Abstract
Arabidopsis root architecture is regulated by shoot-derived signals such as nitrate and auxin. We report that mutations in the putative auxin influx carrier AUX1 modify root architecture as a result of the disruption in hormone transport between indole-3-acetic acid (IAA) source and sink tissues. Gas chromatography-selected reaction monitoring-mass spectrometry measurements revealed that the aux1 mutant exhibited altered IAA distribution in young leaf and root tissues, the major IAA source and sink organs, respectively, in the developing seedling. Expression studies using the auxin-inducible reporter IAA2::uidA revealed that AUX1 facilitates IAA loading into the leaf vascular transport system. AUX1 also facilitates IAA unloading in the primary root apex and developing lateral root primordium. Exogenous application of the synthetic auxin 1-naphthylacetic acid is able to rescue the aux1 lateral root phenotype, implying that root auxin levels are suboptimal for lateral root primordium initiation in the mutant.
MeSH Terms
Arabidopsis/genetics,growth & development
Arabidopsis Proteins
Biological Transport/drug effects
Cell Division
Gene Expression
Indoleacetic Acids/metabolism
Meristem/genetics,growth & development
Mutation
Naphthaleneacetic Acids/pharmacology
Phenotype
Plant Leaves/genetics,growth & development
Plant Proteins/genetics,physiology
Plant Roots/genetics,growth & development
Chemicals
AUX1 protein, Arabidopsis
Arabidopsis Proteins
Indoleacetic Acids
Naphthaleneacetic Acids
Plant Proteins
1-naphthaleneacetic acid
indoleacetic acid
Authors & Affiliations
7 authors, click to expand affiliations / ORCID
Marchant Alan
Plant Science Division, School of Biosciences, University of Nottingham, Nottingham NG7 2RD, United Kingdom.
Bhalerao Rishikesh
Casimiro Ilda
Eklöf Jan
Casero Pedro J
Bennett Malcolm
Sandberg Goran
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