Ethylene-independent modulation of root development by ACC via downregulation of WOX5 and group I CLE peptide expression

W Wangshu Mou (College of Life and Environmental Sciences, Hangzhou Normal University) R Ria Khare (Department of Biology, University of North Carolina) J Joanna K. Polko (Department of Biology, University of North Carolina) I Isaiah Taylor (Department of Biology, Duke University) J Juan Xu (Shanghai Engineering Research Center of Biotransformation of Organic Solid Waste, School of Ecological and Environmental Sciences) D Dawei Xue (College of Life and Environmental Sciences, Hangzhou Normal University) P Philip Benfey (Department of Biology, Duke University) B Bram Van de Poel (Department of Biosystems, University of Leuven) C Caren Chang (Department of Cell Biology and Molecular Genetics, University of Maryland) J Joseph J. Kieber (Department of Biology, University of North Carolina)

Abstract

In seed plants, the canonical role of 1-aminocyclopropane-1-carboxylic acid (ACC) is to serve as the precursor in the biosynthesis of the phytohormone ethylene, and indeed, ACC treatment is often used as a proxy for ethylene treatment. Increasing evidence suggests that ACC can also act independently of ethylene to regulate various aspects of plant growth and development. Here, we explore the effects of ACC on Arabidopsis thaliana root growth and the mechanisms by which it acts. ACC inhibits growth of the primary root in Arabidopsis seedlings when ethylene signaling is blocked, which becomes evident after 36 h of treatment with ACC. This reduced root growth is in part the result of suppressed cell proliferation in the root meristem resulting from altered expression of a key regulator of stem cell niche activity, WOX5. ACC also promotes lateral root (LR) development, in contrast to ethylene, which inhibits LR formation. Transcriptomic analysis of roots revealed no significant changes in gene expression after 45 min or 4 h of ACC treatment, but longer treatment times revealed a large number of differentially expressed genes, including the downregulation of the expression of a small group of phylogenetically related CLE peptides. Reduced expression of these group 1 CLEs in response to ACC leads to the activation of a transcription factor, LBD18, which promotes LR development. These results suggest that ACC acts to modulate multiple aspects of Arabidopsis root growth independently of ethylene via distinct transcriptional effects in the root meristem and LR precursor cells.

Article Details

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

Authors (10)

W

Wangshu Mou

College of Life and Environmental Sciences, Hangzhou Normal University

R

Ria Khare

Department of Biology, University of North Carolina

J

Joanna K. Polko

Department of Biology, University of North Carolina

I

Isaiah Taylor

Department of Biology, Duke University

J

Juan Xu

Shanghai Engineering Research Center of Biotransformation of Organic Solid Waste, School of Ecological and Environmental Sciences

D

Dawei Xue

College of Life and Environmental Sciences, Hangzhou Normal University

P

Philip Benfey

Department of Biology, Duke University

B

Bram Van de Poel

Department of Biosystems, University of Leuven

C

Caren Chang

Department of Cell Biology and Molecular Genetics, University of Maryland

J

Joseph J. Kieber

Department of Biology, University of North Carolina