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通过转录组和代谢组分析探究甘薯种内杂交不亲和的分子机制。

Exploration of molecular mechanism of intraspecific cross-incompatibility in sweetpotato by transcriptome and metabolome analysis.

机构信息

Guangdong Provincial Key Laboratory of Crop Genetic Improvement, Crops Research Institute, Guangdong Academy of Agricultural Sciences, Guangzhou, 510640, China.

出版信息

Plant Mol Biol. 2022 May;109(1-2):115-133. doi: 10.1007/s11103-022-01259-8. Epub 2022 Mar 25.

Abstract

Cross-incompatibility, frequently happening in intraspecific varieties, has seriously restricted sweetpotato breeding. However, the mechanism of sweetpotato intraspecific cross-incompatibility (ICI) remains largely unexplored, especially for molecular mechanism. Treatment by inducible reagent developed by our lab provides a method to generate material for mechanism study, which could promote incompatible pollen germination and tube growth in the ICI group. Based on the differential phenotypes between treated and untreated samples, transcriptome and metabolome were employed to explore the molecular mechanism of sweetpotato ICI in this study, taking varieties 'Guangshu 146' and 'Shangshu 19', a typical incompatible combination, as materials. The results from transcriptome analysis showed oxidation-reduction, cell wall metabolism, plant-pathogen interaction, and plant hormone signal transduction were the essential pathways for sweetpotato ICI regulation. The differentially expressed genes (DEGs) enriched in these pathways were the important candidate genes to response ICI. Metabolome analysis showed that multiple differential metabolites (DMs) involved oxidation-reduction were identified. The most significant DM identified in comparison between compatible and incompatible samples was vitexin-2-O-glucoside, a flavonoid metabolite. Corresponding to it, cytochrome P450s were the most DEGs identified in oxidation-reduction, which were implicated in flavonoid biosynthesis. It further suggested oxidation-reduction play an important role in sweetpotato ICI regulation. To validate function of oxidation-reduction, reactive oxygen species (ROS) was detected in compatible and incompatible samples. The green fluorescence was observed in incompatible but not in compatible samples. It indicated ROS regulated by oxidation-reduction is important pathway to response sweetpotato ICI. The results in this study would provide valuable insights into molecular mechanisms for sweetpotato ICI.

摘要

种内不亲和性经常发生在同种品种之间,严重限制了甘薯的育种。然而,甘薯种内不亲和性(ICI)的机制在很大程度上仍未被探索,特别是在分子机制方面。我们实验室开发的诱导试剂的处理为机制研究提供了一种生成材料的方法,可以促进 ICI 组中不亲和花粉的萌发和管的生长。基于处理和未处理样品之间的差异表型,本研究采用转录组学和代谢组学来探索甘薯 ICI 的分子机制,以品种“广薯 146”和“商薯 19”为材料,这是一种典型的不亲和组合。转录组分析的结果表明,氧化还原、细胞壁代谢、植物-病原体相互作用和植物激素信号转导是甘薯 ICI 调节的必要途径。这些途径中差异表达的基因(DEGs)是响应 ICI 的重要候选基因。代谢组分析表明,鉴定出多个涉及氧化还原的差异代谢物(DMs)。在相容和不相容样品之间比较时,最显著的 DM 是牡荆素-2-O-葡萄糖苷,一种类黄酮代谢物。相应地,氧化还原中鉴定出最多的 DEGs 是细胞色素 P450s,它们与类黄酮生物合成有关。这进一步表明氧化还原在甘薯 ICI 调节中起着重要作用。为了验证氧化还原的功能,在相容和不相容样品中检测了活性氧(ROS)。在不相容样品中观察到了绿色荧光,但在相容样品中没有。这表明氧化还原调节的 ROS 是响应甘薯 ICI 的重要途径。本研究的结果将为甘薯 ICI 的分子机制提供有价值的见解。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/9c93/9072463/e087c7f94b21/11103_2022_1259_Fig1_HTML.jpg

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