从基因到特化代谢物:拟南芥天然种群中莨菪亭、伞形酮及其苷类的积累。

IF 4.3 2区 生物学 Q1 PLANT SCIENCES
Anna Ihnatowicz, Joanna Siwinska, Izabela Perkowska, Jeremy Grosjean, Alain Hehn, Frederic Bourgaud, Ewa Lojkowska, Alexandre Olry
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引用次数: 0

摘要

背景:香豆素和伞形酮属于香豆素类,是植物的特殊代谢产物,具有强大而广泛的生物活性,各种环境胁迫都会诱导香豆素的积累。香豆素已在多种植物中被发现,包括药用植物和模式生物拟南芥。近年来,香豆素在维持植物体内铁(Fe)平衡方面的关键作用已得到证实,而且香豆素还通过分泌到土壤环境中的渗出物对根瘤微生物群产生重大影响。这些过程的几种基本机制需要澄清。以前,我们曾证明拟南芥是研究植物香豆素积累的遗传变异和分子基础的极佳模型:结果:在这里,通过靶向代谢轮廓分析和基因表达分析,我们更详细地研究了在不同培养条件下、以香豆素含量变化为特征的拟南芥部分品种(Col-0、Est-1、Tsu-1)中莨菪亭和伞形酮积累的基因-代谢物网络。在离体液体培养的根中检测到的香豆素积累量最高。通过 qPCR 方法评估了 10 个苯丙类化合物基因(4CL1、4CL2、4CL3、CCoAOMT1、C3'H、HCT、F6'H1、F6'H2、CCR1 和 CCR2)在三种遗传背景、体外培养和土壤培养以及两种组织(叶和根)中的表达情况。我们不仅检测到拟南芥不同种属间基因表达和香豆素积累的预期变异性,还通过硅分析和重测序发现了所选基因编码序列中有趣的多态性:据我们所知,这是首次比较拟南芥土壤和液体培养物中简单香豆素积累和苯丙类化合物相关基因表达的研究。我们检测到的香豆素含量和基因表达的巨大差异是由基因决定的,但也取决于组织和培养物。考虑到在液体培养基中培养植物是一种广泛使用的技术,可提供大量适合代谢组学研究的根部组织,这一点尤为重要。对香豆素的不同积累和相关基因表达的研究将有助于今后的研究,从而更好地了解香豆素在根部和周围环境中的生理作用。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Genes to specialized metabolites: accumulation of scopoletin, umbelliferone and their glycosides in natural populations of Arabidopsis thaliana.

Background: Scopoletin and umbelliferone belong to coumarins, which are plant specialized metabolites with potent and wide biological activities, the accumulation of which is induced by various environmental stresses. Coumarins have been detected in various plant species, including medicinal plants and the model organism Arabidopsis thaliana. In recent years, key role of coumarins in maintaining iron (Fe) homeostasis in plants has been demonstrated, as well as their significant impact on the rhizosphere microbiome through exudates secreted into the soil environment. Several mechanisms underlying these processes require clarification. Previously, we demonstrated that Arabidopsis is an excellent model for studying genetic variation and molecular basis of coumarin accumulation in plants.

Results: Here, through targeted metabolic profiling and gene expression analysis, the gene-metabolite network of scopoletin and umbelliferone accumulation was examined in more detail in selected Arabidopsis accessions (Col-0, Est-1, Tsu-1) undergoing different culture conditions and characterized by variation in coumarin content. The highest accumulation of coumarins was detected in roots grown in vitro liquid culture. The expression of 10 phenylpropanoid genes (4CL1, 4CL2, 4CL3, CCoAOMT1, C3'H, HCT, F6'H1, F6'H2,CCR1 and CCR2) was assessed by qPCR in three genetic backgrounds, cultured in vitro and in soil, and in two types of tissues (leaves and roots). We not only detected the expected variability in gene expression and coumarin accumulation among Arabidopsis accessions, but also found interesting polymorphisms in the coding sequences of the selected genes through in silico analysis and resequencing.

Conclusions: To the best of our knowledge, this is the first study comparing accumulation of simple coumarins and expression of phenylpropanoid-related genes in Arabidopsis accessions grown in soil and in liquid cultures. The large variations we detected in the content of coumarins and gene expression are genetically determined, but also tissue and culture dependent. It is particularly important considering that growing plants in liquid media is a widely used technology that provides a large amount of root tissue suitable for metabolomics. Research on differential accumulation of coumarins and related gene expression will be useful in future studies aimed at better understanding the physiological role of coumarins in roots and the surrounding environments.

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来源期刊
BMC Plant Biology
BMC Plant Biology 生物-植物科学
CiteScore
8.40
自引率
3.80%
发文量
539
审稿时长
3.8 months
期刊介绍: BMC Plant Biology is an open access, peer-reviewed journal that considers articles on all aspects of plant biology, including molecular, cellular, tissue, organ and whole organism research.
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