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Fire and brimstone: molecular interactions between sulfur and glucosinolate biosynthesis in model and crop Brassicaceae

机译:火和硫磺:模型和作物十字花科中硫和芥子油苷生物合成之间的分子相互作用

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摘要

Glucosinolates (GSLs) represent one of the most widely studied classes of plant secondary metabolite, and have a wide range of biological activities. Their unique properties also affect livestock and human health, and have been harnessed for food and other end-uses. Since GSLs are sulfur (S)-rich there are many lines of evidence suggesting that plant S status plays a key role in determining plant GSL content. However, there is still a need to establish a detailed knowledge of the distribution and remobilization of S and GSLs throughout the development of Brassica crops, and to represent this in terms of primary and secondary sources and sinks. The increased genome complexity, gene duplication and divergence within brassicas, together with their ontogenetic plasticity during crop development, appear to have a marked effect on the regulation of S and GSLs. Here, we review the current understanding of inorganic S (sulfate) assimilation into organic S forms, including GSLs and their precursors, the intracellular and inter-organ transport of inorganic and organic S forms, and the accumulation of GSLs in specific tissues. We present this in the context of overlapping sources and sinks, transport processes, signaling molecules and their associated molecular interactions. Our analysis builds on recent insights into the molecular regulation of sulfate uptake and transport by different transporters, transcription factors and miRNAs, and the role that these may play in GSL biosynthesis. We develop a provisional model describing the key processes that could be targeted in crop breeding programs focused on modifying GSL content.
机译:芥子油苷(GSLs)代表了最广泛研究的植物次生代谢物之一,并具有广泛的生物活性。它们的独特性能还影响牲畜和人类健康,并已被用于食品和其他最终用途。由于GSL富含硫(S),因此有许多证据表明植物S的状态在确定植物GSL含量方面起着关键作用。但是,仍然需要在整个甘蓝型油菜的发展过程中,详细了解S和GSL的分布和转移,并以主要和次要来源和汇来表示这一点。芸苔属中增加的基因组复杂性,基因重复和趋异,以及它们在作物发育过程中的发育上的可塑性,似乎对S和GSL的调节具有显著作用。在这里,我们回顾了目前对无机S(硫酸盐)同化为有机S形式(包括GSL及其前体),无机和有机S形式在细胞内和器官间运输以及GSL在特定组织中的积累的了解。我们在重叠的源和汇,运输过程,信号分子及其相关分子相互作用的背景下提出这一点。我们的分析基于对不同转运蛋白,转录因子和miRNA的硫酸盐吸收和转运的分子调控及其在GSL生物合成中可能发挥的作用的最新见解。我们开发了一个临时模型,该模型描述了可能以修改GSL含量为重点的作物育种计划中针对的关键过程。

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