A Model of Differential Growth-Guided Apical Hook Formation in Plants
Author(s) -
Petra Žádníková,
Krzysztof Wabnik,
Anas Abuzeineh,
Marçal Gallemí,
Dominique Van Der Straeten,
Richard S. Smith,
Dirk Inzé,
Jìří Friml,
Przemysław Prusinkiewicz,
Eva Benková
Publication year - 2016
Publication title -
the plant cell
Language(s) - English
Resource type - Journals
SCImago Journal Rank - 5.324
H-Index - 341
eISSN - 1532-298X
pISSN - 1040-4651
DOI - 10.1105/tpc.15.00569
Subject(s) - biology , hook , auxin , meristem , apex (geometry) , microbiology and biotechnology , apical cell , arabidopsis thaliana , biophysics , in silico , apical dominance , polar auxin transport , arabidopsis , crosstalk , botany , shoot , cell , biochemistry , mutant , physics , structural engineering , optics , gene , engineering
Differential cell growth enables flexible organ bending in the presence of environmental signals such as light or gravity. A prominent example of the developmental processes based on differential cell growth is the formation of the apical hook that protects the fragile shoot apical meristem when it breaks through the soil during germination. Here, we combined in silico and in vivo approaches to identify a minimal mechanism producing auxin gradient-guided differential growth during the establishment of the apical hook in the model plant Arabidopsis thaliana Computer simulation models based on experimental data demonstrate that asymmetric expression of the PIN-FORMED auxin efflux carrier at the concave (inner) versus convex (outer) side of the hook suffices to establish an auxin maximum in the epidermis at the concave side of the apical hook. Furthermore, we propose a mechanism that translates this maximum into differential growth, and thus curvature, of the apical hook. Through a combination of experimental and in silico computational approaches, we have identified the individual contributions of differential cell elongation and proliferation to defining the apical hook and reveal the role of auxin-ethylene crosstalk in balancing these two processes.
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