Department of Biological and Environmental Sciences, University of Gothenburg, SE-405 30 Gothenburg, Sweden.
Plant Physiol. 2013 Oct;163(2):896-906. doi: 10.1104/pp.113.223503. Epub 2013 Aug 26.
Plants have evolved a complex array of defensive responses against pathogenic microorganisms. Recognition of microbes initiates signaling cascades that activate plant defenses. The membrane lipid phosphatidic acid, produced by phospholipase D (PLD), has been shown to take part in both abiotic and biotic stress signaling. In this study, the involvement of PLD in the interaction between Arabidopsis (Arabidopsis thaliana) and the barley powdery mildew fungus Blumeria graminis f. sp. hordei (Bgh) was investigated. This nonadapted pathogen is normally resisted by a cell wall-based defense, which stops the fungal hyphae from penetrating the epidermal cell wall. Chemical inhibition of phosphatidic acid production by PLD increased the penetration rate of Bgh spores on wild-type leaves. The analysis of transfer DNA knockout lines for all Arabidopsis PLD genes revealed that PLDδ is involved in penetration resistance against Bgh, and chemical inhibition of PLDs in plants mutated in PLDδ indicated that this isoform alone is involved in Bgh resistance. In addition, we confirmed the involvement of PLDδ in penetration resistance against another nonadapted pea powdery mildew fungus, Erysiphe pisi. A green fluorescent protein fusion of PLDδ localized to the plasma membrane at the Bgh attack site, where it surrounded the cell wall reinforcement. Furthermore, in the pldδ mutant, transcriptional up-regulation of early microbe-associated molecular pattern response genes was delayed after chitin stimulation. In conclusion, we propose that PLD is involved in defense signaling in nonhost resistance against powdery mildew fungi and put PLDδ forward as the main isoform participating in this process.
植物已经进化出了一系列复杂的防御反应来对抗致病微生物。对微生物的识别会引发信号级联反应,激活植物防御。由磷脂酶 D(PLD)产生的膜脂质磷酸脂酸已被证明参与了非生物和生物胁迫信号转导。在这项研究中,研究了 PLD 在拟南芥(Arabidopsis thaliana)与大麦白粉菌(Blumeria graminis f. sp. hordei,Bgh)之间相互作用中的作用。这种非适应性病原体通常被基于细胞壁的防御机制所抵抗,这种防御机制阻止真菌菌丝穿透表皮细胞壁。PLD 产生的磷酸脂酸的化学抑制增加了 Bgh 孢子在野生型叶片上的穿透率。对所有拟南芥 PLD 基因的转 DNA 敲除系进行分析,结果表明 PLDδ 参与了对 Bgh 的穿透抗性,并且在 PLDδ 突变体植物中对 PLD 的化学抑制表明,只有这种同工型参与了 Bgh 抗性。此外,我们还证实了 PLDδ 参与了对另一种非适应性豌豆白粉菌 Erysiphe pisi 的穿透抗性。PLDδ 的绿色荧光蛋白融合蛋白定位于 Bgh 攻击部位的质膜上,在该处它包围细胞壁加固。此外,在 pldδ 突变体中,几丁质刺激后早期微生物相关分子模式反应基因的转录上调被延迟。总之,我们提出 PLD 参与了非寄主白粉菌抗性中的防御信号转导,并提出 PLDδ 是参与该过程的主要同工型。