Ethylene signaling increases reactive oxygen species accumulation to drive root hair initiation in Arabidopsis

Author:

Martin R. Emily1ORCID,Marzol Eliana2ORCID,Estevez Jose M.23ORCID,Muday Gloria K.1ORCID

Affiliation:

1. Wake Forest University 1 Departments of Biology and Biochemistry and the Center for Molecular Signaling , , 1834 Wake Forest Road, Winston-Salem, NC 27109, USA

2. Fundación Instituto Leloir and IIBBA-CONICET 2 , Av. Patricias Argentinas 435, Buenos Aires, Argentina , C1405BWE

3. Centro de Biotecnología Vegetal, Facultad de Ciencias de la Vida, Universidad Andrés Bello Santiago, Santiago, Chile and ANID - Millennium Science Initiative Program - Millennium Institute for Integrative Biology (iBio) and Millennium Nucleus for the Development of Super Adaptable Plants (MN-SAP) 3 , Santiago , Chile, 8370146

Abstract

ABSTRACT Root hair initiation is a highly regulated aspect of root development. The plant hormone ethylene and its precursor, 1-amino-cyclopropane-1-carboxylic acid, induce formation and elongation of root hairs. Using confocal microscopy paired with redox biosensors and dyes, we demonstrated that treatments that elevate ethylene levels lead to increased hydrogen peroxide accumulation in hair cells prior to root hair formation. In the ethylene-insensitive receptor mutant, etr1-3, and the signaling double mutant, ein3eil1, the increase in root hair number or reactive oxygen species (ROS) accumulation after ACC and ethylene treatment was lost. Conversely, etr1-7, a constitutive ethylene signaling receptor mutant, has increased root hair formation and ROS accumulation, similar to ethylene-treated Col-0 seedlings. The caprice and werewolf transcription factor mutants have decreased and elevated ROS levels, respectively, which are correlated with levels of root hair initiation. The rhd2-6 mutant, with a defect in the gene encoding the ROS-synthesizing RESPIRATORY BURST OXIDASE HOMOLOG C (RBOHC), and the prx44-2 mutant, which is defective in a class III peroxidase, showed impaired ethylene-dependent ROS synthesis and root hair formation via EIN3EIL1-dependent transcriptional regulation. Together, these results indicate that ethylene increases ROS accumulation through RBOHC and PRX44 to drive root hair formation.

Funder

National Science Foundation

U.S. Department of Agriculture

Agencia Nacional de Promoción Científica y Tecnológica

Agencia Nacional de Investigación y Desarrollo

Fondo Nacional de Desarrollo Científico y Tecnológico

Publisher

The Company of Biologists

Subject

Developmental Biology,Molecular Biology

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