The Arabidopsis mediator complex subunit 8 regulates oxidative stress responses

Author:

He Huaming12ORCID,Denecker Jordi12ORCID,Van Der Kelen Katrien12ORCID,Willems Patrick12ORCID,Pottie Robin12ORCID,Phua Su Yin12ORCID,Hannah Matthew A3ORCID,Vertommen Didier4ORCID,Van Breusegem Frank12ORCID,Mhamdi Amna12ORCID

Affiliation:

1. Department of Plant Biotechnology and Bioinformatics, Ghent University, 9052 Gent, Belgium

2. Center for Plant Systems Biology, VIB, 9052 Gent, Belgium

3. BASF Belgium Coordination Center, Innovation Center Gent, 9052 Gent, Belgium

4. de Duve Institute, Université Catholique de Louvain, 1200 Brussels, Belgium

Abstract

Abstract Signaling events triggered by hydrogen peroxide (H2O2) regulate plant growth and defense by orchestrating a genome-wide transcriptional reprogramming. However, the specific mechanisms that govern H2O2-dependent gene expression are still poorly understood. Here, we identify the Arabidopsis Mediator complex subunit MED8 as a regulator of H2O2 responses. The introduction of the med8 mutation in a constitutive oxidative stress genetic background (catalase-deficient, cat2) was associated with enhanced activation of the salicylic acid pathway and accelerated cell death. Interestingly, med8 seedlings were more tolerant to oxidative stress generated by the herbicide methyl viologen (MV) and exhibited transcriptional hyperactivation of defense signaling, in particular salicylic acid- and jasmonic acid-related pathways. The med8-triggered tolerance to MV was manipulated by the introduction of secondary mutations in salicylic acid and jasmonic acid pathways. In addition, analysis of the Mediator interactome revealed interactions with components involved in mRNA processing and microRNA biogenesis, hence expanding the role of Mediator beyond transcription. Notably, MED8 interacted with the transcriptional regulator NEGATIVE ON TATA-LESS, NOT2, to control the expression of H2O2-inducible genes and stress responses. Our work establishes MED8 as a component regulating oxidative stress responses and demonstrates that it acts as a negative regulator of H2O2-driven activation of defense gene expression.

Funder

Research Foundation-Flanders

Agency for Innovation by Science and Technology

Bijzonder Onderzoeks Fonds

China Scholarship Council for a PhD fellowship

Publisher

Oxford University Press (OUP)

Subject

Cell Biology,Plant Science

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