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Mechanical forces in plant tissue matrix orient cell divisions via microtubule stabilization

  • Lukas Hoermayer
  • , Juan Carlos Montesinos
  • , Nicola Trozzi
  • , Leonhard Spona
  • , Saiko Yoshida
  • , Petra Marhava
  • , Silvia Caballero-Mancebo
  • , Eva Benkova
  • , Carl-Philip Heisenberg
  • , Yasin Dagdas
  • , Mateusz Majda
  • , Jirii Friml

Publication: Contribution to journalJournal articlepeer-review

Abstract

Plant morphogenesis relies exclusively on oriented cell expansion and division. Nonetheless, the mechanism(s) determining division plane orientation remain elusive. Here, we studied tissue healing after laser-assisted wounding in roots of Arabidopsis thaliana and uncovered how mechanical forces stabilize and reorient the microtubule cytoskeleton for the orientation of cell division. We identified that root tissue functions as an interconnected cell matrix, with a radial gradient of tissue extendibility causing predictable tissue deformation after wounding. This deformation causes instant redirection of expansion in the surrounding cells and reorientation of microtubule arrays, ultimately predicting cell division orientation. Microtubules are destabilized under low tension, whereas stretching of cells, either through wounding or external aspiration, immediately induces their polymerization. The higher microtubule abundance in the stretched cell parts leads to the reorientation of microtubule arrays and, ultimately, informs cell division planes. This provides a long-sought mechanism for flexible re-arrangement of cell divisions by mechanical forces for tissue reconstruction and plant architecture.
Original languageEnglish
Pages (from-to)1333-1344.e4
Number of pages17
JournalDevelopmental Cell
Volume59
Issue number10
DOIs
Publication statusPublished - 2024

Bibliographical note

Publisher Copyright:
© 2024 The Author(s)

Keywords

  • ablation
  • cell division
  • cell division plane
  • cell expansion
  • mechanical forces
  • microscopy
  • microtubules
  • plant development

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