Comparative metabolomics and transcriptomics of pistils, stamens and pistilloid stamens widen key knowledge of pistil and stamen development in wheat.

IF 1.2 4区 农林科学 Q3 AGRONOMY Czech Journal of Genetics and Plant Breeding Pub Date : 2019-12-09 DOI:10.17221/70/2019-cjgpb
Yan Yu, Zhengsong Peng, Jipeng Qu, Z. Chen, Shuhong Wei, M. Liao, Li Zhang, Zaijun Yang
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引用次数: 3

Abstract

To examine the role of metabolites in wheat stamen and pistil development, metabolomic analyses of pistilloid stamens (PS), pistils (P), and stamens (S) from a novel wheat mutant homologous transformation sterility-1 (HTS-1) and controls from their sib-line CSTP were conducted using base gas chromatography-mass spectrometry (GC-MS) and liquid chromatography-mass spectrometry (LC-MS). Then, the metabolomic data were integrated with previously published transcriptomic data and analysed. In total, 141 annotated metabolites were determined from P, PS and S tissues by comparison with reference standards. A total of 90, 93 and 18 different metabolites were identified in S vs. PS, S vs. P and P vs. PS, respectively. Among the different metabolites, 80 may be associated with stamen and pistil growth. Using integration evaluations of both the previous transcriptome data and the 80 various metabolites, we found two perturbed pathways that significantly affect flower development in plants, namely, the phenylpropanoid biosynthesis and cysteine and methionine metabolism. The ethylene synthesis pathway, one key branch of the cysteine and methionine metabolic pathways, could have a pivotal role in pistillody growth involving HTS-1. We found two key enzyme genes in the ethylene synthesis pathway (the SAM synthase gene and the ACC synthase gene) that have higher expression levels in stamens than in pistilloid stamens or pistils. We speculate, that the decrease in ethylene content during stamen development leads to pistillody traits in HTS-1. This study helps elucidate the molecular mechanisms underlying stamen and pistil growth in wheat.
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雌蕊、雄蕊和似雌蕊的比较代谢组学和转录组学拓宽了小麦雌蕊发育的关键知识。
为了研究代谢产物在小麦雄蕊和雌蕊发育中的作用,使用基本气相色谱-质谱(GC-MS)和液相色谱-MS(LC-MS)对一种新的小麦突变体同源转化不育-1(HTS-1)的雌蕊(PS)、雌蕊(P)和雄蕊(S)及其同胞系CSTP的对照进行了代谢组学分析。然后,将代谢组学数据与先前发表的转录组学数据进行整合和分析。通过与参考标准品的比较,总共从P、PS和S组织中确定了141种注释代谢物。在S与PS、S与P和P与PS中分别鉴定出90、93和18种不同的代谢物。在不同的代谢产物中,80可能与雄蕊和雌蕊的生长有关。通过对先前转录组数据和80种不同代谢产物的整合评估,我们发现了两种显著影响植物花朵发育的紊乱途径,即苯丙烷生物合成以及半胱氨酸和蛋氨酸代谢。乙烯合成途径是半胱氨酸和蛋氨酸代谢途径的一个关键分支,可能在涉及HTS-1的雌蕊生长中发挥关键作用。我们发现乙烯合成途径中的两个关键酶基因(SAM合酶基因和ACC合酶基因)在雄蕊中的表达水平高于雌蕊或雌蕊。我们推测,在雄蕊发育过程中乙烯含量的降低导致HTS-1的雌蕊性状。本研究有助于阐明小麦雄蕊和雌蕊生长的分子机制。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
Czech Journal of Genetics and Plant Breeding
Czech Journal of Genetics and Plant Breeding Agricultural and Biological Sciences-Plant Science
CiteScore
2.20
自引率
0.00%
发文量
25
审稿时长
>12 weeks
期刊介绍: Original scientific papers, critical reviews articles and short communications from the field of theoretical and applied plant genetics, plant biotechnology and plant breeding. Papers are published in English.
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