families that directly regulate anthocyanin and flavonoid synthesis, such as MYB75 (MdMYB10), MYB12, MYB111, MYB113, TT2, and TT8 (MdbHLH3), were down-regulated by NAA and 2,4-D. Auxin also affected gene expression in other plant hormone signaling pathways, such as the cytokinin, ethylene, and gibberellic acid pathways, which also influenced anthocyanin biosynthesis. This study provides a valuable overview of transcriptome changes and gives insight into the molecular mechanism by which auxin inhibits anthocyanin biosynthesis in red-fleshed apple calli.
机译:体外愈伤组织培养中花青素的生物合成受到外源生长素浓度的强烈影响。然而,植物生长素调节花色苷生物合成的机理尚不清楚。为了了解这种现象的分子基础,分析了用1-萘乙酸(NAA; 0.3和10 mg / L)和2,4-二氯苯氧基乙酸(2,4-D; 5; 0.03和0.6 mg / L)。在2,4-D和NAA处理中,分别共有3070和2533个基因表达差异(log(2)比a千分之二,P <0.0001)。其中937个基因被上调,而902个基因都被下调。花色苷和类黄酮合成以及转运到液泡中的基因通常被下调。较高浓度的2,4-D和NAA促进了生长素的运输,并诱导了稳态反馈调节环中涉及的基因的表达。在生长素信号传导途径中,九个Aux / IAA家族基因和七个ARF家族基因被上调。此外,在NAA和2,4-D处理中差异表达了298个转录因子。其中,直接调节花色苷和类黄酮合成的MYB,bHLH和WD40家族的某些成员,例如MYB75(MdMYB10),MYB12,MYB111,MYB113,TT2和TT8(MdbHLH3),被NAA和2下调。 ,4-D。生长素还影响其他植物激素信号传导途径(如细胞分裂素,乙烯和赤霉素途径)中的基因表达,这也影响了花色苷的生物合成。这项研究提供了转录组变化的宝贵概述,并深入了解了生长素抑制红肉苹果愈伤组织中花色苷生物合成的分子机制。

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