Root Patterning: Tuning SHORT ROOT Function Creates Diversity in Form.

Front Plant Sci

UGA Laboratorio Nacional de Genómica para la Biodiversidad, CINVESTAV Irapuato, Guanajuato, Mexico.

Published: September 2021

AI Article Synopsis

  • Roots are crucial for plant growth, allowing them to access water and nutrients effectively while coping with environmental challenges.
  • Variations in root morphology, such as cell layer number and arrangement, influence important traits like root length and girth, which are vital for plant productivity.
  • The review focuses on the genetic mechanisms behind root radial patterning, particularly in monocots and legumes, which have more intricate root structures compared to simpler species.

Article Abstract

Roots have a fundamental role in plant growth and adaptation to different environments. Diversity in root morphology and architecture enables plants to acquire water and nutrients in contrasting substrate conditions, resist biotic and abiotic stress, and develop symbiotic associations. At its most fundamental level, morphology is determined by discrete changes in tissue patterning. Differences in the number and arrangement of the cell layers in the root can change tissue structure, as well as root length and girth, affecting important productivity traits. Therefore, understanding the molecular mechanisms controlling variation in developmental patterning is an important goal in biology. The ground tissue (GT) system is an ideal model to study the genetic basis of morphological diversity because it displays great interspecific variability in cell layer number. In addition, the genetic circuit controlling GT patterning in has been well described, although little is known about species with more complex root anatomies. In this review, we will describe the model for root radial patterning and present recent progress in elucidating the genetic circuitry controlling GT patterning in monocots and the legume , species that develop roots with more complex anatomies and multilayered cortex.

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Source
http://www.ncbi.nlm.nih.gov/pmc/articles/PMC8514818PMC
http://dx.doi.org/10.3389/fpls.2021.745861DOI Listing

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