生物
抗菌剂
野油菜黄单胞菌
病菌
作物
载体(分子生物学)
拟南芥
青枯病
陈皮
免疫系统
转基因作物
植物免疫
植物抗病性
人类病原体
免疫
先天免疫系统
生物病虫害防治
植物
抗菌肽
微生物学
昆虫
青枯菌
寄主(生物学)
植物生长
细菌
激发子
细菌性疾病
转基因
血管组织
作者
Chien‐Yu Huang,Marco Gebiola,Yali Wei,Kerry E. Mauck,Hailing Jin
摘要
Phloem-restricted Candidatus Liberibacter species are the causative agents of economically significant crop diseases, including citrus Huanglongbing (HLB) and potato zebra chip disease (ZCD). ZCD, caused by Candidatus Liberibacter solanacearum (CLso), and transmitted by the potato psyllid, has spread to over 56% of United States potato production areas, resulting in millions of dollars in annual losses. Current control strategies rely on eliminating infected plants and reducing vector populations using insecticides, which have limited efficacy, pose risks to human and animal health, and raise environmental concerns and drug-resistant insect vectors. We have previously identified a novel stable antimicrobial peptide (SAMP) from Australian finger lime that can inhibit citrus HLB by suppressing C. Liberibacter asiaticus (CLas) growth and activating plant immune responses. In this study, we evaluated SAMP for controlling the CLso pathogen in solanaceous crops, as well as an unrelated vascular pathogen (Xanthomonas campestris pv. Campestris (Xcc)) in Arabidopsis thaliana. Topical application of SAMP on potato and tomato plants increased resistance to CLso in greenhouse trials. Potatoes and Arabidopsis internally expressing SAMP by the transgenic approach showed no growth defects and had significantly reduced bacterial titers after pathogen challenge. Remarkably, SAMP also suppressed CLso within the insect vector. These results highlight the broad-spectrum efficacy of SAMP, demonstrating its potential for bioengineering disease-resistant plants as a sustainable, cross-crop tool to combat vascular bacterial pathogens and enhance plant immunity beyond citrus species.
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