Physiological Effects of the Synthetic Strigolactone Analog GR24 on Root System Architecture in Arabidopsis: Another Belowground Role for Strigolactones?

Author:

Ruyter-Spira Carolien1,Kohlen Wouter1,Charnikhova Tatsiana1,van Zeijl Arjan1,van Bezouwen Laura1,de Ruijter Norbert1,Cardoso Catarina1,Lopez-Raez Juan Antonio1,Matusova Radoslava1,Bours Ralph1,Verstappen Francel1,Bouwmeester Harro1

Affiliation:

1. Laboratory of Plant Physiology (C.R.-S., W.K., T.C., A.v.Z., L.v.B., C.C., J.A.L.-R., R.M., R.B., F.V., H.B.) and Laboratory of Plant Cell Biology (N.d.R.), Wageningen University, 6700 AR Wageningen, The Netherlands; Plant Research International, 6700 AA Wageningen, The Netherlands (C.R.-S.); Centre for Biosystems Genomics, 6700 AB Wageningen, The Netherlands (F.V., H.B.)

Abstract

AbstractIn this study, the role of the recently identified class of phytohormones, strigolactones, in shaping root architecture was addressed. Primary root lengths of strigolactone-deficient and -insensitive Arabidopsis (Arabidopsis thaliana) plants were shorter than those of wild-type plants. This was accompanied by a reduction in meristem cell number, which could be rescued by application of the synthetic strigolactone analog GR24 in all genotypes except in the strigolactone-insensitive mutant. Upon GR24 treatment, cells in the transition zone showed a gradual increase in cell length, resulting in a vague transition point and an increase in transition zone size. PIN1/3/7-green fluorescent protein intensities in provascular tissue of the primary root tip were decreased, whereas PIN3-green fluorescent protein intensity in the columella was not affected. During phosphate-sufficient conditions, GR24 application to the roots suppressed lateral root primordial development and lateral root forming potential, leading to a reduction in lateral root density. Moreover, auxin levels in leaf tissue were reduced. When auxin levels were increased by exogenous application of naphthylacetic acid, GR24 application had a stimulatory effect on lateral root development instead. Similarly, under phosphate-limiting conditions, endogenous strigolactones present in wild-type plants stimulated a more rapid outgrowth of lateral root primordia when compared with strigolactone-deficient mutants. These results suggest that strigolactones are able to modulate local auxin levels and that the net result of strigolactone action is dependent on the auxin status of the plant. We postulate that the tightly balanced auxin-strigolactone interaction is the basis for the mechanism of the regulation of the plants’ root-to-shoot ratio.

Publisher

Oxford University Press (OUP)

Subject

Plant Science,Genetics,Physiology

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