S ‐nitrosylation of SlMYB86 within a SlGRF4–SlMYB86–SlGSNOR module enhances nitrate tolerance in tomato

), in protected agricultural systems has led to secondary soil salinization, posing a global threat to crop yield and quality. The regulatory network underlying tolerance to excess nitrate in tomato (Solanum lycopersicum) remains largely unexplored. Here, we report that S-nitrosoglutathione reductase (GSNOR) positively regulates nitrate tolerance by reducing nitric oxide (NO) and S‑nitrosothiol (SNO) accumulation. We then identified the transcription factor SlMYB86 as a direct upstream activator of SlGSNOR, and further found that nitrate‑induced NO triggers S‑nitrosylation of SlMYB86 at Cys68 and Cys263. This post‑translational modification enhances SlMYB86 protein stability by blocking 26S proteasome‑mediated degradation, while also increasing its DNA‑binding affinity and the transcriptional activation of SlGSNOR, thereby enhancing nitrate tolerance. Moreover, Growth-regulating factor 4 (SlGRF4) functions as an upstream regulator of this pathway, activating SlMYB86 expression under nitrate stress and thereby enhancing tomato tolerance to excessive nitrate stress. Collectively, these findings establish a SlGRF4-SlMYB86-SlGSNOR module in which SlMYB86 S‑nitrosylation establishes a negative feedback loop that couples NO signaling to NO clearance, maintaining redox homeostasis and promoting nitrate tolerance in tomato.

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Publication Details

Journal
Journal of Integrative Plant Biology
Published
2026-09-30
DOI
https://doi.org/10.1111/jipb.70408
Primary Topic
Plant Stress Responses and Tolerance
Type
article
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article

S ‐nitrosylation of SlMYB86 within a SlGRF4–SlMYB86–SlGSNOR module enhances nitrate tolerance in tomato

Kunzhi Li, Lamei Zheng, Senlin Zeng, Xudong Sun et al.
Journal of Integrative Plant Biology
Plant Stress Responses and Tolerance
article

S ‐nitrosylation of SlMYB86 within a SlGRF4–SlMYB86–SlGSNOR module enhances nitrate tolerance in tomato

Kunzhi Li, Lamei Zheng, Senlin Zeng, Xudong Sun, Xu Li, Yang Feng, Huini Xu, Juan Du, Yulong Yang, Tao LiuFu, Qinrong Hua, Jiali Zhai, Sodmergen
article en

Abstract

), in protected agricultural systems has led to secondary soil salinization, posing a global threat to crop yield and quality. The regulatory network underlying tolerance to excess nitrate in tomato (Solanum lycopersicum) remains largely unexplored. Here, we report that S-nitrosoglutathione reductase (GSNOR) positively regulates nitrate tolerance by reducing nitric oxide (NO) and S‑nitrosothiol (SNO) accumulation. We then identified the transcription factor SlMYB86 as a direct upstream activator of SlGSNOR, and further found that nitrate‑induced NO triggers S‑nitrosylation of SlMYB86 at Cys68 and Cys263. This post‑translational modification enhances SlMYB86 protein stability by blocking 26S proteasome‑mediated degradation, while also increasing its DNA‑binding affinity and the transcriptional activation of SlGSNOR, thereby enhancing nitrate tolerance. Moreover, Growth-regulating factor 4 (SlGRF4) functions as an upstream regulator of this pathway, activating SlMYB86 expression under nitrate stress and thereby enhancing tomato tolerance to excessive nitrate stress. Collectively, these findings establish a SlGRF4-SlMYB86-SlGSNOR module in which SlMYB86 S‑nitrosylation establishes a negative feedback loop that couples NO signaling to NO clearance, maintaining redox homeostasis and promoting nitrate tolerance in tomato.

Journal of Integrative Plant Biology
Kunming University of Science and Technology (CN), Kunming Institute of Botany (CN), Kunming University (CN)
Zero hunger
Openalex Percentile: Top 14%
Plant Stress Responses and Tolerance
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