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A Regulatory Network-Based Approach Dissects Late Maturation Processes Related to the Acquisition of Desiccation Tolerance and Longevity of Medicago truncatula Seeds

机译:基于监管网络的方法剖析与紫花苜蓿种子脱水耐性和寿命的获得有关的后期成熟过程

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摘要

In seeds, desiccation tolerance (DT) and the ability to survive the dry state for prolonged periods of time (longevity) are two essential traits for seed quality that are consecutively acquired during maturation. Using transcriptomic and metabolomic profiling together with a conditional-dependent network of global transcription interactions, we dissected the maturation events from the end of seed filling to final maturation drying during the last 3 weeks of seed development in Medicago truncatula. The network revealed distinct coexpression modules related to the acquisition of DT, longevity, and pod abscission. The acquisition of DT and dormancy module was associated with abiotic stress response genes, including late embryogenesis abundant (LEA) genes. The longevity module was enriched in genes involved in RNA processing and translation. Concomitantly, LEA polypeptides accumulated, displaying an 18-d delayed accumulation compared with transcripts. During maturation, gulose and stachyose levels increased and correlated with longevity. A seed-specific network identified known and putative transcriptional regulators of DT, including ABSCISIC ACID-INSENSITIVE3 (MtABI3), MtABI4, MtABI5, and APETALA2/ETHYLENE RESPONSE ELEMENT BINDING PROTEIN (AtAP2/EREBP) transcription factor as major hubs. These transcriptional activators were highly connected to LEA genes. Longevity genes were highly connected to two MtAP2/EREBP and two basic leucine zipper transcription factors. A heat shock factor was found at the transition of DT and longevity modules, connecting to both gene sets. Gain-and loss-of-function approaches of MtABI3 confirmed 80% of its predicted targets, thereby experimentally validating the network. This study captures the coordinated regulation of seed maturation and identifies distinct regulatory networks underlying the preparation for the dry and quiescent states.
机译:在种子中,脱水耐受性(DT)和在干燥状态下长期存活的能力(寿命)是成熟期间连续获得的两个种子品质的重要特征。使用转录组和代谢组学分析以及全球转录相互作用的条件依赖性网络,我们分析了Medi藜苜蓿种子发育的最后三周内从种子填充结束到最终成熟干燥的成熟过程。该网络揭示了与DT的获得,寿命和荚果脱落相关的独特共表达模块。 DT和休眠模块的获取与非生物应激反应基因相关,包括晚期胚胎发生丰富(LEA)基因。长寿模块丰富了涉及RNA加工和翻译的基因。伴随地,LEA多肽积累,与转录物相比显示出18-d延迟积累。在成熟过程中,果糖和水苏糖的水平增加并且与寿命相关。一个特定于种子的网络确定了DT的已知和推定的转录调节因子,其中包括ABSCISIC ACID-INSENSITIVE3(MtABI3),MtABI4,MtABI5和APETALA2 / ETHENE响应元素结合蛋白(AtAP2 / EREBP)转录因子。这些转录激活因子与LEA基因高度相关。长寿基因与两个MtAP2 / EREBP和两个基本的亮氨酸拉链转录因子高度相关。在DT和长寿模块的转变中发现了一个热激因子,连接到两个基因组。 MtABI3的功能获得和丧失方法证实了其预测目标的80%,从而通过实验验证了该网络。这项研究捕获了种子成熟的协调调控,并确定了干燥和静止状态准备工作所依据的独特调控网络。

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