Ethylene-mediated regulation of A2-type CYCLINs modulates hyponastic growth in arabidopsis thaliana

Publication date

2015-09

Authors

Polko, Joanna K.ISNI 0000000390951581
van Rooij, Jop A.ISNI 0000000507774559
Vanneste, Steffen
Pierik, RonaldISNI 0000000394604341
Ammerlaan, J. M. H.ISNI 0000000419420398
Vergeer-Van Eijk, Marleen H.ISNI 000000050777361X
McLoughlin, F.
Gühl, K.ISNI 0000000389512303
Van Isterdael, Gert
Voesenek, RensISNI 0000000393162721

Editors

Advisors

Supervisors

Document Type

Article
Open Access logo

License

cc_by

Abstract

Upward leaf movement (hyponastic growth) is frequently observed in response to changing environmental conditions and can be induced by the phytohormone ethylene. Hyponasty results from differential growth (i.e. enhanced cell elongation at the proximal abaxial side of the petiole relative to the adaxial side). Here, we characterize Enhanced Hyponasty-D, an activation-tagged Arabidopsis (Arabidopsis thaliana) line with exaggerated hyponasty. This phenotype is associated with overexpression of the mitotic cyclin CYCLINA2;1 (CYCA2;1), which hints at a role for cell divisions in regulating hyponasty. Indeed, mathematical analysis suggested that the observed changes in abaxial cell elongation rates during ethylene treatment should result in a larger hyponastic amplitude than observed, unless a decrease in cell proliferation rate at the proximal abaxial side of the petiole relative to the adaxial side was implemented. Our model predicts that when this differential proliferation mechanism is disrupted by either ectopic overexpression or mutation of CYCA2;1, the hyponastic growth response becomes exaggerated. This is in accordance with experimental observations on CYCA2;1 overexpression lines and cyca2;1 knockouts. We therefore propose a bipartite mechanism controlling leaf movement: ethylene induces longitudinal cell expansion in the abaxial petiole epidermis to induce hyponasty and simultaneously affects its amplitude by controlling cell proliferation through CYCA2;1. Further corroborating the model, we found that ethylene treatment results in transcriptional down-regulation of A2-type CYCLINs and propose that this, and possibly other regulatory mechanisms affecting CYCA2;1, may contribute to this attenuation of hyponastic growth.

Keywords

Plant Science, Genetics, Physiology

Citation

Polko, J K, van Rooij, J A, Vanneste, S, Pierik, R, Ammerlaan, J, Vergeer-Van Eijk, M H, McLoughlin, F, Gühl, K, Van Isterdael, G, Voesenek, L A C J, Millenaar, F F, Beeckman, T, Peeters, A J M, Marée, A F M & van Zanten, M 2015, 'Ethylene-mediated regulation of A2-type CYCLINs modulates hyponastic growth in arabidopsis thaliana', Plant Physiology, vol. 169, no. 1, pp. 194-208. https://doi.org/10.1104/pp.15.00343