4.7 Article

Dehydration-Induced WRKY Transcriptional Factor MfWRKY70 of Myrothamnus flabellifolia Enhanced Drought and Salinity Tolerance in Arabidopsis

Journal

BIOMOLECULES
Volume 11, Issue 2, Pages -

Publisher

MDPI
DOI: 10.3390/biom11020327

Keywords

Myrothamnus flabellifolia; resurrection plant; drought tolerance; abiotic stress; WRKY transcription factor

Funding

  1. International Cooperation Project - Science and Technology Department of Sichuan Province, China [2018HH0078]

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The study revealed that MfWRKY70 plays a crucial role in enhancing drought, osmotic, and salinity stress tolerance in Arabidopsis plants by promoting root growth, water retention, and antioxidant enzyme system, as well as maintaining ROS homeostasis and membrane-lipid stability under stress conditions. Additionally, the overexpression of MfWRKY70 positively regulated the expression of stress-associated genes in Arabidopsis, suggesting that MfWRKY70 may act as a potential gene for improving drought and salinity tolerance in plants.
The resurrection plants Myrothamnus flabellifolia can survive long term severe drought and desiccation conditions and soon recover after rewatering. However, few genes related to such excellent drought tolerance and underlying molecular mechanism have been excavated. WRKY transcription factors play critical roles in biotic and abiotic stress signaling, in which WRKY70 functions as a positive regulator in biotic stress response but a negative regulator in abiotic stress signaling in Arabidopsis and some other plant species. In the present study, the functions of a dehydration-induced MfWRKY70 of M. flabellifolia participating was investigated in the model plant Arabidopsis. Our results indicated that MfWRKY70 was localized in the nucleus and could significantly increase tolerance to drought, osmotic, and salinity stresses by promoting root growth and water retention, as well as enhancing the antioxidant enzyme system and maintaining reactive oxygen species (ROS) homeostasis and membrane-lipid stability under stressful conditions. Moreover, the expression of stress-associated genes (P5CS, NCED3 and RD29A) was positively regulated in the overexpression of MfWRKY70 Arabidopsis. We proposed that MfWRKY70 may function as a positive regulator for abiotic stress responses and can be considered as a potential gene for improvement of drought and salinity tolerance in plants.

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