Skip to content
Open access

The ABI4-SEN1-TRXm1 module integrates ABA and H2S signaling to coordinate redox homeostasis, senescence and plant immunity.

Aug 2026 · Plant Communications · pp. 102082 · 0 citations
Medicine

TL;DR

A regulatory triad in which the ABI4-SEN1-TRXm1 module integrates ABA and H2S signaling to dynamically balance redox homeostasis is proposed, revealing a molecular switch that fine-tunes plant responses to biotic stress.

Abstract

Plants undergo metabolic reprogramming, including senescence, in response to pathogen attack. While senescence-associated genes (SAGs) are critical to this process, the genes that integrate plant defense and senescence processes remain largely unknown. Here, we identified and characterized SENESCENCE ASSOCIATED GENE 1 (SEN1) as a central regulator that coordinates these processes in Arabidopsis. SEN1 is transcriptionally activated by abscisic acid (ABA) via its key component, ABA INSENSITIVE 4 (ABI4). SEN1 interacts with TRXm1, and the interaction modulates sulfotransferase activity of SEN1. Disruption of sen1 and trxm1 mutants reduces reactive oxygen species (ROS), alters the glutathione redox balance (GSH/GSSG), increases susceptibility to pathogens, and delays senescence. Hydrogen sulfide (H2S), a product of SEN1-mediated sulfur transfer, amplifies the module by inducing ABI4 expression. Notably, H2S enhances ABI4 transcriptional activity via persulfuration at Cys250, establishing a self-reinforcing loop. Overall, we propose a regulatory triad in which the ABI4-SEN1-TRXm1 module integrates ABA and H2S signaling to dynamically balance redox homeostasis. This study reveals a molecular switch that fine-tunes plant responses to biotic stress.

Read PDF

Similar papers

Open access Sep 2026

The ADF4-RCAR12 module regulates ABA-mediated drought tolerance in Arabidopsis

Introduction Drought is one of the most severe abiotic stresses limiting crop productivity, and abscisic acid (ABA)-induced stomatal closure is a key mechanism underlying plant drought resistance. Although ABA signaling has been extensively characterized in Arabidopsis thaliana, the role and regulatory mechanisms of mi...

Xiao-Yi Li, Yi-Han Feng, Jia-Han He et al. · 0 citations
Sep 2026

A non-canonical DWARF3-OsCOX11-mediated mitochondrial ROS homeostasis pathway acts in parallel with core strigolactone signaling to promote rice blast resistance.

Strigolactones (SLs) are a class of plant hormones with multifaceted roles in rice (Oryza sativa L.) growth and development. The F-box protein DWARF3 (D3) is a core component of the SL signalling pathway, coupling SL perception to the downstream responses. However, whether D3 also contributes to rice immunity and how i...

Wei-Jun Cui, Xu-Ming Wang, Xiu-Li Liu et al. · 0 citations
Open access Aug 2026

Abscisic acid–regulated stability of CmABF1 and CmBRM modulates salt tolerance in chrysanthemum via epigenetic regulation of CmHSFA4

It is shown that salt stress–induced ABA accumulation up-regulates Heat Shock Factor 4 (CmHSFA4), a gene that is known to enhance chrysanthemum salt tolerance, and an ABA-SnRK2.2-ABF1/BRM signaling module that integrates phosphorylation-dependent protein stabilization and degradation with histone methylation dynamics t...

Xin-Hui Wang, Han Wang, Hong-Yu Wei et al. · 0 citations
Open access Sep 2026

AtMPK1/AtMPK2 Interact with AtVQ25 to Enhance Its Protein Stability and Coordinately Regulate Salicylic Acid-Mediated Leaf Senescence

Leaf senescence is a pivotal developmental program in plants, precisely regulated by diverse signals including salicylic acid (SA). The Arabidopsis VQ protein AtVQ25 has been previously characterized as a positive regulator of SA-mediated leaf senescence, functioning through interaction with AtWRKY53 to relieve the tra...

Qi Tan, Meng-Wei Zhang, Yu-Jia Song et al. · 0 citations
Open access Aug 2026

The C2H2-type zinc finger protein ZOS202 regulates leaf senescence in rice by targeting senescence-associated transcription factors and ROS homoeostasis.

Leaf senescence is a tightly regulated developmental process orchestrated by multiple transcription factor (TF) families. Although C2H2-type zinc finger proteins are known to participate in various aspects of plant growth and abiotic stress responses, their specific role in regulating leaf senescence remains poorly und...

Wei-Wei Zou, Zhihui Gao, Sudi Li et al. · 0 citations
Aug 2026

TGA6 directly activates ABF2 and ABF3 to promote leaf senescence in Arabidopsis thaliana.

Leaf senescence is a tightly regulated developmental process governed by a complex transcriptional network. Although the TGACG motif-binding (TGA) family of basic leucine zipper (bZIP) transcription factors are well-characterized regulators of plant defense responses, their roles in leaf senescence remain poorly unders...

Uzma Fazal, A. Zada, Ting Jia et al. · 0 citations

We use cookies to run the site and, with your consent, for analytics and to show ads. See our Cookie Policy.