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Mechanical stress contributes to the expression of the STM homeobox gene in Arabidopsis shoot meristems. | LitMetric

AI Article Synopsis

  • The study highlights the connection between mechanical signals and cell identity in tissues, focusing on the homeobox gene SHOOT MERISTEMLESS (STM) in Arabidopsis.
  • STM expression is found to correlate with mechanical curvature in the shoot apical meristem, suggesting that mechanical stress influences its expression.
  • The research concludes that STM expression is crucial for organ separation and operates through a combination of auxin depletion and a separate mechanotransduction pathway.

Article Abstract

The role of mechanical signals in cell identity determination remains poorly explored in tissues. Furthermore, because mechanical stress is widespread, mechanical signals are difficult to uncouple from biochemical-based transduction pathways. Here we focus on the homeobox gene SHOOT MERISTEMLESS (STM), a master regulator and marker of meristematic identity in Arabidopsis. We found that STM expression is quantitatively correlated to curvature in the saddle-shaped boundary domain of the shoot apical meristem. As tissue folding reflects the presence of mechanical stress, we test and demonstrate that STM expression is induced after micromechanical perturbations. We also show that STM expression in the boundary domain is required for organ separation. While STM expression correlates with auxin depletion in this domain, auxin distribution and STM expression can also be uncoupled. STM expression and boundary identity are thus strengthened through a synergy between auxin depletion and an auxin-independent mechanotransduction pathway at the shoot apical meristem.

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Source
http://www.ncbi.nlm.nih.gov/pmc/articles/PMC4666715PMC
http://dx.doi.org/10.7554/eLife.07811DOI Listing

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