RtNAC055 promotes drought tolerance via a stomatal closure pathway linked to methyl jasmonate/hydrogen peroxide signaling in Reaumuria trigyna

Author:

Ma Binjie123ORCID,Zhang Jie1,Guo Shuyu1,Xie Xinlei1,Yan Lang23,Chen Huijing23,Zhang Hongyi1,Bu Xiangqi1,Zheng Linlin1,Wang Yingchun1

Affiliation:

1. Inner Mongolia University Key Laboratory of Herbage and Endemic Crop Biology, and College of Life Sciences, , Hohhot 010070, China

2. Chinese Academy of Agricultural Sciences (CAAS) Institute of Crop Sciences (ICS), , Beijing 100081, China

3. Chinese Academy of Agricultural Sciences Hainan Yazhou Bay Seed Laboratory/National Nanfan Research Institute (Sanya), , Sanya 572024, Hainan Province, China

Abstract

Abstract The stomata regulate CO2 uptake and efficient water usage, thereby promoting drought stress tolerance. NAC proteins (NAM, ATAF1/2, and CUC2) participate in plant reactions following drought stress, but the molecular mechanisms underlying NAC-mediated regulation of stomatal movement are unclear. In this study, a novel NAC gene from Reaumuria trigyna, RtNAC055, was found to enhance drought tolerance via a stomatal closure pathway. It was regulated by RtMYC2 and integrated with jasmonic acid signaling and was predominantly expressed in stomata and root. The suppression of RtNAC055 could improve jasmonic acid and H2O2 production and increase the drought tolerance of transgenic R. trigyna callus. Ectopic expression of RtNAC055 in the Arabidopsis atnac055 mutant rescued its drought-sensitive phenotype by decreasing stomatal aperture. Under drought stress, overexpression of RtNAC055 in poplar promoted ROS (H2O2) accumulation in stomata, which accelerated stomatal closure and maintained a high photosynthetic rate. Drought upregulated the expression of PtRbohD/F, PtP5CS2, and PtDREB1.1, as well as antioxidant enzyme activities in heterologous expression poplars. RtNAC055 promoted H2O2 production in guard cells by directly binding to the promoter of RtRbohE, thus regulating stomatal closure. The stress-related genes RtDREB1.1/P5CS1 were directly regulated by RtNAC055. These results indicate that RtNAC055 regulates stomatal closure by maintaining the balance between the antioxidant system and H2O2 level, reducing the transpiration rate and water loss, and improving photosynthetic efficiency and drought resistance.

Publisher

Oxford University Press (OUP)

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