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Maize phenylalanine ammonia-lyases contribute to resistance to Sugarcane mosaic virus infection, most likely through positive regulation of salicylic acid accumulation.

Accepted version
Peer-reviewed

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Article

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Authors

Jiang, Tong 
Du, Kaitong 
Chen, Hui 
Cao, Yanyong 

Abstract

Sugarcane mosaic virus (SCMV) is a pathogen of worldwide importance that causes dwarf mosaic disease on maize (Zea mays). Until now, few maize genes/proteins have been shown to be involved in resistance to SCMV. In this study, we characterized the role of maize phenylalanine ammonia-lyases (ZmPALs) in accumulation of the defence signal salicylic acid (SA) and in resistance to virus infection. SCMV infection significantly increased SA accumulation and expression of SA-responsive pathogenesis-related protein genes (PRs). Interestingly, exogenous SA treatment decreased SCMV accumulation and enhanced resistance. Both reverse transcription-coupled quantitative PCR and RNA-Seq data confirmed that expression levels of at least four ZmPAL genes were significantly up-regulated upon SCMV infection. Knockdown of ZmPAL expression led to enhanced SCMV infection symptom severity and virus multiplication, and simultaneously resulted in decreased SA accumulation and PR gene expression. Intriguingly, application of exogenous SA to SCMV-infected ZmPAL-silenced maize plants decreased SCMV accumulation, showing that ZmPALs are required for SA-mediated resistance to SCMV infection. In addition, lignin measurements and metabolomic analysis showed that ZmPALs are also involved in SCMV-induced lignin accumulation and synthesis of other secondary metabolites via the phenylpropanoid pathway. In summary, our results indicate that ZmPALs are required for SA accumulation in maize and are involved in resistance to virus infection by limiting virus accumulation and moderating symptom severity.

Description

Keywords

Sugarcane mosaic virus, ligin, phenylalanine ammonia-lyase, phenylpropanoid biosynthesis, resistance, salicylic acid, virus-induced gene silencing, Gene Expression Regulation, Plant, Gene Silencing, Phenylalanine Ammonia-Lyase, Plant Diseases, Plant Proteins, Potyvirus, Salicylic Acid, Zea mays

Journal Title

Mol Plant Pathol

Conference Name

Journal ISSN

1464-6722
1364-3703

Volume Title

20

Publisher

Wiley

Rights

All rights reserved