Abstract
AbstractWe use the model systemHibiscus trionumas a vehicle to study the origin and propagation of surface nano-ridges in plant petal epidermal cells by tracking the development of the cell shape and the cuticle. In this system, the cuticle develops two distinct subdomains, (i) an uppermost layer which increases in thickness and in-plane extension and (ii) a substrate. We quantify the pattern formation and geometrical changes and then postulate a mechanical model assuming that the cuticle behaves as a growing bi-layer. The model is a quasi-static morpho-elastic system and it is numerically investigated in two and three dimensional settings, using different laws of film and substrate expansion and boundary conditions. We recreate several features of the observed developmental trajectories in petals. We establish the respective roles of the layers’ stiffness mismatch, the underlying cell-wall curvature, the cell in-plane expansion and the thickness growth rates of the layers in determining the observed pattern features, such as the variance observed in amplitude and wavelength. Our observations provide evidence which justify the growing bi-layer description, and provide valuable insights into why some systems develop surface patterns and others do not.
Publisher
Cold Spring Harbor Laboratory
Reference42 articles.
1. Disorder in convergent floral nanostructures enhances signalling to bees;Nature,2017
2. CUTIN SYNTHASE 2 maintains progressively developing cuticular ridges in arabidopsis sepals;Molecular Plant,2017
3. Chao Chen , Chiara A. Airoldi , Carlos A. Lugo , R. Konane Bay , Beverley J. Glover , and Alfred J. Crosby . Flower inspiration: Broad-angle structural color through tunable hierarchical wrinkles in thin film multilayers. Advanced Functional Materials, page 2006256, oct 2020.
4. Floral Iridescence, Produced by Diffractive Optics, Acts As a Cue for Animal Pollinators
5. The flower ofHibiscus trionumis both visibly and measurably iridescent;New Phytologist,2014