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水稻缺铁响应过程中转录本和代谢物水平的日变化

Diurnal Changes in Transcript and Metabolite Levels during the Iron Deficiency Response of Rice.

作者信息

Selby-Pham Jamie, Lutz Adrian, Moreno-Moyano Laura T, Boughton Berin A, Roessner Ute, Johnson Alexander A T

机构信息

School of BioSciences, The University of Melbourne, Parkville, Victoria, Australia.

Metabolomics Australia, The University of Melbourne, Parkville, Victoria, Australia.

出版信息

Rice (N Y). 2017 Dec;10(1):14. doi: 10.1186/s12284-017-0152-7. Epub 2017 Apr 20.

Abstract

BACKGROUND

Rice (Oryza sativa L.) is highly susceptible to iron (Fe) deficiency due to low secretion levels of the mugineic acid (MA) family phytosiderophore (PS) 2'-deoxymugineic acid (DMA) into the rhizosphere. The low levels of DMA secreted by rice have proved challenging to measure and, therefore, the pattern of DMA secretion under Fe deficiency has been less extensively studied relative to other graminaceous monocot species that secrete high levels of PS, such as barley (Hordeum vulgare L.).

RESULTS

Gene expression and metabolite analyses were used to characterise diurnal changes occurring during the Fe deficiency response of rice. Iron deficiency inducible genes involved in root DMA biosynthesis and secretion followed a diurnal pattern with peak induction occurring 3-5 h after the onset of light; a result consistent with that of other Strategy II plant species such as barley and wheat. Furthermore, triple quadrupole mass spectrometry identified 3-5 h after the onset of light as peak time of DMA secretion from Fe-deficient rice roots. Metabolite profiling identified accumulation of amines associated with metal chelation, metal translocation and plant oxidative stress responses occurring with peak induction 10-12 h after the onset of light.

CONCLUSION

The results of this study confirmed that rice shares a similar peak time of Fe deficiency associated induction of DMA secretion compared to other Strategy II plant species but has less prominent daily fluctuations of DMA secretion. It also revealed metabolic changes associated with the remediation of Fe deficiency and mitigation of damage from resulting stress in rice roots. This study complements previous studies on the genetic changes in response to Fe deficiency in rice and constitutes an important advance towards our understanding of the molecular mechanisms underlying the rice Fe deficiency response.

摘要

背景

水稻(Oryza sativa L.)因向根际分泌的 mugineic 酸(MA)家族植物铁载体(PS)2'-脱氧 mugineic 酸(DMA)水平较低,对缺铁高度敏感。水稻分泌的 DMA 水平较低,难以测量,因此,与其他分泌高水平 PS 的禾本科单子叶植物(如大麦(Hordeum vulgare L.))相比,缺铁条件下 DMA 的分泌模式研究较少。

结果

采用基因表达和代谢物分析来表征水稻缺铁反应过程中发生的昼夜变化。参与根部 DMA 生物合成和分泌的缺铁诱导基因呈现昼夜模式,光照开始后 3 - 5 小时诱导达到峰值;这一结果与大麦和小麦等其他策略 II 型植物物种一致。此外,三重四极杆质谱法确定光照开始后 3 - 5 小时为缺铁水稻根部分泌 DMA 的峰值时间。代谢物谱分析确定,与金属螯合、金属转运和植物氧化应激反应相关的胺类物质在光照开始后 10 - 12 小时诱导达到峰值时积累。

结论

本研究结果证实,与其他策略 II 型植物物种相比,水稻缺铁相关的 DMA 分泌诱导峰值时间相似,但 DMA 分泌的每日波动不太明显。它还揭示了与水稻根部缺铁修复和减轻由此产生的应激损伤相关的代谢变化。本研究补充了此前关于水稻缺铁反应中基因变化的研究,是我们对水稻缺铁反应分子机制理解的重要进展。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/ea9e/5398970/74bfe51bda16/12284_2017_152_Fig1_HTML.jpg

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