The unique sweet potato NAC transcription factor IbNAC3 modulates combined salt and drought stresses

Author:

Meng Xiaoqing12,Liu Siyuan12,Zhang Chengbin12,He Junna3ORCID,Ma Daifu4,Wang Xin4ORCID,Dong Tingting12,Guo Fen12,Cai Jing5ORCID,Long Tiandan6,Li Zongyun12ORCID,Zhu Mingku12ORCID

Affiliation:

1. Institute of Integrative Plant Biology, School of Life Sciences, Jiangsu Normal University , Xuzhou, 221116, China

2. Jiangsu Key Laboratory of Phylogenomics and Comparative Genomics, School of Life Science, Jiangsu Normal University , Xuzhou, 221116, China

3. Beijing Key Laboratory of Development and Quality Control of Ornamental Crops, College of Horticulture, China Agricultural University , Beijing, 100193, China

4. Jiangsu Xuzhou Sweetpotato Research Center, Chinese Academy of Agricultural Sciences (CAAS) , Xuzhou, 221131, China

5. Department of Applied Biology, College of Agriculture and Life Sciences, Chonnam National University , Gwangju, 61186, South Korea

6. State Key Laboratory of Crop Gene Exploration and Utilization in Southwest, Sichuan Agricultural University , Chengdu, 611130, China

Abstract

Abstract Plants often simultaneously experience combined stresses rather than a single stress, causing more serious damage, but the underlying mechanisms remain unknown. Here, we identified the stress-induced IbNAC3 from sweet potato (Ipomoea batatas) as a nucleus-localized transcription activator. IbNAC3 contains a unique activation domain whose MKD sequence confers transactivation activities to multiple other TFs and is essential for the activated expression of downstream target genes. Ectopic expression of IbNAC3 conferred tolerance to single and combined salt and drought stresses in Arabidopsis (Arabidopsis thaliana), and a group of NAM, ATAF1/2, and CUC2 (NAC) TFs, including ANAC011, ANAC072, ANAC083, ANAC100, and NAP, interacted with IbNAC3, and the specific domains responsible for each interaction varied. Intriguingly, IbNAC3 repressed the interaction among the five NACs, and knockout or mutation of ANAC011 and ANAC072 dramatically impaired combined stress tolerance. IbNAC3-ANAC072 and IbNAC3-NAP modules synergistically activated the MICROTUBULE-RELATED E3 LIGASE57 (MREL57) gene. Consistently, mutation of MREL57 and overexpression of WAVE-DAM-PENED2-LIKE7, encoding a target protein of MREL57, both remarkably impaired combined stress tolerance. Moreover, transgenic plants displayed abscisic acid (ABA) hyposensitivity by directly promoting the transcription of ENHANCED RESPONSE TO ABA 1, a key negative regulator of ABA signaling. The data unravel the unique IbNAC3 TF functions as a pivotal component in combined stress tolerance by integrating multiple regulatory events and ubiquitin pathways, which is essential for developing high-tolerant plants in natural environments.

Funder

National Natural Science Foundation of China

Xuzhou Science and Technology Planning Project

Natural science fund for colleges and universities in Jiangsu Province

Priority Academic Program Development of Jiangsu Higher Education Institutions

Publisher

Oxford University Press (OUP)

Subject

Plant Science,Genetics,Physiology

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