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转录组测序提示双组分信号在大麦胚乳传递细胞的细胞化和分化中的作用。

454 Transcriptome sequencing suggests a role for two-component signalling in cellularization and differentiation of barley endosperm transfer cells.

机构信息

Leibniz-Institut für Pflanzengenetik und Kulturpflanzenforschung (IPK), Gatersleben, Germany.

出版信息

PLoS One. 2012;7(7):e41867. doi: 10.1371/journal.pone.0041867. Epub 2012 Jul 25.

Abstract

BACKGROUND

Cell specification and differentiation in the endosperm of cereals starts at the maternal-filial boundary and generates the endosperm transfer cells (ETCs). Besides the importance in assimilate transfer, ETCs are proposed to play an essential role in the regulation of endosperm differentiation by affecting development of proximate endosperm tissues. We attempted to identify signalling elements involved in early endosperm differentiation by using a combination of laser-assisted microdissection and 454 transcriptome sequencing.

PRINCIPAL FINDINGS

454 sequencing of the differentiating ETC region from the syncytial state until functionality in transfer processes captured a high proportion of novel transcripts which are not available in existing barley EST databases. Intriguingly, the ETC-transcriptome showed a high abundance of elements of the two-component signalling (TCS) system suggesting an outstanding role in ETC differentiation. All components and subfamilies of the TCS, including distinct kinds of membrane-bound receptors, have been identified to be expressed in ETCs. The TCS system represents an ancient signal transduction system firstly discovered in bacteria and has previously been shown to be co-opted by eukaryotes, like fungi and plants, whereas in animals and humans this signalling route does not exist. Transcript profiling of TCS elements by qRT-PCR suggested pivotal roles for specific phosphorelays activated in a coordinated time flow during ETC cellularization and differentiation. ETC-specificity of transcriptionally activated TCS phosphorelays was assessed for early differentiation and cellularization contrasting to an extension of expression to other grain tissues at the beginning of ETC maturation. Features of candidate genes of distinct phosphorelays and transcriptional activation of genes putatively implicated in hormone signalling pathways hint at a crosstalk of hormonal influences, putatively ABA and ethylene, and TCS signalling.

SIGNIFICANCE

Our findings suggest an integral function for the TCS in ETC differentiation possibly coupled to sequent hormonal regulation by ABA and ethylene.

摘要

背景

谷类胚乳的细胞特化和分化始于母-子组织边界,并产生胚乳转移细胞(ETC)。除了在同化转移中的重要作用外,ETC 被认为通过影响近胚乳组织的发育在胚乳分化的调节中发挥重要作用。我们试图通过使用激光辅助显微切割和 454 转录组测序的组合来鉴定参与早期胚乳分化的信号元件。

主要发现

从合胞体状态到具有转移功能的胚乳转移细胞区域的 454 测序捕获了大量新型转录本,这些转录本在现有的大麦 EST 数据库中不可用。有趣的是,ETC 转录组显示出大量的双组分信号(TCS)系统元件,表明其在 ETC 分化中具有重要作用。TCS 的所有成分和亚家族,包括不同类型的膜结合受体,都已被鉴定为在 ETC 中表达。TCS 系统代表了一种古老的信号转导系统,最初在细菌中发现,先前已被证明被真核生物(如真菌和植物)所采用,而在动物和人类中,这种信号途径并不存在。通过 qRT-PCR 对 TCS 元件的转录谱进行分析表明,在 ETC 细胞化和分化过程中,特定磷酸传递被协调激活,发挥关键作用。在 ETC 成熟开始时,与向其他谷物组织的表达扩展相比,对早期分化和细胞化的 TCS 磷酸传递的转录激活进行了 ETC 特异性评估。不同磷酸传递候选基因的特征和推测参与激素信号通路的基因的转录激活暗示了激素影响(推测为 ABA 和乙烯)与 TCS 信号之间的串扰。

意义

我们的发现表明,TCS 在 ETC 分化中具有整体功能,可能与 ABA 和乙烯的后继激素调节相关。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/cbdd/3405061/b13cc095bf52/pone.0041867.g001.jpg

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