首页> 外文期刊>Plant Science: An International Journal of Experimental Plant Biology >Opinion on the possible role of flavonoids as energy escape valves: novel tools for nature's Swiss army knife?
【24h】

Opinion on the possible role of flavonoids as energy escape valves: novel tools for nature's Swiss army knife?

机译:关于类黄酮作为能量释放阀的可能作用的看法:大自然的瑞士军刀的新颖工具?

获取原文
获取原文并翻译 | 示例
获取外文期刊封面目录资料

摘要

Under different suboptimal growth conditions (e.g. low temperatures, drought and nitrogen deficiency), the ability of plants to process the light energy income can be overwhelmed. Plants respond to this energetic imbalance by adjusting their sucrose biosynthesis and export rates, tuning starch metabolism, down-regulating Calvin cycle enzymes and activating energy dissipation mechanisms. We here hypothesize that a complementary response that is mostly underestimated is increased biosynthesis and subsequent accumulation of flavonoids. These are secondary metabolites involved in a wide array of processes such as flower pigmentation, nodulation and photoprotection. Like other phenylpropanoids, they are synthesized by the shikimate pathway, which has been suggested to act as a sink for reduced carbon and, hence, can act as energy escape valve by consuming trioses phosphate, ATP and NADPH. Compared to the biosynthesis of other phenylpropanoids, that of flavonoids specifically requires the incorporation of malonate, thereby facilitating the diversion of photoassimilate and energy. As flavonoids do not bear nitrogen in their chemical structure, their accumulation does not put an additional pressure on nitrogen resources, which are essential for other processes. In our opinion, this putative protective role of flavonoids as energy escape valve during abiotic stresses has been largely underrated in comparison to their photoprotective and possibly antioxidative functions.
机译:在不同的次优生长条件下(例如低温,干旱和氮缺乏),植物处理光能收入的能力可能会不堪重负。植物通过调节蔗糖的生物合成和出口速率,调节淀粉代谢,下调卡尔文循环酶和激活能量耗散机制来应对这种能量失衡。我们在此假设,大多数被低估的互补反应是生物合成增加以及类黄酮随后积累。这些是涉及许多过程的次级代谢产物,例如花色素沉着,结瘤和光保护。像其他苯基丙烷一样,它们是通过the草酸酯途径合成的,据建议它可以充当减少碳的汇,因此可以通过消耗磷酸三糖,ATP和NADPH充当能量释放阀。与其他苯基丙烷的生物合成相比,类黄酮的生物合成特别需要掺入丙二酸酯,从而促进光同化和能量的转移。由于类黄酮在其化学结构中不携带氮,因此它们的积累不会对氮资源施加额外压力,而氮资源是其他过程所必需的。我们认为,与它们的光保护功能和可能的抗氧化功能相比,黄酮类化合物在非生物胁迫中作为能量逃逸阀的这种假定的保护作用已被大大低估。

著录项

相似文献

  • 外文文献
  • 专利
获取原文

客服邮箱:kefu@zhangqiaokeyan.com

京公网安备:11010802029741号 ICP备案号:京ICP备15016152号-6 六维联合信息科技 (北京) 有限公司©版权所有
  • 客服微信

  • 服务号