Abscisic acid signaling gates salt-induced responses of plant roots

J Jasper Lamers (Laboratory of Plant Physiology, Plant Sciences Group, Wageningen University and Research) Y Yanxia Zhang (State Key Laboratory of Fluorine and Nitrogen Chemistry and Advanced Materials, Shanghai Institute of Organic Chemistry, University of Chinese Academy of Sciences, Chinese Academy of Sciences, 345 Lingling Road, Shanghai 200032, China) E Eva van Zelm (Laboratory of Plant Physiology, Plant Sciences Group, Wageningen University and Research) C Cheuk Ka Leong (Laboratory of Plant Physiology, Plant Sciences Group, Wageningen University and Research) A A. Jessica Meyer (Laboratory of Plant Physiology, Plant Sciences Group, Wageningen University and Research) T Thijs de Zeeuw (Laboratory of Plant Physiology, Plant Sciences Group, Wageningen University and Research) F Francel Verstappen (Laboratory of Plant Physiology, Plant Sciences Group, Wageningen University and Research) M Mark Veen (Laboratory of Plant Physiology, Plant Sciences Group, Wageningen University and Research) A Ayodeji O. Deolu-Ajayi (Laboratory of Plant Physiology, Plant Sciences Group, Wageningen University and Research) C Charlotte M. M. Gommers (Laboratory of Plant Physiology, Plant Sciences Group, Wageningen University and Research) C Christa Testerink

Abstract

Soil salinity presents a dual challenge for plants, involving both osmotic and ionic stress. In response, plants deploy distinct yet interconnected mechanisms to cope with these facets of salinity stress. In this investigation, we observed a substantial overlap in the salt (NaCl)-induced transcriptional responses of Arabidopsis roots with those triggered by osmotic stress or the plant stress hormone abscisic acid (ABA), as anticipated. Notably, a specific cluster of genes responded uniquely to sodium (Na + ) ions and are not regulated by the known monovalent cation sensing mechanism MOCA1 . Surprisingly, expression of sodium-induced genes exhibited a negative correlation with the ABA response and preceded the activation of genes induced by the osmotic stress component of salt. Elevated exogenous ABA levels resulted in the complete abolition of sodium-induced responses. Consistently, the ABA insensitive snrk2.2/2.3 double mutant displayed prolonged sodium-induced gene expression, coupled with increased root cell damage and root swelling under high salinity conditions. Moreover, ABA biosynthesis and signaling mutants were unable to redirect root growth to avoid high sodium concentrations and had increased sodium accumulation in the shoot. In summary, our findings unveil an unexpected and pivotal role for ABA signaling in mitigating cellular damage induced by salinity stress and modulating sodium-induced responses in plant roots.

Article Details

Volume / Issue Vol. 122, Issue 6
Published February 11, 2025
ISSN 0027-8424
Publisher National Academy of Sciences

Authors (11)

J

Jasper Lamers

Laboratory of Plant Physiology, Plant Sciences Group, Wageningen University and Research

Y

Yanxia Zhang

State Key Laboratory of Fluorine and Nitrogen Chemistry and Advanced Materials, Shanghai Institute of Organic Chemistry, University of Chinese Academy of Sciences, Chinese Academy of Sciences, 345 Lingling Road, Shanghai 200032, China

E

Eva van Zelm

Laboratory of Plant Physiology, Plant Sciences Group, Wageningen University and Research

C

Cheuk Ka Leong

Laboratory of Plant Physiology, Plant Sciences Group, Wageningen University and Research

A

A. Jessica Meyer

Laboratory of Plant Physiology, Plant Sciences Group, Wageningen University and Research

T

Thijs de Zeeuw

Laboratory of Plant Physiology, Plant Sciences Group, Wageningen University and Research

F

Francel Verstappen

Laboratory of Plant Physiology, Plant Sciences Group, Wageningen University and Research

M

Mark Veen

Laboratory of Plant Physiology, Plant Sciences Group, Wageningen University and Research

A

Ayodeji O. Deolu-Ajayi

Laboratory of Plant Physiology, Plant Sciences Group, Wageningen University and Research

C

Charlotte M. M. Gommers

Laboratory of Plant Physiology, Plant Sciences Group, Wageningen University and Research

C

Christa Testerink