Low Yee Chen, Lawton Michael A, Di Rong
Department of Plant Biology, Rutgers, the State University of New Jersey, New Brunswick, NJ, USA.
Department of Plant Biology, Rutgers, the State University of New Jersey, New Brunswick, NJ, USA.
Plant Sci. 2022 Sep;322:111361. doi: 10.1016/j.plantsci.2022.111361. Epub 2022 Jun 26.
Fusarium head blight (FHB) caused by Fusarium graminearum (Fg) severely affects cereal crops, especially wheat and barley. FHB results in significant yield loss, reduces grain quality and contaminates grains with mycotoxin. The development of FHB-resistant cereal cultivars can be expedited through CRISPR gene editing. The Arabidopsis ethylene insensitive 2 (AtEIN2) plays a key role in ethylene signaling pathway and is critical for monitoring plant growth and defense responses. RNAi down-regulation of the wheat homolog TaEIN2 has been shown to enhance wheat FHB resistance. Here we generated site-specific mutations in AtEIN2 by CRISPR-editing. Detached inflorescence infection assays revealed that AtEIN2 knock-out (KO) mutants displayed enhanced Fg resistance and substantially reduced Fg spore production in planta. Gene expression profiling of defense genes revealed that impairment of AtEIN2 resulted in down-regulation of the ethylene signaling pathway while the salicylic acid signaling pathway was unaffected. Complementation of AtEIN2-KO plants with a barley orthologue, HvEIN2, restored Fg susceptibility, indicating that HvEIN2 is functionally equivalent to its Arabidopsis counterpart and, hence, may have a similar role in conditioning barley Fg susceptibility. These results provide insight into the defense role of EIN2 and a molecular and functional foundation for manipulating HvEIN2 to enhance FHB resistance in barley.
由禾谷镰刀菌(Fg)引起的赤霉病(FHB)严重影响谷类作物,尤其是小麦和大麦。赤霉病会导致显著的产量损失,降低谷物品质,并使谷物被霉菌毒素污染。通过CRISPR基因编辑可以加快抗赤霉病谷类品种的培育。拟南芥乙烯不敏感2(AtEIN2)在乙烯信号通路中起关键作用,对监测植物生长和防御反应至关重要。RNA干扰下调小麦同源基因TaEIN2已被证明可增强小麦对赤霉病的抗性。在这里,我们通过CRISPR编辑在AtEIN2中产生了位点特异性突变。离体花序感染试验表明,AtEIN2基因敲除(KO)突变体对Fg的抗性增强,且植株内Fg孢子产生量大幅减少。防御基因的基因表达谱分析表明,AtEIN2的损伤导致乙烯信号通路下调,而水杨酸信号通路未受影响。用大麦同源基因HvEIN2对AtEIN2-KO植株进行互补,恢复了对Fg的敏感性,表明HvEIN2在功能上与其拟南芥对应物相当,因此,可能在调节大麦对Fg的敏感性方面具有类似作用。这些结果为深入了解EIN2的防御作用以及为操纵HvEIN2以增强大麦对赤霉病的抗性提供了分子和功能基础。