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PMID: 24415926 Published · ppublish English Journal Article Research Support, Non-U.S. Gov't

Stress and strain provide positional and directional cues in development.

PLoS computational biology ·Vol. 10 ·No. 1 ·2014-01-00 ·Pages e1003410

Bozorg B, Krupinski P, Jönsson H

Abstract

The morphogenesis of organs necessarily involves mechanical interactions and changes in mechanical properties of a tissue. A long standing question is how such changes are directed on a cellular scale while being coordinated at a tissular scale. Growing evidence suggests that mechanical cues are participating in the control of growth and morphogenesis during development. We introduce a mechanical model that represents the deposition of cellulose fibers in primary plant walls. In the model both the degree of material anisotropy and the anisotropy direction are regulated by stress anisotropy. We show that the finite element shell model and the simpler triangular biquadratic springs approach provide equally adequate descriptions of cell mechanics in tissue pressure simulations of the epidermis. In a growing organ, where circumferentially organized fibers act as a main controller of longitudinal growth, we show that the fiber direction can be correlated with both the maximal stress direction and the direction orthogonal to the maximal strain direction. However, when dynamic updates of the fiber direction are introduced, the mechanical stress provides a robust directional cue for the circumferential organization of the fibers, whereas the orthogonal to maximal strain model leads to an unstable situation where the fibers reorient longitudinally. Our investigation of the more complex shape and growth patterns in the shoot apical meristem where new organs are initiated shows that a stress based feedback on fiber directions is capable of reproducing the main features of in vivo cellulose fiber directions, deformations and material properties in different regions of the shoot. In particular, we show that this purely mechanical model can create radially distinct regions such that cells expand slowly and isotropically in the central zone while cells at the periphery expand more quickly and in the radial direction, which is a well established growth pattern in the meristem.

MeSH Terms
Anisotropy Cellulose/chemistry Computational Biology/methods Computer Simulation Finite Element Analysis Meristem/growth & development Plant Development Plant Physiological Phenomena Poisson Distribution Pressure Programming Languages Software Stress, Mechanical
Chemicals
Cellulose
Authors & Affiliations
3 authors, click to expand affiliations / ORCID
Bozorg Behruz
Computational Biology & Biological Physics, Lund University, Lund, Sweden.
Krupinski Pawel
Computational Biology & Biological Physics, Lund University, Lund, Sweden.
Jönsson Henrik
Computational Biology & Biological Physics, Lund University, Lund, Sweden ; Sainsbury Laboratory, Cambridge University, Cambridge, United Kingdom.
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Article Info
Journal
PLoS computational biology
Abbr.
PLoS Comput Biol
ISSN
1553-7358
Published
2014-01-00
Epub
2014-00-09
Pages
e1003410
Language
English
Region
United States
NLM ID
101238922
PMCID
PMC3886884
Subset
IM
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