AI Article Synopsis

  • Recent studies sparked renewed interest in hydrotropism, particularly in how roots sense water and the role of auxin, focusing on maize instead of Arabidopsis.
  • The research found that the very tip of maize roots is the most sensitive to water stimuli and that hydrotropic bending involves a coordinated change in cell growth and IAA (auxin) distribution.
  • Key processes during early hydrotropic response include IAA redistribution and lignin synthesis, showing that maize roots perceive water differently than Arabidopsis.

Article Abstract

Recent studies mainly in Arabidopsis have renewed interest and discussion in some of the key issues in hydrotropism of roots, such as the site of water sensing and the involvement of auxin. We examined hydrotropism in maize (Zea mays) primary roots. We determined the site of water sensing along the root using a nonintrusive method. Kinematic analysis was conducted to investigate spatial root elongation during hydrotropic response. Indole-3-acetic acid (IAA) and other hormones were quantified using LC-MS/MS. The transcriptome was analyzed using RNA sequencing. Main results: The very tip of the root is the most sensitive to the hydrostimulant. Hydrotropic bending involves coordinated adjustment of spatial cell elongation and cell flux. IAA redistribution occurred in maize roots, preceding hydrotropic bending. The redistribution is caused by a reduction of IAA content on the side facing a hydrostimulant, resulting in a higher IAA content on the dry side. Transcriptomic analysis of the elongation zone prior to bending identified IAA response and lignin synthesis/wall cross-linking as some of the key processes occurring during the early stages of hydrotropic response. We conclude that maize roots differ from Arabidopsis in the location of hydrostimulant sensing and the involvement of IAA redistribution.

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Source
http://dx.doi.org/10.1111/nph.16472DOI Listing

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