Abstract
Auxin regulates most aspects of plant growth and development. The hormone is perceived by the TIR1/AFB family of F-box proteins acting in concert with the Aux/IAA transcriptional repressors. Arabidopsis plants that lack members of the TIR1/AFB family are auxin resistant and display a variety of growth defects. However, little is known about the functional differences between individual members of the family. Phylogenetic studies reveal that the TIR1/AFB proteins are conserved across land plant lineages and fall into four clades. Three of these subgroups emerged before separation of angiosperms and gymnosperms whereas the last emerged before the monocot-eudicot split. This evolutionary history suggests that the members of each clade have distinct functions. To explore this possibility in Arabidopsis, we have analyzed a range of mutant genotypes, generated promoter swap transgenic lines, and performed in vitro binding assays between individual TIR1/AFB and Aux/IAA proteins. Our results indicate that the TIR1/AFB proteins have distinct biochemical activities and that TIR1 and AFB2 are the dominant auxin receptors in the seedling root. Further, we demonstrate that TIR1, AFB2, and AFB3, but not AFB1 exhibit significant posttranscriptional regulation. The microRNA miR393 is expressed in a pattern complementary to that of the auxin receptors and appears to regulate TIR1/AFB expression. However our data suggest that this regulation is complex. Our results suggest that differences between members of the auxin receptor family may contribute to the complexity of auxin response.
MeSH Terms
Arabidopsis/genetics,growth & development,metabolism
Arabidopsis Proteins/genetics,metabolism
F-Box Proteins/genetics,metabolism
Gene Expression Regulation, Plant
Genes, Plant/drug effects
Indoleacetic Acids/metabolism,pharmacology
MicroRNAs/genetics
Mutation
Plant Proteins/genetics,metabolism
Plant Roots/growth & development,metabolism
Plants, Genetically Modified
RNA, Plant/genetics
Receptors, Cell Surface/genetics,metabolism
Recombinant Fusion Proteins/genetics,metabolism
Chemicals
Arabidopsis Proteins
F-Box Proteins
Indoleacetic Acids
MicroRNAs
Plant Proteins
RNA, Plant
Receptors, Cell Surface
Recombinant Fusion Proteins
TIR1 protein, Arabidopsis
auxin receptor, plant
Authors & Affiliations
10 authors, click to expand affiliations / ORCID
Parry G
Department of Biology, Indiana University, Bloomington, IN 47401, USA.
Calderon-Villalobos L I
Prigge M
Peret B
Dharmasiri S
Itoh H
Lechner E
Gray W M
Bennett M
Estelle M
References (29)
29 references, click to expand
-
Highly specific gene silencing by artificial microRNAs in Arabidopsis.
Plant Cell. 2006 May;18(5):1121-33
PMID: 16531494
-
Auxin response factors.
Curr Opin Plant Biol. 2007 Oct;10(5):453-60
PMID: 17900969
-
The roles of auxin response factor domains in auxin-responsive transcription.
Plant Cell. 2003 Feb;15(2):533-43
PMID: 12566590
-
Update of ASRP: the Arabidopsis Small RNA Project database.
Nucleic Acids Res. 2008 Jan;36(Database issue):D982-5
PMID: 17999994
-
Auxin-dependent regulation of lateral root positioning in the basal meristem of Arabidopsis.
Development. 2007 Feb;134(4):681-90
PMID: 17215297
-
MRBAYES: Bayesian inference of phylogenetic trees.
Bioinformatics. 2001 Aug;17(8):754-5
PMID: 11524383
-
ARGONAUTE 1 homeostasis invokes the coordinate action of the microRNA and siRNA pathways.
EMBO Rep. 2009 May;10(5):521-6
PMID: 19343050
-
Acceleration of Aux/IAA proteolysis is specific for auxin and independent of AXR1.
Plant J. 2003 Aug;35(3):285-94
PMID: 12887580
-
Aux/IAA proteins contain a potent transcriptional repression domain.
Plant Cell. 2004 Feb;16(2):533-43
PMID: 14742873
-
The action of ARGONAUTE1 in the miRNA pathway and its regulation by the miRNA pathway are crucial for plant development.
Genes Dev. 2004 May 15;18(10):1187-97
PMID: 15131082
-
Plant development is regulated by a family of auxin receptor F box proteins.
Dev Cell. 2005 Jul;9(1):109-19
PMID: 15992545
-
Independent ancient polyploidy events in the sister families Brassicaceae and Cleomaceae.
Plant Cell. 2006 May;18(5):1152-65
PMID: 16617098
-
Functional genomic analysis of the AUXIN RESPONSE FACTOR gene family members in Arabidopsis thaliana: unique and overlapping functions of ARF7 and ARF19.
Plant Cell. 2005 Feb;17(2):444-63
PMID: 15659631
-
Auxin: the looping star in plant development.
Annu Rev Plant Biol. 2008;59:443-65
PMID: 18444904
-
Rapid degradation of auxin/indoleacetic acid proteins requires conserved amino acids of domain II and is proteasome dependent.
Plant Cell. 2001 Oct;13(10):2349-60
PMID: 11595806
-
Developmental specificity of auxin response by pairs of ARF and Aux/IAA transcriptional regulators.
EMBO J. 2005 May 18;24(10):1874-85
PMID: 15889151
-
AUX/IAA proteins are active repressors, and their stability and activity are modulated by auxin.
Plant Cell. 2001 Dec;13(12):2809-22
PMID: 11752389
-
Genome-wide insertional mutagenesis of Arabidopsis thaliana.
Science. 2003 Aug 1;301(5633):653-7
PMID: 12893945
-
Widespread genome duplications throughout the history of flowering plants.
Genome Res. 2006 Jun;16(6):738-49
PMID: 16702410
-
Contrasting modes of diversification in the Aux/IAA and ARF gene families.
Plant Physiol. 2004 Jul;135(3):1738-52
PMID: 15247399
-
The Arabidopsis F-box protein TIR1 is an auxin receptor.
Nature. 2005 May 26;435(7041):446-51
PMID: 15917798
-
Functional genomic analysis of the AUXIN/INDOLE-3-ACETIC ACID gene family members in Arabidopsis thaliana.
Plant Cell. 2005 Dec;17(12):3282-300
PMID: 16284307
-
Auxin modulates the degradation rate of Aux/IAA proteins.
Proc Natl Acad Sci U S A. 2001 Sep 25;98(20):11795-800
PMID: 11573012
-
Mechanism of auxin perception by the TIR1 ubiquitin ligase.
Nature. 2007 Apr 5;446(7136):640-5
PMID: 17410169
-
TOPLESS mediates auxin-dependent transcriptional repression during Arabidopsis embryogenesis.
Science. 2008 Mar 7;319(5868):1384-6
PMID: 18258861
-
The F-box protein TIR1 is an auxin receptor.
Nature. 2005 May 26;435(7041):441-5
PMID: 15917797
-
Auxin: regulation, action, and interaction.
Ann Bot. 2005 Apr;95(5):707-35
PMID: 15749753
-
A plant miRNA contributes to antibacterial resistance by repressing auxin signaling.
Science. 2006 Apr 21;312(5772):436-9
PMID: 16627744
-
Auxin receptors and plant development: a new signaling paradigm.
Annu Rev Cell Dev Biol. 2008;24:55-80
PMID: 18631113