» Articles » PMID: 24474807

Hormonal Control of Cell Division and Elongation Along Differentiation Trajectories in Roots

Overview
Journal J Exp Bot
Specialty Biology
Date 2014 Jan 30
PMID 24474807
Citations 96
Authors
Affiliations
Soon will be listed here.
Abstract

The continuous development of roots is supported by a sustainable system for cell production and growth at the root tip. In the stem cell niche that consists of a quiescent centre and surrounding stem cells, an undifferentiated state and low mitotic activity are preserved by the action of auxin and abscisic acid. Stem cell daughters divide several times in the proximal meristem, where auxin and gibberellin mainly promote cell proliferation. Cells then elongate with the help of gibberellin, and become finally differentiated as a constituent of a cell file in the elongation/differentiation zone. In the model plant Arabidopsis thaliana, the transition zone is located between the proximal meristem and the elongation/differentiation zone, and plays an important role in switching from mitosis to the endoreplication that causes DNA polyploidization. Recent studies have shown that cytokinins are essentially required for this transition by antagonizing auxin signalling and promoting degradation of mitotic regulators. In each root zone, different phytohormones interact with one another and coordinately control cell proliferation, cell elongation, cell differentiation, and endoreplication. Such hormonal networks maintain the elaborate structure of the root tip under various environmental conditions. In this review, we summarize and discuss key issues related to hormonal regulation of root growth, and describe how phytohormones are associated with the control of cell cycle machinery.

Citing Articles

SYNTAXIN OF PLANTS132 Regulates Root Meristem Activity and Stem Cell Niche Maintenance via RGF-PLT Pathways.

Wang M, He F, Zhang W, Du C, Wang L, Sui J Int J Mol Sci. 2025; 26(5).

PMID: 40076746 PMC: 11900091. DOI: 10.3390/ijms26052123.


Folate depletion impact on the cell cycle results in restricted primary root growth in Arabidopsis.

De Lepeleire J, Mishra R, Verstraete J, Pedroza Garcia J, Stove C, De Veylder L Plant Mol Biol. 2025; 115(2):31.

PMID: 39946030 PMC: 11825618. DOI: 10.1007/s11103-025-01554-0.


Transcriptional Landscape of Cotton Roots in Response to Salt Stress at Single-cell Resolution.

Li P, Liu Q, Wei Y, Xing C, Xu Z, Ding F Plant Commun. 2024; :100740.

PMID: 39492159 PMC: 10873896. DOI: 10.1016/j.xplc.2023.100740.


Transcriptomic and Metabolomic Profiling of Root Tissue in Drought-Tolerant and Drought-Susceptible Wheat Genotypes in Response to Water Stress.

Ling Hu , Lv X, Zhang Y, Du W, Fan S, Kong L Int J Mol Sci. 2024; 25(19).

PMID: 39408761 PMC: 11476764. DOI: 10.3390/ijms251910430.


Nitrate Starvation Induces Lateral Root Organogenesis in via Auxin Signaling.

Tang C, Zhang Y, Liu X, Zhang B, Si J, Xia H Int J Mol Sci. 2024; 25(17).

PMID: 39273513 PMC: 11395443. DOI: 10.3390/ijms25179566.