Raffinose catabolism enhances maize waterlogging tolerance by stimulating adventitious root growth and development

Author:

Yan Dong12,Gao Yu12,Zhang Yumin12,Li Dan12,Dirk Lynnette M A3,Downie A Bruce3,Zhao Tianyong12

Affiliation:

1. State Key Laboratory of Crop Stress Biology for Arid Areas, College of Life Sciences, Northwest A&F University , Yangling, Shaanxi, 712100 , China

2. The Key Laboratory of Biology and Genetics Improvement of Maize in Arid Area of Northwest Region, Ministry of Agriculture, Northwest A&F University , Yangling, Shaanxi, 712100 , China

3. Department of Horticulture, Seed Biology, Martin-Gatton College of Agriculture, Food and Environment, University of Kentucky , Lexington, KY 40546 , USA

Abstract

Abstract Raffinose mitigates plant heat, drought, and cold stresses; however, whether raffinose contributes to plant waterlogging tolerance is unknown. The maize raffinose synthase mutant zmrafs-1 had seedlings that lack raffinose, generated fewer and shorter adventitious roots, and were more sensitive to waterlogging stress, while overexpression of the raffinose synthase gene, ZmRAFS, increased raffinose content, stimulated adventitious root formation, and enhanced waterlogging tolerance of maize seedlings. Transcriptome analysis of null segregant seedlings compared with zmrafs-1, particularly when waterlogged, revealed that the expression of genes related to galactose metabolism and the auxin biosynthetic pathway were up-regulated by raffinose. Additionally, indole-3-acetic acid content was significantly decreased in zmrafs-1 seedlings and increased in ZmRAFS-overexpressing seedlings. Inhibition of the hydrolysis of raffinose by 1-deoxygalactonojirimycin decreased the waterlogging tolerance of maize seedlings, the expression of genes encoding proteins related to auxin transport-related genes, and the indole-3-acetic acid level in the seedlings, indicating that the hydrolysis of raffinose is necessary for maize waterlogging tolerance. These data demonstrate that raffinose catabolism stimulates adventitious root formation via the auxin signaling pathway to enhance maize waterlogging tolerance.

Funder

National Natural Science Foundation of China

Chinese Universities Scientific Fund

Publisher

Oxford University Press (OUP)

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