Wheat microRNA1023 suppresses invasion of Fusarium graminearum via targeting and silencing FGSG_03101

Fusarium graminearum (F. graminearum) is a destructive pathogenic fungus that causes head blight or scab in wheat, barley and other cereals. To repress pathogen invasion, plants have evolved a sophisticated innate immunity system for pathogen recognition and defense activation. In plant immunity sig...

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Main Authors: Jian Jiao, Du Peng
Format: Article
Language:English
Published: Taylor & Francis Group 2018-01-01
Series:Journal of Plant Interactions
Subjects:
Online Access:http://dx.doi.org/10.1080/17429145.2018.1528512
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spelling doaj-277c65f4cd9f4c22a846b255c0df62cd2020-11-25T02:01:55ZengTaylor & Francis GroupJournal of Plant Interactions1742-91451742-91532018-01-0113151452110.1080/17429145.2018.15285121528512Wheat microRNA1023 suppresses invasion of Fusarium graminearum via targeting and silencing FGSG_03101Jian Jiao0Du Peng1Institutes of Science and Development, Chinese Academy of SciencesInstitutes of Science and Development, Chinese Academy of SciencesFusarium graminearum (F. graminearum) is a destructive pathogenic fungus that causes head blight or scab in wheat, barley and other cereals. To repress pathogen invasion, plants have evolved a sophisticated innate immunity system for pathogen recognition and defense activation. In plant immunity signaling pathways, a lot of small RNAs (sRNAs) have been proved in regulating plant immune response and plant–microbial interaction. In this study, we report that a wheat microRNA (miR1023) can suppress the invasion of F. graminearum by targeting and silencing FGSG_03101 which codes an alpha/beta hydrolase gene in F. graminearum. Transcriptional level evidence indicates that Tae-miR1023 can target FGSG_03101 mRNA and trigger silencing of FGSG_03101 in vivo, and translation level proof shows that Tae-miR1023 can suppress the accumulation of alpha/beta Hydrolase coding by FGSG_03101 in vitro. F. graminearum PH-1 FGSG_03101 mutant strain displays a weakening ability to invasion and PH-1 Argonaute like gene mutant strains with transferred artificial Tae-miR1023 show enhancing relative transcript level of FGSG_03101, compared with PH-1 wild-type strain. Taken together, our results suggest that wheat miR1023 can target and silence fungal FGSG_03101 to suppress invasion of F. graminearum.http://dx.doi.org/10.1080/17429145.2018.1528512MicroRNAwheatFusarium graminearumBSMVgene silencing
collection DOAJ
language English
format Article
sources DOAJ
author Jian Jiao
Du Peng
spellingShingle Jian Jiao
Du Peng
Wheat microRNA1023 suppresses invasion of Fusarium graminearum via targeting and silencing FGSG_03101
Journal of Plant Interactions
MicroRNA
wheat
Fusarium graminearum
BSMV
gene silencing
author_facet Jian Jiao
Du Peng
author_sort Jian Jiao
title Wheat microRNA1023 suppresses invasion of Fusarium graminearum via targeting and silencing FGSG_03101
title_short Wheat microRNA1023 suppresses invasion of Fusarium graminearum via targeting and silencing FGSG_03101
title_full Wheat microRNA1023 suppresses invasion of Fusarium graminearum via targeting and silencing FGSG_03101
title_fullStr Wheat microRNA1023 suppresses invasion of Fusarium graminearum via targeting and silencing FGSG_03101
title_full_unstemmed Wheat microRNA1023 suppresses invasion of Fusarium graminearum via targeting and silencing FGSG_03101
title_sort wheat microrna1023 suppresses invasion of fusarium graminearum via targeting and silencing fgsg_03101
publisher Taylor & Francis Group
series Journal of Plant Interactions
issn 1742-9145
1742-9153
publishDate 2018-01-01
description Fusarium graminearum (F. graminearum) is a destructive pathogenic fungus that causes head blight or scab in wheat, barley and other cereals. To repress pathogen invasion, plants have evolved a sophisticated innate immunity system for pathogen recognition and defense activation. In plant immunity signaling pathways, a lot of small RNAs (sRNAs) have been proved in regulating plant immune response and plant–microbial interaction. In this study, we report that a wheat microRNA (miR1023) can suppress the invasion of F. graminearum by targeting and silencing FGSG_03101 which codes an alpha/beta hydrolase gene in F. graminearum. Transcriptional level evidence indicates that Tae-miR1023 can target FGSG_03101 mRNA and trigger silencing of FGSG_03101 in vivo, and translation level proof shows that Tae-miR1023 can suppress the accumulation of alpha/beta Hydrolase coding by FGSG_03101 in vitro. F. graminearum PH-1 FGSG_03101 mutant strain displays a weakening ability to invasion and PH-1 Argonaute like gene mutant strains with transferred artificial Tae-miR1023 show enhancing relative transcript level of FGSG_03101, compared with PH-1 wild-type strain. Taken together, our results suggest that wheat miR1023 can target and silence fungal FGSG_03101 to suppress invasion of F. graminearum.
topic MicroRNA
wheat
Fusarium graminearum
BSMV
gene silencing
url http://dx.doi.org/10.1080/17429145.2018.1528512
work_keys_str_mv AT jianjiao wheatmicrorna1023suppressesinvasionoffusariumgraminearumviatargetingandsilencingfgsg03101
AT dupeng wheatmicrorna1023suppressesinvasionoffusariumgraminearumviatargetingandsilencingfgsg03101
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