Allelic variation in transcription factor PtoWRKY68 contributes to drought tolerance in Populus

Author:

Fang Yuanyuan12ORCID,Wang Dan12ORCID,Xiao Liang12ORCID,Quan Mingyang12ORCID,Qi Weina12ORCID,Song Fangyuan12ORCID,Zhou Jiaxuan12ORCID,Liu Xin3,Qin Shitong12ORCID,Du Qingzhang12ORCID,Liu Qing4ORCID,El-Kassaby Yousry A5ORCID,Zhang Deqiang12ORCID

Affiliation:

1. National Engineering Research Center of Tree Breeding and Ecological Restoration, College of Biological Sciences and Technology, Beijing Forestry University , No. 35, Qinghua East Road, Beijing 100083, People’s Republic of China

2. Key Laboratory of Genetics and Breeding in Forest Trees and Ornamental Plants, Ministry of Education, College of Biological Sciences and Technology, Beijing Forestry University , No. 35, Qinghua East Road, Beijing 100083, People’s Republic of China

3. Institute of Forestry and Pomology, Beijing Academy of Agriculture and Forestry Sciences , Beijing 100093, People’s Republic of China

4. The Institute of Agriculture and Food Research, CSIRO Agriculture and Food , Black Mountain, Canberra ACT 2601 , Australia

5. Department of Forest and Conservation Sciences, Faculty of Forestry, Forest Sciences Centre, University of British Columbia , Vancouver, BC V6T 1Z4 , Canada

Abstract

Abstract Drought stress limits woody species productivity and influences tree distribution. However, dissecting the molecular mechanisms that underpin drought responses in forest trees can be challenging due to trait complexity. Here, using a panel of 300 Chinese white poplar (Populus tomentosa) accessions collected from different geographical climatic regions in China, we performed a genome-wide association study (GWAS) on seven drought-related traits and identified PtoWRKY68 as a candidate gene involved in the response to drought stress. A 12-bp insertion and/or deletion and three nonsynonymous variants in the PtoWRKY68 coding sequence categorized natural populations of P. tomentosa into two haplotype groups, PtoWRKY68hap1 and PtoWRKY68hap2. The allelic variation in these two PtoWRKY68 haplotypes conferred differential transcriptional regulatory activities and binding to the promoters of downstream abscisic acid (ABA) efflux and signaling genes. Overexpression of PtoWRKY68hap1 and PtoWRKY68hap2 in Arabidopsis (Arabidopsis thaliana) ameliorated the drought tolerance of two transgenic lines and increased ABA content by 42.7% and 14.3% compared to wild-type plants, respectively. Notably, PtoWRKY68hap1 (associated with drought tolerance) is ubiquitous in accessions in water-deficient environments, whereas the drought-sensitive allele PtoWRKY68hap2 is widely distributed in well-watered regions, consistent with the trends in local precipitation, suggesting that these alleles correspond to geographical adaptation in Populus. Moreover, quantitative trait loci analysis and an electrophoretic mobility shift assay showed that SHORT VEGETATIVE PHASE (PtoSVP.3) positively regulates the expression of PtoWRKY68 under drought stress. We propose a drought tolerance regulatory module in which PtoWRKY68 modulates ABA signaling and accumulation, providing insight into the genetic basis of drought tolerance in trees. Our findings will facilitate molecular breeding to improve the drought tolerance of forest trees.

Funder

Major Project of Agricultural Biological Breeding

Project of National Natural Science Foundation of China

Project funded by China Postdoctoral Science Foundation

Publisher

Oxford University Press (OUP)

Subject

Plant Science,Genetics,Physiology

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