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水稻根系在非共生状态以及与丛枝菌根真菌相互作用过程中的转录组多样性。

Transcriptome diversity among rice root types during asymbiosis and interaction with arbuscular mycorrhizal fungi.

作者信息

Gutjahr Caroline, Sawers Ruairidh J H, Marti Guillaume, Andrés-Hernández Liliana, Yang Shu-Yi, Casieri Leonardo, Angliker Herbert, Oakeley Edward J, Wolfender Jean-Luc, Abreu-Goodger Cei, Paszkowski Uta

机构信息

Department of Plant Molecular Biology, University of Lausanne, 1015 Lausanne, Switzerland; Faculty of Biology, Genetics, University of Munich, 82152 Martinsried, Germany;

Department of Plant Molecular Biology, University of Lausanne, 1015 Lausanne, Switzerland; Laboratorio Nacional de Genómica para la Biodiversidad, Centro de Investigación y de Estudios Avanzados del Instituto Politécnico Nacional (IPN), 36821 Irapuato, Guanajuato, Mexico;

出版信息

Proc Natl Acad Sci U S A. 2015 May 26;112(21):6754-9. doi: 10.1073/pnas.1504142112. Epub 2015 May 6.

Abstract

Root systems consist of different root types (RTs) with distinct developmental and functional characteristics. RTs may be individually reprogrammed in response to their microenvironment to maximize adaptive plasticity. Molecular understanding of such specific remodeling--although crucial for crop improvement--is limited. Here, RT-specific transcriptomes of adult rice crown, large and fine lateral roots were assessed, revealing molecular evidence for functional diversity among individual RTs. Of the three rice RTs, crown roots displayed a significant enrichment of transcripts associated with phytohormones and secondary cell wall (SCW) metabolism, whereas lateral RTs showed a greater accumulation of transcripts related to mineral transport. In nature, arbuscular mycorrhizal (AM) symbiosis represents the default state of most root systems and is known to modify root system architecture. Rice RTs become heterogeneously colonized by AM fungi, with large laterals preferentially entering into the association. However, RT-specific transcriptional responses to AM symbiosis were quantitatively most pronounced for crown roots despite their modest physical engagement in the interaction. Furthermore, colonized crown roots adopted an expression profile more related to mycorrhizal large lateral than to noncolonized crown roots, suggesting a fundamental reprogramming of crown root character. Among these changes, a significant reduction in SCW transcripts was observed that was correlated with an alteration of SCW composition as determined by mass spectrometry. The combined change in SCW, hormone- and transport-related transcript profiles across the RTs indicates a previously overlooked switch of functional relationships among RTs during AM symbiosis, with a potential impact on root system architecture and functioning.

摘要

根系由具有不同发育和功能特征的不同根类型(RTs)组成。RTs可能会根据其微环境进行个体重编程,以最大限度地提高适应性可塑性。尽管对这种特定重塑的分子理解对作物改良至关重要,但仍很有限。在这里,对成年水稻冠根、大侧根和细侧根的RT特异性转录组进行了评估,揭示了各个RTs之间功能多样性的分子证据。在水稻的三种RTs中,冠根显示出与植物激素和次生细胞壁(SCW)代谢相关的转录本显著富集,而侧根RTs则显示出与矿物质运输相关的转录本积累更多。在自然界中,丛枝菌根(AM)共生是大多数根系的默认状态,已知会改变根系结构。水稻RTs被AM真菌异质定殖,大侧根优先进入这种共生关系。然而,尽管冠根在这种相互作用中的实际参与程度适中,但对AM共生的RT特异性转录反应在数量上对冠根最为明显。此外,定殖的冠根采用了一种与菌根大侧根更相关的表达谱,而不是与未定殖的冠根相关,这表明冠根特征发生了根本性的重编程。在这些变化中,观察到SCW转录本显著减少,这与质谱分析确定的SCW组成变化相关。RTs之间SCW、激素和运输相关转录谱的综合变化表明,在AM共生期间,RTs之间的功能关系发生了先前被忽视的转变,这可能对根系结构和功能产生影响。

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