The Mitogen‐Activated Protein Kinase GhNTF3 Modulates the Arbuscular Mycorrhizal Symbiosis‐Immunity Trade‐Off in Cotton by Regulating Salicylic Acid Biosynthesis

Plant immunity is essential for survival against pathogen invasion. However, enhanced immune activation can restrict arbuscular mycorrhizal (AM) fungal colonization. Therefore, plants must finely balance immunity and symbiosis to optimize fitness, but the key regulators underlying this trade-off remain unclear. Here, we identify a novel mitogen-activated protein kinase, GhNTF3, as a central regulator of the AM symbiosis-immunity balance. Knockdown of GhNTF3 promotes AM symbiosis but decreases Verticillium wilt resistance in cotton. GhNTF3 overexpression suppresses AM symbiosis. GhNTF3 interacts with GhWAK13, a previously characterized wall-associated kinase that is specifically induced by AM symbiosis, at the plasma membrane. Genetic evidence indicates that GhWAK13 functions in association with GhNTF3 during AM symbiosis. GhWAK13 negatively regulates salicylic acid (SA) accumulation, whereas GhNTF3 positively regulates SA accumulation during AM symbiosis. Knockdown of SA biosynthesis genes or the SA receptor gene GhNPR1 significantly enhanced AM fungal colonization, whereas exogenous SA application strongly inhibited symbiosis. Moreover, GhNTF3 interacts with GhJAZ6 in the nucleus to enhance Verticillium wilt resistance, potentially through SA accumulation in cotton. Collectively, our findings identify a molecular module in which the interplay between GhNTF3 and GhWAK13 dynamically balances AM symbiosis and Verticillium wilt resistance through antagonistic regulation of the SA signaling pathway.

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Publication Details

Journal
Advanced Science
Published
2026-08-25
DOI
https://doi.org/10.1002/advs.77315
Primary Topic
Mycorrhizal Fungi and Plant Interactions
Type
article
Field-Weighted Citation Impact
0.00

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article

The Mitogen‐Activated Protein Kinase GhNTF3 Modulates the Arbuscular Mycorrhizal Symbiosis‐Immunity Trade‐Off in Cotton by Regulating Salicylic Acid Biosynthesis

Ruojun Liu, Kai Cheng, Jihang Li, Jingshang Wen et al.
Advanced Science
Mycorrhizal Fungi and Plant Interactions
article

The Mitogen‐Activated Protein Kinase GhNTF3 Modulates the Arbuscular Mycorrhizal Symbiosis‐Immunity Trade‐Off in Cotton by Regulating Salicylic Acid Biosynthesis

Ruojun Liu, Kai Cheng, Jihang Li, Jingshang Wen, Junli Zhang, Yiming He, Xiangyu Zhang, Xiao Zhang, Meina Feng, Qian Liu, Shuangjie Jia
article en

Abstract

Plant immunity is essential for survival against pathogen invasion. However, enhanced immune activation can restrict arbuscular mycorrhizal (AM) fungal colonization. Therefore, plants must finely balance immunity and symbiosis to optimize fitness, but the key regulators underlying this trade-off remain unclear. Here, we identify a novel mitogen-activated protein kinase, GhNTF3, as a central regulator of the AM symbiosis-immunity balance. Knockdown of GhNTF3 promotes AM symbiosis but decreases Verticillium wilt resistance in cotton. GhNTF3 overexpression suppresses AM symbiosis. GhNTF3 interacts with GhWAK13, a previously characterized wall-associated kinase that is specifically induced by AM symbiosis, at the plasma membrane. Genetic evidence indicates that GhWAK13 functions in association with GhNTF3 during AM symbiosis. GhWAK13 negatively regulates salicylic acid (SA) accumulation, whereas GhNTF3 positively regulates SA accumulation during AM symbiosis. Knockdown of SA biosynthesis genes or the SA receptor gene GhNPR1 significantly enhanced AM fungal colonization, whereas exogenous SA application strongly inhibited symbiosis. Moreover, GhNTF3 interacts with GhJAZ6 in the nucleus to enhance Verticillium wilt resistance, potentially through SA accumulation in cotton. Collectively, our findings identify a molecular module in which the interplay between GhNTF3 and GhWAK13 dynamically balances AM symbiosis and Verticillium wilt resistance through antagonistic regulation of the SA signaling pathway.

Advanced Science
Henan University (CN), Henan Academy of Agricultural Sciences (CN), Henan Agricultural University (CN)
National Natural Science Foundation of China, Huazhong Agricultural University
Openalex Percentile: Top 12%
Mycorrhizal Fungi and Plant Interactions
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