A CsEIL3‐CsARN6.1 module promotes waterlogging‐triggered adventitious root formation in cucumber by activating the expression of CsPrx5

Author:

Xu Xuewen12,Liu Mengyao1,Hu Qiming1,Yan Wenjing1,Pan Jiawei1,Yan Yongming1,Chen Xuehao123ORCID

Affiliation:

1. School of Horticulture and Landscape Architecture Yangzhou University Yangzhou Jiangsu 225009 China

2. Joint International Research Laboratory of Agriculture and Agri‐Product Safety Yangzhou University Yangzhou 225009 China

3. Jiangsu Key Laboratory for Horticultural Crop Genetic Improvement Institute of Vegetable Crops, Jiangsu Academy of Agricultural Sciences Nanjing Jiangsu 210014 China

Abstract

SUMMARYThe formation of adventitious roots (ARs) derived from hypocotyl is the most important morphological adaptation to waterlogging stress in Cucumis sativus (cucumber). Our previous study showed that cucumbers with the gene CsARN6.1, encoding an AAA ATPase domain‐containing protein, were more tolerant to waterlogging through increased AR formation. However, the apparent function of CsARN6.1 remained unknown. Here, we showed that the CsARN6.1 signal was predominantly observed throughout the cambium of hypocotyls, where de novo AR primordia are formed upon waterlogging treatment. The silencing of CsARN6.1 expression by virus‐induced gene silencing and CRISPR/Cas9 technologies adversely affects the formation of ARs under conditions of waterlogging. Waterlogging treatment significantly induced ethylene production, thus upregulating CsEIL3 expression, which encodes a putative transcription factor involved in ethylene signaling. Furthermore, yeast one‐hybrid, electrophoretic mobility assay and transient expression analyses showed that CsEIL3 binds directly to the CsARN6.1 promoter to initiate its expression. CsARN6.1 was found to interact with CsPrx5, a waterlogging‐responsive class‐III peroxidase that enhanced H2O2 production and increased AR formation. These data provide insights into understanding the molecular mechanisms of AAA ATPase domain‐containing protein and uncover a molecular mechanism that links ethylene signaling with the formation of ARs triggered by waterlogging.

Funder

National Natural Science Foundation of China

Ministry of Higher Education and Scientific Research

Publisher

Wiley

Subject

Cell Biology,Plant Science,Genetics

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