长尾木霉分泌的效应物Cpe1诱导植物抗病

IF 3.7 2区 农林科学 Q2 BIOTECHNOLOGY & APPLIED MICROBIOLOGY
Wang Xiaoting , Wenya Chen , Zhang Jialin, Hu Weishe, Li Ming, Zhao Peibao, Aizhi Ren
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引用次数: 0

摘要

长直布罗陀木霉SMF2是一种重要的生物防治真菌,可以通过竞争、抗生素和诱导植物抗病等多种机制控制病原菌。然而,这种微生物分泌的蛋白质对植物的作用尚不清楚。因此,我们通过构建基因敲除突变体并分析其表型,研究了与角化铂样效应物同源的分泌蛋白TLCpe1(Cpe1)的功能。将TLCPE1基因敲除载体(CPE1)转化到长腕尾T. longibrachiatum SMF2原生质体中,鉴定出突变体ΔCPE1。PCR和southern blotting结果证实,载体是通过上游重组臂的单次交换插入到基因组中,导致完整性基因被破坏。RT-PCR显示,CPE1基因在ΔCPE1突变体中没有正常转录。表型分析表明,ΔCPE1的生长速度和孢子产量降低。然而,ΔCPE1与野生型长臂achiatum T. SMF2 (WT)相比,对灰绿杆菌的抑制活性无显著差异。根接种试验表明,用突变体ΔCPE1的孢子悬浮液处理后,与WT处理相比,对灰葡萄球菌的诱导抗性降低。进一步的分析表明,WT孢子悬浮液处理后的红葡萄的超氧化物歧化酶(SOD)、过氧化物酶(POD)和过氧化氢酶(CAT)活性显著高于ΔCPE1处理的植株。而经WT处理的红毛茛中丙二醛(MDA)含量相对较低。这些研究结果表明,在长臂achiatum SMF2的生物防治过程中,分泌蛋白Cpe1发挥了增强宿主抗性的效应。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Effector Cpe1 secreted by Trichoderma longibrachiatum induces plant disease resistance
Trichoderma longibrachiatum SMF2 is an important biocontrol fungus that can control pathogen through a variety of mechanisms, such as competition, antibiosis, and induction of plant disease resistance. However, the effect of proteins secreted by this microorganism on plants is not well understood. Therefore, we investigated the function of the secreted protein TLCpe1(Cpe1), which is homologous to cerato-platanin-like effector, by constructing gene knockout mutants and analyzing their phenotypes. After transforming the knockout vector of gene TLCPE1 (CPE1) into the protoplast of T. longibrachiatum SMF2, a mutant ΔCPE1 was identified. The results of PCR and southern blotting confirmed that the vector was inserted into the genome by single exchange of the upstream recombination arm, resulting in the disruption of integrity gene. RT-PCR demonstrated that CPE1 gene was not normally transcribed in the ΔCPE1 mutant. Phenotypic analysis revealed that the growth rate and spore yield were reduced in ΔCPE1. However, ΔCPE1 showed no significant difference in inhibitory activity against B. cinerea compared to the wild type of T. longibrachiatum SMF2 (WT). Root inoculation assays showed that when T. repens were treated with a spore suspension of the mutant ΔCPE1, the induced resistance of plant to B. cinerea was reduced compared to that treated with the WT. Further analysis indicated that T. repens treated with a WT spore suspension exhibited significantly higher levels of superoxide dismutase (SOD), peroxidase (POD), and catalase (CAT) activity than plants treated with ΔCPE1, while the content of malondialdehyde (MDA) in T. repens treated with the WT was relatively low. These findings indicate that the secreted protein Cpe1 functions as an effector that enhances host resistance during the biocontrol process of T. longibrachiatum SMF2.
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来源期刊
Biological Control
Biological Control 生物-昆虫学
CiteScore
7.40
自引率
7.10%
发文量
220
审稿时长
63 days
期刊介绍: Biological control is an environmentally sound and effective means of reducing or mitigating pests and pest effects through the use of natural enemies. The aim of Biological Control is to promote this science and technology through publication of original research articles and reviews of research and theory. The journal devotes a section to reports on biotechnologies dealing with the elucidation and use of genes or gene products for the enhancement of biological control agents. The journal encompasses biological control of viral, microbial, nematode, insect, mite, weed, and vertebrate pests in agriculture, aquatic, forest, natural resource, stored product, and urban environments. Biological control of arthropod pests of human and domestic animals is also included. Ecological, molecular, and biotechnological approaches to the understanding of biological control are welcome.
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