Espinoza Catherine, Liang Yan, Stacey Gary
Divisions of Plant Sciences and Biochemistry, C.S. Bond Life Sciences Center, University of Missouri, Columbia, MO, 65211, USA.
Plant J. 2017 Mar;89(5):984-995. doi: 10.1111/tpj.13437. Epub 2017 Feb 8.
In nature, plants need to respond to multiple environmental stresses that require the involvement and fine-tuning of different stress signaling pathways. Cross-tolerance, in which plants pre-treated with chitin (a fungal microbe-associated molecular pattern) have improved salt tolerance, was observed in Arabidopsis, but is not well understood. Here, we show a unique link between chitin and salt signaling mediated by the chitin receptor CHITIN ELICITOR RECEPTOR KINASE 1 (CERK1). Transcriptome analysis revealed that salt stress-induced genes are highly correlated with chitin-induced genes, although this was not observed with other microbe-associated molecular patterns (MAMPs) or with other abiotic stresses. The cerk1 mutant was more susceptible to NaCl than was the wild type. cerk1 plants had an irregular increase of cytosolic calcium ([Ca ] ) after NaCl treatment. Bimolecular fluorescence complementation (BiFC) and co-immunoprecipitation experiments indicated that CERK1 physically interacts with ANNEXIN 1 (ANN1), which was reported to form a calcium-permeable channel that contributes to the NaCl-induced [Ca ] signal. In turn, ann1 mutants showed elevated chitin-induced rapid responses. In short, molecular components previously shown to function in chitin or salt signaling physically interact and intimately link the downstream responses to fungal attack and salt stress.
在自然界中,植物需要对多种环境胁迫作出反应,这需要不同胁迫信号通路的参与和精细调节。在拟南芥中观察到了交叉耐受性,即经几丁质(一种真菌微生物相关分子模式)预处理的植物具有更高的耐盐性,但对此了解并不充分。在此,我们展示了几丁质与由几丁质受体几丁质激发子受体激酶1(CERK1)介导的盐信号之间的独特联系。转录组分析表明,盐胁迫诱导的基因与几丁质诱导的基因高度相关,尽管在其他微生物相关分子模式(MAMPs)或其他非生物胁迫中未观察到这种情况。cerk1突变体比野生型对NaCl更敏感。cerk1植物在NaCl处理后胞质钙([Ca])出现不规则增加。双分子荧光互补(BiFC)和免疫共沉淀实验表明,CERK1与膜联蛋白1(ANN1)发生物理相互作用,据报道ANN1形成一个钙通透通道,有助于NaCl诱导的[Ca]信号。反过来,ann1突变体显示出几丁质诱导的快速反应增强。简而言之,先前显示在几丁质或盐信号中起作用的分子成分发生物理相互作用,并紧密连接了对真菌攻击和盐胁迫的下游反应。