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促生长内生真菌诱导霜霉病抗性的免疫调节分子机制

Immunomodulatory Molecular Mechanisms of for Downy Mildews Resistance Induced by Growth-Promoting Endophytic Fungi.

作者信息

Rauf Mamoona, Ur-Rahman Asim, Arif Muhammad, Gul Humaira, Ud-Din Aziz, Hamayun Muhammad, Lee In-Jung

机构信息

Department of Botany, Garden Campus, Abdul Wali Khan University Mardan, Khyber Pakhtunkhwa, Mardan 23200, Pakistan.

Department of Biotechnology, Garden Campus, Abdul Wali Khan University Mardan, Khyber Pakhtunkhwa, Mardan 23200, Pakistan.

出版信息

J Fungi (Basel). 2022 Jun 29;8(7):689. doi: 10.3390/jof8070689.

Abstract

Downy mildew (DM), caused by , is harmful to cucurbits including luffa, with increased shortcomings associated with its control through cultural practices, chemical fungicides, and resistant cultivars; there is a prompt need for an effective, eco-friendly, economical, and safe biocontrol approach. Current research is therefore dealt with the biocontrol of luffa DM1 through the endophytic fungi (EF) consortium. Results revealed that (ThM9) and (TvA1) showed pathogen-dependent inducible metabolic production of squalene and gliotoxins by higher gene expression induction of () and (). Gene expression of lytic enzymes of EF was also induced with subsequently higher enzyme activities upon confrontation with . EF-inoculated luffa seeds showed efficient germination with enhanced growth potential and vigor of seedlings. EF-inoculated plants showed an increased level of growth-promoting hormone GA with higher gene expression of . EF-pre-inoculated seedlings were resistant to DM and showed an increased GSH content and antioxidant enzyme activities (SOD, CAT, POD). The level of MDA, HO REL, and disease severity was reduced by EF. ACC, JA, ABA, and SA were overproduced along with higher gene expression of , , , and . Expression of defense-marker genes (, , , , , , , , , , ) was also modulated in EF-inoculated infected plants. Current research supported the use of EF inoculation to effectively escalate the systemic immunity against DM corresponding to the significant promotion of induced systemic resistance (ISR) and systemic acquired resistance (SAR) responses through initiating the defense mechanism by SA, ABA, ET, and JA biosynthesis and signaling pathways in luffa.

摘要

霜霉病(DM)由[病原体名称未给出]引起,对包括丝瓜在内的葫芦科植物有害,通过栽培措施、化学杀菌剂和抗性品种进行防治存在越来越多的缺点;迫切需要一种有效、生态友好、经济且安全的生物防治方法。因此,当前的研究涉及通过内生真菌(EF)联合体对丝瓜霜霉病1进行生物防治。结果表明,[真菌名称未给出](ThM9)和[真菌名称未给出](TvA1)通过[基因名称未给出]和[基因名称未给出]更高的基因表达诱导,显示出病原体依赖性的角鲨烯和环匹阿尼酸的诱导性代谢产物产生。EF的裂解酶基因表达在与[病原体名称未给出]对峙后也被诱导,随后酶活性更高。接种EF的丝瓜种子显示出高效发芽,幼苗的生长潜力和活力增强。接种EF的植物显示出生长促进激素GA水平升高,[基因名称未给出]的基因表达更高。预先接种EF的幼苗对DM具有抗性,并且GSH含量和抗氧化酶活性(SOD、CAT、POD)增加。EF降低了MDA、HO REL水平和病害严重程度。ACC、JA、ABA和SA大量产生,同时[基因名称未给出]、[基因名称未给出]、[基因名称未给出]和[基因名称未给出]的基因表达更高。在接种EF的受感染植物中,防御标记基因([基因名称未给出]、[基因名称未给出]、[基因名称未给出]、[基因名称未给出]、[基因名称未给出]、[基因名称未给出]、[基因名称未给出]、[基因名称未给出]、[基因名称未给出]、[基因名称未给出]、[基因名称未给出])的表达也受到调节。当前的研究支持通过在丝瓜中启动SA、ABA、ET和JA生物合成及信号通路的防御机制,利用接种EF有效地增强对DM的系统免疫,这对应于对诱导系统抗性(ISR)和系统获得性抗性(SAR)反应的显著促进。

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