Literature DB >> 34215692

Loss of function of a DMR6 ortholog in tomato confers broad-spectrum disease resistance.

Daniela Paula de Toledo Thomazella1,2, Kyungyong Seong1, Rebecca Mackelprang1, Douglas Dahlbeck1,2, Yu Geng1, Upinder S Gill3, Tiancong Qi1,4, Julie Pham2, Priscila Giuseppe5, Clara Youngna Lee1, Arturo Ortega1,2, Myeong-Je Cho2, Samuel F Hutton6, Brian Staskawicz7,2.   

Abstract

Plant diseases are among the major causes of crop yield losses around the world. To confer disease resistance, conventional breeding relies on the deployment of single resistance (R) genes. However, this strategy has been easily overcome by constantly evolving pathogens. Disabling susceptibility (S) genes is a promising alternative to R genes in breeding programs, as it usually offers durable and broad-spectrum disease resistance. In Arabidopsis, the S gene DMR6 (AtDMR6) encodes an enzyme identified as a susceptibility factor to bacterial and oomycete pathogens. Here, we present a model-to-crop translational work in which we characterize two AtDMR6 orthologs in tomato, SlDMR6-1 and SlDMR6-2. We show that SlDMR6-1, but not SlDMR6-2, is up-regulated by pathogen infection. In agreement, Sldmr6-1 mutants display enhanced resistance against different classes of pathogens, such as bacteria, oomycete, and fungi. Notably, disease resistance correlates with increased salicylic acid (SA) levels and transcriptional activation of immune responses. Furthermore, we demonstrate that SlDMR6-1 and SlDMR6-2 display SA-5 hydroxylase activity, thus contributing to the elucidation of the enzymatic function of DMR6. We then propose that SlDMR6 duplication in tomato resulted in subsequent subfunctionalization, in which SlDMR6-2 specialized in balancing SA levels in flowers/fruits, while SlDMR6-1 conserved the ability to fine-tune SA levels during pathogen infection of the plant vegetative tissues. Overall, this work not only corroborates a mechanism underlying SA homeostasis in plants, but also presents a promising strategy for engineering broad-spectrum and durable disease resistance in crops.

Entities:  

Keywords:  CRISPR/Cas9 technology; DMR6; crop engineering; disease resistance; salicylic acid

Mesh:

Substances:

Year:  2021        PMID: 34215692      PMCID: PMC8271637          DOI: 10.1073/pnas.2026152118

Source DB:  PubMed          Journal:  Proc Natl Acad Sci U S A        ISSN: 0027-8424            Impact factor:   11.205


  42 in total

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8.  S5H/DMR6 Encodes a Salicylic Acid 5-Hydroxylase That Fine-Tunes Salicylic Acid Homeostasis.

Authors:  Yanjun Zhang; Li Zhao; Jiangzhe Zhao; Yujia Li; Jinbin Wang; Rong Guo; Susheng Gan; Chang-Jun Liu; Kewei Zhang
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