Science Advances

The RhMPK3-RhLOB41-RhWRKY9 module orchestrates ethylene-induced petal abscission via dual control of ROS homeostasis in rose

2026-07-17

Organ abscission represents a critical adaptive strategy for plant survival, yet the post-translational mechanisms ensuring its irreversible remain poorly understood. Here, we unveil a signaling module, MITOGEN-ACTIVATED PROTEIN KINASE 3 (RhMPK3)-LATERAL ORGAN BOUNDARIES DOMAIN 41 (RhLOB41)-WRKY DNA-BINDING PROTEIN 9 (RhWRKY9), that gates ethylene-induced petal abscission in rose ( Rosa hybrida ) by orchestrating reactive oxygen species (ROS) homeostasis. We demonstrate that the transcription factor RhWRKY9 acts as a dual-function regulator, concurrently activating ROS production via activation of RESPIRATORY BURST OXIDASE HOMOLOGUE D ( RhRBOHD ) and suppressing scavenging via repression of CATALASE 2 ( RhCAT2 ), thereby generating a ROS burst that locks abscission progression. Ethylene primes this process by destabilizing RhLOB41, a transcriptional repressor of RhWRKY9 , through RhMPK3-mediated phosphorylation at Ser30. Phosphorylation creates a phosphodegron that targets RhLOB41 for autophagy-dependent degradation. Our findings redefine ROS as decisive executors of abscission and establish bidirectional ROS control as a paradigm for irreversible developmental transitions.

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DOI https://doi.org/10.1126/sciadv.adu6821