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梳理混乱:受损玉米叶片中Z-3-己烯醛生成调控的新见解

Organizing the Chaos: Novel Insights into the Regulation of Z-3-Hexenal Production in Damaged Maize Leaves.

作者信息

Selman Samantha, Engelberth Marie, Engelberth Jurgen

机构信息

Department of Plant Pathology, Texas A&M University, College Station, TX 77843, USA.

Department of Integrative Biology, University of Texas at San Antonio, San Antonio, TX 78249, USA.

出版信息

Plants (Basel). 2024 Oct 3;13(19):2772. doi: 10.3390/plants13192772.

Abstract

Green leaf volatiles (GLVs) are important signaling compounds that help to regulate plant defenses against pests and pathogens. Made through the hydroperoxide lyase (HPL) pathway, they are rapidly produced upon damage and can signal to other parts of the same plant or even plants nearby, where they can induce rapid defense responses directly or prime them against impending danger. In this primed state, plants can respond faster and/or stronger should pests or pathogens attack. However, while all proteins and genes involved in the biosynthesis of GLVs have been identified, little is still known about how the first two steps in the pathway, e.g., oxygenation by a lipoxygenase (LOX) and subsequent cleavage by HPL, are facilitated within the damaged tissue, resulting in the production of Z-3-hexenal (Z3al) as the first committed product of the pathway. Here, we provide evidence that several factors might be involved in the production of Z3al, including pH, Ca, and an environment that is highly hydrophobic. We present a model in which the extraordinary circumstances that are present at the site of Z3al production are considered, and shine new light on potential regulatory mechanisms.

摘要

绿叶挥发物(GLVs)是重要的信号化合物,有助于调节植物对害虫和病原体的防御。它们通过氢过氧化物裂解酶(HPL)途径产生,在植物受到损伤时迅速生成,并能向同一植株的其他部位甚至附近的植株发出信号,在这些部位它们可以直接诱导快速防御反应,或使植株为即将到来的危险做好准备。在这种预处理状态下,如果害虫或病原体发起攻击,植物能够更快和/或更强烈地做出反应。然而,尽管参与GLV生物合成的所有蛋白质和基因都已被鉴定出来,但对于该途径的前两个步骤,例如脂氧合酶(LOX)的氧化作用以及随后HPL的裂解作用,是如何在受损组织中实现从而产生该途径的首个关键产物Z-3-己烯醛(Z3al),我们仍知之甚少。在这里,我们提供证据表明,包括pH值、钙和高度疏水的环境等几个因素可能参与了Z3al的产生。我们提出了一个模型,其中考虑了Z3al产生位点存在的特殊情况,并为潜在的调控机制提供了新的见解。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/716e/11479226/d775603b4b6e/plants-13-02772-g001.jpg

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