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Kennaway, R.

Publications and source records attributed to Kennaway, R..

2 recordsLinked to original sources

Tissue-wide cues are sensed at the cellular level to coordinate microtubule orientations in plants

Plant morphogenesis depends on tissue-wide coordination of cortical microtubule orientations. This coordination is thought to depend on microtubules responding to mechanical stress orientations. Here we test this stress-sensing hypothesis by quantifying microtubule behaviours on different faces and edges of growing leaf cells. We show that microtubules orientations exhibit both cell-geometric and tissue biases. Stress sensing can account for tissue biases but not microtubule trajectories and densities. An alternative hypothesis is suggested by two edge behaviours: generation of microtubules within cell edges and a filter that prevents microtubules entering side faces at shallow angles. Incorporating these features into a combinatorial model in which cell face identities modulate microtubule behaviours, accounts for tissue coordination and observed dynamics. Thus, instead of orientations being sensed at the microtubule level, they are sensed at the cellular level through changes in statistical behaviours at cell faces and edges, coordinated across a tissue through cell polarity.

plant biology↗

Genetic control of cell layer interactions in plants via tissue mechanics

Plant development depends on coordination of growth between different cell layers. Coordination may be mediated by molecular signalling or mechanical connectivity between cells, but evidence for genetic control via direct mechanics has been lacking. We show that a brassinosteroid-deficient dwarf mutant of the aquatic plant Utricularia gibba has twisted internal tissue, likely caused by a mechanical constraint from a slow-growing epidermis creating tissue stresses. This conclusion is supported by showing that inhibition of brassinosteroid action in an Arabidopsis mutant compromised for cell adhesion, enhances epidermal crack formation, an indicator of increased tissue tension. Thus, genes driving brassinosteroid synthesis can promote growth of internal tissue by reducing mechanical epidermal constraint, showing that tissue mechanics plays a key role in coordinating growth between cell layers. One-Sentence SummaryInternal twists in a mutant carnivorous plant reveal how genes control growth via tissue mechanics.

plant biology↗