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抛物线飞行过程中的基因表达分析揭示了拟南芥根中不同的早期重力反应。

Analysis of gene expression during parabolic flights reveals distinct early gravity responses in Arabidopsis roots.

作者信息

Aubry-Hivet D, Nziengui H, Rapp K, Oliveira O, Paponov I A, Li Y, Hauslage J, Vagt N, Braun M, Ditengou F A, Dovzhenko A, Palme K

机构信息

Institute of Biology II/Botany, Faculty of Biology, Albert-Ludwigs University of Freiburg, Freiburg, Germany.

出版信息

Plant Biol (Stuttg). 2014 Jan;16 Suppl 1:129-41. doi: 10.1111/plb.12130.

Abstract

Plant roots are among most intensively studied biological systems in gravity research. Altered gravity induces asymmetric cell growth leading to root bending. Differential distribution of the phytohormone auxin underlies root responses to gravity, being coordinated by auxin efflux transporters from the PIN family. The objective of this study was to compare early transcriptomic changes in roots of Arabidopsis thaliana wild type, and pin2 and pin3 mutants under parabolic flight conditions and to correlate these changes to auxin distribution. Parabolic flights allow comparison of transient 1-g, hypergravity and microgravity effects in living organisms in parallel. We found common and mutation-related genes differentially expressed in response to transient microgravity phases. Gene ontology analysis of common genes revealed lipid metabolism, response to stress factors and light categories as primarily involved in response to transient microgravity phases, suggesting that fundamental reorganisation of metabolic pathways functions upstream of a further signal mediating hormonal network. Gene expression changes in roots lacking the columella-located PIN3 were stronger than in those deprived of the epidermis and cortex cell-specific PIN2. Moreover, repetitive exposure to microgravity/hypergravity and gravity/hypergravity flight phases induced an up-regulation of auxin responsive genes in wild type and pin2 roots, but not in pin3 roots, suggesting a critical function of PIN3 in mediating auxin fluxes in response to transient microgravity phases. Our study provides important insights towards understanding signal transduction processes in transient microgravity conditions by combining for the first time the parabolic flight platform with the transcriptome analysis of different genetic mutants in the model plant, Arabidopsis.

摘要

植物根系是重力研究中研究最为深入的生物系统之一。重力改变会诱导细胞不对称生长,导致根弯曲。植物激素生长素的差异分布是根对重力反应的基础,这一过程由PIN家族的生长素外流转运蛋白协调。本研究的目的是比较拟南芥野生型、pin2和pin3突变体在抛物线飞行条件下根的早期转录组变化,并将这些变化与生长素分布相关联。抛物线飞行能够同时比较生物体中短暂的1g、超重力和微重力效应。我们发现,在短暂微重力阶段,共同基因和与突变相关的基因表达存在差异。对共同基因的基因本体分析表明,脂质代谢、对压力因子的反应和光类别主要参与对短暂微重力阶段的反应,这表明代谢途径的基本重组在介导激素网络的进一步信号上游起作用。缺乏位于根冠的PIN3的根中的基因表达变化比缺乏表皮和皮层细胞特异性PIN2的根中的变化更强。此外,反复暴露于微重力/超重力和重力/超重力飞行阶段会导致野生型和pin2根中生长素响应基因的上调,但pin3根中不会,这表明PIN3在介导对短暂微重力阶段的生长素通量方面具有关键作用。我们的研究通过首次将抛物线飞行平台与模式植物拟南芥不同基因突变体的转录组分析相结合,为理解短暂微重力条件下的信号转导过程提供了重要见解。

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