Home LiteratureArticle Details
PMID: 15749753 Published · ppublish English Journal Article Research Support, Non-U.S. Gov't Research Support, U.S. Gov't, Non-P.H.S. Review

Auxin: regulation, action, and interaction.

Annals of botany ·Vol. 95 ·No. 5 ·2005-04-00 ·Pages 707-35

Woodward AW, Bartel B

Abstract

The phytohormone auxin is critical for plant growth and orchestrates many developmental processes. This review considers the complex array of mechanisms plants use to control auxin levels, the movement of auxin through the plant, the emerging view of auxin-signalling mechanisms, and several interactions between auxin and other phytohormones. Though many natural and synthetic compounds exhibit auxin-like activity in bioassays, indole-3-acetic acid (IAA) is recognized as the key auxin in most plants. IAA is synthesized both from tryptophan (Trp) using Trp-dependent pathways and from an indolic Trp precursor via Trp-independent pathways; none of these pathways is fully elucidated. Plants can also obtain IAA by beta-oxidation of indole-3-butyric acid (IBA), a second endogenous auxin, or by hydrolysing IAA conjugates, in which IAA is linked to amino acids, sugars or peptides. To permanently inactivate IAA, plants can employ conjugation and direct oxidation. Consistent with its definition as a hormone, IAA can be transported the length of the plant from the shoot to the root; this transport is necessary for normal development, and more localized transport is needed for tropic responses. Auxin signalling is mediated, at least in large part, by an SCFTIR1 E3 ubiquitin ligase complex that accelerates Aux/IAA repressor degradation in response to IAA, thereby altering gene expression. Two classes of auxin-induced genes encode negatively acting products (the Aux/IAA transcriptional repressors and GH3 family of IAA conjugating enzymes), suggesting that timely termination of the auxin signal is crucial. Auxin interaction with other hormone signals adds further challenges to understanding auxin response. Nearly six decades after the structural elucidation of IAA, many aspects of auxin metabolism, transport and signalling are well established; however, more than a few fundamental questions and innumerable details remain unresolved.

MeSH Terms
Arabidopsis/genetics,metabolism Arabidopsis Proteins/genetics,metabolism Biological Transport Gene Expression Regulation, Plant Indoleacetic Acids/metabolism Models, Biological Models, Molecular Signal Transduction
Chemicals
Arabidopsis Proteins Indoleacetic Acids indoleacetic acid
Authors & Affiliations
2 authors, click to expand affiliations / ORCID
Woodward Andrew W
Department of Biochemistry and Cell Biology, Rice University, 6100 Main Street, Houston, TX 77005, USA.
Bartel Bonnie
References (302)
302 references, click to expand
  1. Role of the Arabidopsis RING-H2 protein RBX1 in RUB modification and SCF function.
    Plant Cell. 2002 Sep;14 (9):2137-44 PMID: 12215511
  2. ILR2, a novel gene regulating IAA conjugate sensitivity and metal transport in Arabidopsis thaliana.
    Plant J. 2003 Aug;35(4):523-34 PMID: 12904214
  3. The axr4 auxin-resistant mutants of Arabidopsis thaliana define a gene important for root gravitropism and lateral root initiation.
    Plant J. 1995 Feb;7(2):211-20 PMID: 7704045
  4. Chemical regulation of growth and organ formation in plant tissues cultured in vitro.
    Symp Soc Exp Biol. 1957;11:118-30 PMID: 13486467
  5. Traffic jams affect plant development and signal transduction.
    Nat Rev Mol Cell Biol. 2004 Feb;5(2):100-9 PMID: 15040443
  6. BIG: a calossin-like protein required for polar auxin transport in Arabidopsis.
    Genes Dev. 2001 Aug 1;15(15):1985-97 PMID: 11485992
  7. Mutational analysis of the DST element in tobacco cells and transgenic plants: identification of residues critical for mRNA instability.
    RNA. 1996 Apr;2(4):308-15 PMID: 8634911
  8. Auxin induces mitogenic activated protein kinase (MAPK) activation in roots of Arabidopsis seedlings.
    Plant J. 2000 Dec;24(6):785-96 PMID: 11135112
  9. Identification of the auxin-responsive element, AuxRE, in the primary indoleacetic acid-inducible gene, PS-IAA4/5, of pea (Pisum sativum).
    J Mol Biol. 1993 Oct 20;233(4):580-96 PMID: 8411166
  10. Indole-3-acetic acid is synthesized from L-tryptophan in roots of Arabidopsis thaliana.
    Planta. 1998 Oct;206(3):362-9 PMID: 9763705
  11. IAA-synthase, an enzyme complex from Arabidopsis thaliana catalyzing the formation of indole-3-acetic acid from (S)-tryptophan.
    Biol Chem. 2000 Aug;381(8):679-86 PMID: 11030425
  12. Genetic and chemical reductions in protein phosphatase activity alter auxin transport, gravity response, and lateral root growth.
    Plant Cell. 2001 Jul;13(7):1683-97 PMID: 11449059
  13. A recessive mutation in the RUB1-conjugating enzyme, RCE1, reveals a requirement for RUB modification for control of ethylene biosynthesis and proper induction of basic chitinase and PDF1.2 in Arabidopsis.
    Plant J. 2004 May;38(4):626-38 PMID: 15125769
  14. Systematic reverse genetics of transfer-DNA-tagged lines of Arabidopsis. Isolation of mutations in the cytochrome p450 gene superfamily.
    Plant Physiol. 1998 Nov;118(3):743-50 PMID: 9808718
  15. Jasmonate response locus JAR1 and several related Arabidopsis genes encode enzymes of the firefly luciferase superfamily that show activity on jasmonic, salicylic, and indole-3-acetic acids in an assay for adenylation.
    Plant Cell. 2002 Jun;14(6):1405-15 PMID: 12084835
  16. Protein-protein interactions among the Aux/IAA proteins.
    Proc Natl Acad Sci U S A. 1997 Oct 28;94(22):11786-91 PMID: 9342315
  17. MASSUGU2 encodes Aux/IAA19, an auxin-regulated protein that functions together with the transcriptional activator NPH4/ARF7 to regulate differential growth responses of hypocotyl and formation of lateral roots in Arabidopsis thaliana.
    Plant Cell. 2004 Feb;16(2):379-93 PMID: 14729917
  18. Requirement of the Auxin Polar Transport System in Early Stages of Arabidopsis Floral Bud Formation.
    Plant Cell. 1991 Jul;3(7):677-684 PMID: 12324609
  19. Indole-3-glycerol phosphate, a branchpoint of indole-3-acetic acid biosynthesis from the tryptophan biosynthetic pathway in Arabidopsis thaliana.
    Plant J. 2000 Nov;24(3):327-33 PMID: 11069706
  20. The SUR2 gene of Arabidopsis thaliana encodes the cytochrome P450 CYP83B1, a modulator of auxin homeostasis.
    Proc Natl Acad Sci U S A. 2000 Dec 19;97(26):14819-24 PMID: 11114200
  21. Plant responses to ethylene gas are mediated by SCF(EBF1/EBF2)-dependent proteolysis of EIN3 transcription factor.
    Cell. 2003 Dec 12;115(6):667-77 PMID: 14675532
  22. The photomorphogenesis-related mutant red1 is defective in CYP83B1, a red light-induced gene encoding a cytochrome P450 required for normal auxin homeostasis.
    Planta. 2004 Jun;219(2):195-200 PMID: 14963708
  23. Agr, an Agravitropic locus of Arabidopsis thaliana, encodes a novel membrane-protein family member.
    Plant Cell Physiol. 1998 Oct;39(10):1111-8 PMID: 9871369
  24. Disruption of a guard cell-expressed protein phosphatase 2A regulatory subunit, RCN1, confers abscisic acid insensitivity in Arabidopsis.
    Plant Cell. 2002 Nov;14(11):2849-61 PMID: 12417706
  25. The Arabidopsis gene MONOPTEROS encodes a transcription factor mediating embryo axis formation and vascular development.
    EMBO J. 1998 Mar 2;17(5):1405-11 PMID: 9482737
  26. 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
  27. Interactions of the COP9 signalosome with the E3 ubiquitin ligase SCFTIRI in mediating auxin response.
    Science. 2001 May 18;292(5520):1379-82 PMID: 11337587
  28. Genetic analysis of variation for auxin-induced adventitious root formation among eighteen ecotypes of Arabidopsis thaliana L. Heynh.
    J Hered. 1998 Nov-Dec;89(6):481-7 PMID: 9864859
  29. Transgenic tobacco plants co-expressing Agrobacterium iaa and ipt genes have wild-type hormone levels but display both auxin- and cytokinin-overproducing phenotypes.
    Plant J. 2000 Jul;23(2):279-84 PMID: 10929121
  30. The interaction between auxin and ethylene and its role in plant growth.
    Proc Natl Acad Sci U S A. 1966 Feb;55(2):262-9 PMID: 5220945
  31. Characterization of the auxin-inducible SAUR-AC1 gene for use as a molecular genetic tool in Arabidopsis.
    Plant Physiol. 1994 Feb;104(2):777-84 PMID: 8159792
  32. 2,4-Dichlorophenoxybutyric acid-resistant mutants of Arabidopsis have defects in glyoxysomal fatty acid beta-oxidation.
    Plant Cell. 1998 Feb;10(2):183-95 PMID: 9490742
  33. SCF and Cullin/Ring H2-based ubiquitin ligases.
    Annu Rev Cell Dev Biol. 1999;15:435-67 PMID: 10611969
  34. ILR1, an amidohydrolase that releases active indole-3-acetic acid from conjugates.
    Science. 1995 Jun 23;268(5218):1745-8 PMID: 7792599
  35. The Arabidopsis eer1 mutant has enhanced ethylene responses in the hypocotyl and stem.
    Plant Physiol. 2001 Feb;125(2):1061-73 PMID: 11161061
  36. An abscisic acid-sensitive checkpoint in lateral root development of Arabidopsis.
    Plant J. 2003 Feb;33(3):543-55 PMID: 12581312
  37. The Arabidopsis pxa1 mutant is defective in an ATP-binding cassette transporter-like protein required for peroxisomal fatty acid beta-oxidation.
    Plant Physiol. 2001 Nov;127(3):1266-78 PMID: 11706205
  38. COP9 signalosome revisited: a novel mediator of protein degradation.
    Trends Cell Biol. 2001 Oct;11(10 ):420-6 PMID: 11567875
  39. Auxin regulates SCF(TIR1)-dependent degradation of AUX/IAA proteins.
    Nature. 2001 Nov 15;414(6861):271-6 PMID: 11713520
  40. Mutations in the huge Arabidopsis gene BIG affect a range of hormone and light responses.
    Plant J. 2003 Jul;35(1):57-70 PMID: 12834402
  41. AtPIN2 defines a locus of Arabidopsis for root gravitropism control.
    EMBO J. 1998 Dec 1;17(23):6903-11 PMID: 9843496
  42. Auxin metabolism in mosses and liverworts.
    Am J Bot. 1999 Nov;86(11):1544-55 PMID: 10562246
  43. Flavonoids act as negative regulators of auxin transport in vivo in arabidopsis.
    Plant Physiol. 2001 Jun;126(2):524-35 PMID: 11402184
  44. Peroxisomal Acyl-CoA synthetase activity is essential for seedling development in Arabidopsis thaliana.
    Plant Cell. 2004 Feb;16(2):394-405 PMID: 14742880
  45. A deletion in an indole synthase gene is responsible for the DIMBOA-deficient phenotype of bxbx maize.
    Proc Natl Acad Sci U S A. 1997 Nov 25;94(24):13345-50 PMID: 9371848
  46. The Arabidopsis transcription factor HY5 integrates light and hormone signaling pathways.
    Plant J. 2004 Apr;38(2):332-47 PMID: 15078335
  47. Arabidopsis AUX1 gene: a permease-like regulator of root gravitropism.
    Science. 1996 Aug 16;273(5277):948-50 PMID: 8688077
  48. Genetics of Aux/IAA and ARF action in plant growth and development.
    Plant Mol Biol. 2002 Jun-Jul;49(3-4):387-400 PMID: 12036262
  49. The surprising complexity of peroxisome biogenesis.
    Plant Mol Biol. 1998 Sep;38(1-2):163-89 PMID: 9738966
  50. Auxin transport inhibitors block PIN1 cycling and vesicle trafficking.
    Nature. 2001 Sep 27;413(6854):425-8 PMID: 11574889
  51. A novel auxin conjugate hydrolase from wheat with substrate specificity for longer side-chain auxin amide conjugates.
    Plant Physiol. 2004 Aug;135(4):2230-40 PMID: 15299127
  52. Overlapping and non-redundant functions of the Arabidopsis auxin response factors MONOPTEROS and NONPHOTOTROPIC HYPOCOTYL 4.
    Development. 2004 Mar;131(5):1089-100 PMID: 14973283
  53. Arabidopsis mutants in short- and medium-chain acyl-CoA oxidase activities accumulate acyl-CoAs and reveal that fatty acid beta-oxidation is essential for embryo development.
    J Biol Chem. 2003 Jun 13;278(24):21370-7 PMID: 12682048
  54. Transcript profiling of early lateral root initiation.
    Proc Natl Acad Sci U S A. 2004 Apr 6;101(14):5146-51 PMID: 15051881
  55. Arabidopsis gynoecium structure in the wild and in ettin mutants.
    Development. 1995 May;121(5):1519-32 PMID: 7789281
  56. Dimerization and DNA binding of auxin response factors.
    Plant J. 1999 Aug;19(3):309-19 PMID: 10476078
  57. Arabidopsis cytochrome P450s that catalyze the first step of tryptophan-dependent indole-3-acetic acid biosynthesis.
    Proc Natl Acad Sci U S A. 2000 Feb 29;97(5):2379-84 PMID: 10681464
  58. Arabidopsis auxin-resistance gene AXR1 encodes a protein related to ubiquitin-activating enzyme E1.
    Nature. 1993 Jul 8;364(6433):161-4 PMID: 8321287
  59. Structure-function analysis of the presumptive Arabidopsis auxin permease AUX1.
    Plant Cell. 2004 Nov;16(11):3069-83 PMID: 15486104
  60. The promotion of gravitropism in Arabidopsis roots upon actin disruption is coupled with the extended alkalinization of the columella cytoplasm and a persistent lateral auxin gradient.
    Plant J. 2004 Jul;39(1):113-25 PMID: 15200646
  61. The rib1 mutant is resistant to indole-3-butyric acid, an endogenous auxin in Arabidopsis.
    Plant Physiol. 2000 Dec;124(4):1739-51 PMID: 11115890
  62. Isolation of cloned cDNAs to auxin-responsive poly(A)RNAs of elongating soybean hypocotyl.
    Proc Natl Acad Sci U S A. 1982 Dec;79(23):7185-9 PMID: 16593257
  63. ETTIN patterns the Arabidopsis floral meristem and reproductive organs.
    Development. 1997 Nov;124(22):4481-91 PMID: 9409666
  64. Enhanced gravitropism of roots with a disrupted cap actin cytoskeleton.
    Plant Physiol. 2003 Mar;131(3):1360-73 PMID: 12644685
  65. Interaction between two auxin-resistant mutants and their effects on lateral root formation in rice (Oryza sativa L.).
    J Exp Bot. 2003 Dec;54(393):2701-8 PMID: 14623941
  66. ydk1-D, an auxin-responsive GH3 mutant that is involved in hypocotyl and root elongation.
    Plant J. 2004 Feb;37(4):471-83 PMID: 14756757
  67. AUX1 regulates root gravitropism in Arabidopsis by facilitating auxin uptake within root apical tissues.
    EMBO J. 1999 Apr 15;18(8):2066-73 PMID: 10205161
  68. Mutants of Arabidopsis defective in a sequence-specific mRNA degradation pathway.
    Proc Natl Acad Sci U S A. 2000 Dec 5;97(25):13991-6 PMID: 11087822
  69. Suppression of auxin signal transduction by a MAPK cascade in higher plants.
    Nature. 1998 Oct 15;395(6703):716-20 PMID: 9790195
  70. Aux/IAA proteins contain a potent transcriptional repression domain.
    Plant Cell. 2004 Feb;16(2):533-43 PMID: 14742873
  71. Fatty acid degradation in plants.
    Prog Lipid Res. 1992;31(4):417-46 PMID: 1304050
  72. Evidence for a physical association of the COP9 signalosome, the proteasome, and specific SCF E3 ligases in vivo.
    Curr Biol. 2003 Jul 1;13(13):R504-5 PMID: 12842023
  73. CSN1 N-terminal-dependent activity is required for Arabidopsis development but not for Rub1/Nedd8 deconjugation of cullins: a structure-function study of CSN1 subunit of COP9 signalosome.
    Mol Biol Cell. 2002 Feb;13(2):646-55 PMID: 11854419
  74. Transgenic tobacco plants expressing the Arabidopsis thaliana nitrilase II enzyme.
    Plant J. 1996 May;9(5):683-91 PMID: 8653117
  75. The AXR1 and AUX1 genes of Arabidopsis function in separate auxin-response pathways.
    Plant J. 1995 Oct;8(4):561-9 PMID: 11536712
  76. FLOOZY of petunia is a flavin mono-oxygenase-like protein required for the specification of leaf and flower architecture.
    Genes Dev. 2002 Mar 15;16(6):753-63 PMID: 11914280
  77. Regulation of Arabidopsis SHY2/IAA3 protein turnover.
    Plant J. 2003 Dec;36(5):643-51 PMID: 14617065
  78. AtPex14p maintains peroxisomal functions by determining protein targeting to three kinds of plant peroxisomes.
    EMBO J. 2000 Nov 1;19(21):5701-10 PMID: 11060021
  79. CAND1 binds to unneddylated CUL1 and regulates the formation of SCF ubiquitin E3 ligase complex.
    Mol Cell. 2002 Dec;10 (6):1519-26 PMID: 12504026
  80. Contrasting modes of diversification in the Aux/IAA and ARF gene families.
    Plant Physiol. 2004 Jul;135(3):1738-52 PMID: 15247399
  81. The Arabidopsis F-box protein SLEEPY1 targets gibberellin signaling repressors for gibberellin-induced degradation.
    Plant Cell. 2004 Jun;16(6):1392-405 PMID: 15155881
  82. Peroxisomes: simple in function but complex in maintenance.
    Trends Cell Biol. 1999 Nov;9(11):447-53 PMID: 10511709
  83. Suppressors of an Arabidopsis thaliana phyB mutation identify genes that control light signaling and hypocotyl elongation.
    Genetics. 1998 Mar;148(3):1295-310 PMID: 9539443
  84. Sites and homeostatic control of auxin biosynthesis in Arabidopsis during vegetative growth.
    Plant J. 2001 Nov;28(4):465-74 PMID: 11737783
  85. Toxicology of chlorinated dibenzo-p-dioxins.
    Environ Health Perspect. 1973 Sep;5:87-99 PMID: 4270944
  86. Arabidopsis SGT1b is required for SCF(TIR1)-mediated auxin response.
    Plant Cell. 2003 Jun;15(6):1310-9 PMID: 12782725
  87. Mutations in Arabidopsis acyl-CoA oxidase genes reveal distinct and overlapping roles in beta-oxidation.
    Plant J. 2005 Mar;41(6):859-74 PMID: 15743450
  88. Occurrence and formation of indole-3-acetamide in Arabidopsis thaliana.
    Planta. 2002 Nov;216(1):155-61 PMID: 12430025
  89. NPH4, a conditional modulator of auxin-dependent differential growth responses in Arabidopsis.
    Plant Physiol. 1998 Dec;118(4):1265-75 PMID: 9847100
  90. A PINOID-dependent binary switch in apical-basal PIN polar targeting directs auxin efflux.
    Science. 2004 Oct 29;306(5697):862-5 PMID: 15514156
  91. Cloning of the gene for indoleacetic acid-lysine synthetase from Pseudomonas syringae subsp. savastanoi.
    J Bacteriol. 1986 May;166(2):598-603 PMID: 3084452
  92. Arabidopsis mutants resistant to the auxin effects of indole-3-acetonitrile are defective in the nitrilase encoded by the NIT1 gene.
    Plant Cell. 1997 Oct;9(10):1781-90 PMID: 9368415
  93. An herbivore elicitor activates the gene for indole emission in maize.
    Proc Natl Acad Sci U S A. 2000 Dec 19;97(26):14801-6 PMID: 11106389
  94. The auxin conjugate 1-O-indole-3-acetyl-beta-D-glucose is synthesized in immature legume seeds by IAGlc synthase and may be used for modification of some high molecular weight compounds.
    J Exp Bot. 2004 Apr;55(398):791-801 PMID: 14990619
  95. The neurobiology of X-linked adrenoleukodystrophy, a demyelinating peroxisomal disorder.
    Trends Neurosci. 1999 Jan;22(1):4-12 PMID: 10088993
  96. Indole-3-Acetic Acid Biosynthesis in the Mutant Maize orange pericarp, a Tryptophan Auxotroph.
    Science. 1991 Nov 15;254(5034):998-1000 PMID: 17731524
  97. AXR1-ECR1-dependent conjugation of RUB1 to the Arabidopsis Cullin AtCUL1 is required for auxin response.
    Plant Cell. 2002 Feb;14 (2):421-33 PMID: 11884684
  98. Cloning and expression of an Arabidopsis nitrilase which can convert indole-3-acetonitrile to the plant hormone, indole-3-acetic acid.
    Eur J Biochem. 1992 Apr 1;205(1):417-24 PMID: 1555601
  99. Regulation of phyllotaxis by polar auxin transport.
    Nature. 2003 Nov 20;426(6964):255-60 PMID: 14628043
  100. Structural basis for substrate recognition in the salicylic acid carboxyl methyltransferase family.
    Plant Cell. 2003 Aug;15(8):1704-16 PMID: 12897246
  101. The COP9 signalosome: an alternative lid for the 26S proteasome?
    Trends Cell Biol. 2003 Oct;13(10):507-9 PMID: 14507477
  102. SIR1, an upstream component in auxin signaling identified by chemical genetics.
    Science. 2003 Aug 22;301(5636):1107-10 PMID: 12893885
  103. Convergence of signaling pathways in the control of differential cell growth in Arabidopsis.
    Dev Cell. 2004 Aug;7(2):193-204 PMID: 15296716
  104. High temperature promotes auxin-mediated hypocotyl elongation in Arabidopsis.
    Proc Natl Acad Sci U S A. 1998 Jun 9;95(12):7197-202 PMID: 9618562
  105. Effect of Ethylene Treatment on Polar IAA Transport, Net IAA Uptake and Specific Binding of N-1-Naphthylphthalamic Acid in Tissues and Microsomes Isolated from Etiolated Pea Epicotyls.
    Plant Physiol. 1988 Nov;88(3):795-9 PMID: 16666386
  106. Tryptophan biosynthesis and metabolism: biochemical and molecular genetics.
    Plant Cell. 1995 Jul;7(7):921-34 PMID: 7640526
  107. Auxin action in a cell-free system.
    Curr Biol. 2003 Aug 19;13(16):1418-22 PMID: 12932326
  108. Sur2 mutations of Arabidopsis thaliana define a new locus involved in the control of auxin homeostasis.
    Plant J. 1998 Jun;14(5):603-11 PMID: 9675903
  109. Components involved in peroxisome import, biogenesis, proliferation, turnover, and movement.
    Physiol Rev. 1998 Jan;78(1):171-88 PMID: 9457172
  110. DFL1, an auxin-responsive GH3 gene homologue, negatively regulates shoot cell elongation and lateral root formation, and positively regulates the light response of hypocotyl length.
    Plant J. 2001 Jan;25(2):213-21 PMID: 11169197
  111. Preferential interaction of TIP120A with Cul1 that is not modified by NEDD8 and not associated with Skp1.
    Biochem Biophys Res Commun. 2003 Apr 18;303(4):1209-16 PMID: 12684064
  112. The oxylipin signal jasmonic acid is activated by an enzyme that conjugates it to isoleucine in Arabidopsis.
    Plant Cell. 2004 Aug;16(8):2117-27 PMID: 15258265
  113. How are peroxisomes formed? The role of the endoplasmic reticulum and peroxins.
    Trends Plant Sci. 2001 Jun;6(6):256-61 PMID: 11378467
  114. Correlation of structural and physico-chemical parameters with the bioactivity of alkylated derivatives of indole-3-acetic acid, a phytohormone (auxin).
    Acta Crystallogr B. 2000 Feb;56 ( Pt 1):94-111 PMID: 10735447
  115. Changes in auxin response from mutations in an AUX/IAA gene.
    Science. 1998 Feb 27;279(5355):1371-3 PMID: 9478901
  116. 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
  117. A gene encoding a protein modified by the phytohormone indoleacetic acid.
    Proc Natl Acad Sci U S A. 2002 Feb 5;99(3):1718-23 PMID: 11830675
  118. IAR4, a gene required for auxin conjugate sensitivity in Arabidopsis, encodes a pyruvate dehydrogenase E1alpha homolog.
    Plant Physiol. 2004 Jun;135(2):989-99 PMID: 15173569
  119. The role of SEUSS in auxin response and floral organ patterning.
    Development. 2004 Oct;131(19):4697-707 PMID: 15358669
  120. Auxin promotes Arabidopsis root growth by modulating gibberellin response.
    Nature. 2003 Feb 13;421(6924):740-3 PMID: 12610625
  121. Prediction of plant microRNA targets.
    Cell. 2002 Aug 23;110(4):513-20 PMID: 12202040
  122. Biosynthesis, conjugation, catabolism and homeostasis of indole-3-acetic acid in Arabidopsis thaliana.
    Plant Mol Biol. 2002 Sep;50(2):309-32 PMID: 12175022
  123. Diverse range of gene activity during Arabidopsis thaliana leaf senescence includes pathogen-independent induction of defense-related genes.
    Plant Mol Biol. 1999 May;40(2):267-78 PMID: 10412905
  124. Arabidopsis mutants define downstream branches in the phototransduction pathway.
    Genes Dev. 1994 Feb 1;8(3):339-49 PMID: 8314087
  125. An Arabidopsis mutant defective in jasmonate response is allelic to the auxin-signaling mutant axr1.
    Plant Physiol. 2002 Oct;130(2):887-94 PMID: 12376653
  126. The Arabidopsis SLEEPY1 gene encodes a putative F-box subunit of an SCF E3 ubiquitin ligase.
    Plant Cell. 2003 May;15(5):1120-30 PMID: 12724538
  127. Activation and repression of transcription by auxin-response factors.
    Proc Natl Acad Sci U S A. 1999 May 11;96(10):5844-9 PMID: 10318972
  128. Long-chain acyl-CoA oxidases of Arabidopsis.
    Plant J. 1999 Oct;20(1):1-13 PMID: 10571860
  129. Over-expression of an Arabidopsis gene encoding a glucosyltransferase of indole-3-acetic acid: phenotypic characterisation of transgenic lines.
    Plant J. 2002 Nov;32(4):573-83 PMID: 12445128
  130. ARF1, a transcription factor that binds to auxin response elements.
    Science. 1997 Jun 20;276(5320):1865-8 PMID: 9188533
  131. Interdependency of brassinosteroid and auxin signaling in Arabidopsis.
    PLoS Biol. 2004 Sep;2(9):E258 PMID: 15328536
  132. Ped3p is a peroxisomal ATP-binding cassette transporter that might supply substrates for fatty acid beta-oxidation.
    Plant Cell Physiol. 2002 Jan;43(1):1-11 PMID: 11828016
  133. P1/HC-Pro, a viral suppressor of RNA silencing, interferes with Arabidopsis development and miRNA unction.
    Dev Cell. 2003 Feb;4(2):205-17 PMID: 12586064
  134. Repressing a repressor: gibberellin-induced rapid reduction of the RGA protein in Arabidopsis.
    Plant Cell. 2001 Jul;13(7):1555-66 PMID: 11449051
  135. NITRILASE. I. OCCURRENCE, PREPARATION, AND GENERAL PROPERTIES OF THE ENZYME.
    Arch Biochem Biophys. 1964 Apr;105:133-41 PMID: 14165487
  136. Multiple ubiquitin ligase-mediated processes require COP9 signalosome and AXR1 function.
    Plant Cell. 2002 Oct;14 (10 ):2553-63 PMID: 12368504
  137. Composite structure of auxin response elements.
    Plant Cell. 1995 Oct;7(10):1611-23 PMID: 7580254
  138. Metabolism of indole-3-acetic acid in Arabidopsis.
    Plant Physiol. 1998 Sep;118(1):285-96 PMID: 9733548
  139. Interactions between auxin transport and the actin cytoskeleton in developmental polarity of Fucus distichus embryos in response to light and gravity.
    Plant Physiol. 2004 May;135(1):266-78 PMID: 15122028
  140. Control of germination and lipid mobilization by COMATOSE, the Arabidopsis homologue of human ALDP.
    EMBO J. 2002 Jun 17;21(12):2912-22 PMID: 12065405
  141. CYP83B1, a cytochrome P450 at the metabolic branch point in auxin and indole glucosinolate biosynthesis in Arabidopsis.
    Plant Cell. 2001 Jan;13(1):101-11 PMID: 11158532
  142. Identification and biochemical characterization of an Arabidopsis indole-3-acetic acid glucosyltransferase.
    J Biol Chem. 2001 Feb 9;276(6):4350-6 PMID: 11042207
  143. Recessive-interfering mutations in the gibberellin signaling gene SLEEPY1 are rescued by overexpression of its homologue, SNEEZY.
    Proc Natl Acad Sci U S A. 2004 Aug 24;101(34):12771-6 PMID: 15308775
  144. Related to ubiquitin 1 and 2 are redundant and essential and regulate vegetative growth, auxin signaling, and ethylene production in Arabidopsis.
    Plant Cell. 2004 Sep;16(9):2418-32 PMID: 15319484
  145. Members of the Arabidopsis-SKP1-like gene family exhibit a variety of expression patterns and may play diverse roles in Arabidopsis.
    Plant Physiol. 2003 Sep;133(1):203-17 PMID: 12970487
  146. Transport of indoleacetic acid in intact roots of Phaseolus coccineus.
    Planta. 1972 Jun;105(2):139-54 PMID: 24477753
  147. A dominant mutation in Arabidopsis confers resistance to auxin, ethylene and abscisic acid.
    Mol Gen Genet. 1990 Jul;222(2-3):377-83 PMID: 2148800
  148. Auxin-regulated gene expression in intact soybean hypocotyl and excised hypocotyl sections.
    Planta. 1984 Sep;162(2):147-53 PMID: 24254049
  149. Arabidopsis mutants in the C-S lyase of glucosinolate biosynthesis establish a critical role for indole-3-acetaldoxime in auxin homeostasis.
    Plant J. 2004 Mar;37(5):770-7 PMID: 14871316
  150. The ubiquitin-related protein RUB1 and auxin response in Arabidopsis.
    Science. 1998 Jun 12;280(5370):1760-3 PMID: 9624055
  151. The Arabidopsis peroxisomal targeting signal type 2 receptor PEX7 is necessary for peroxisome function and dependent on PEX5.
    Mol Biol Cell. 2005 Feb;16(2):573-83 PMID: 15548601
  152. iaglu, a gene from Zea mays involved in conjugation of growth hormone indole-3-acetic acid.
    Science. 1994 Sep 16;265(5179):1699-701 PMID: 8085154
  153. PIN-FORMED1 and PINOID regulate boundary formation and cotyledon development in Arabidopsis embryogenesis.
    Development. 2004 Oct;131(20):5021-30 PMID: 15371311
  154. A pathway for lateral root formation in Arabidopsis thaliana.
    Genes Dev. 1995 Sep 1;9(17):2131-42 PMID: 7657165
  155. Lateral relocation of auxin efflux regulator PIN3 mediates tropism in Arabidopsis.
    Nature. 2002 Feb 14;415(6873):806-9 PMID: 11845211
  156. Evidence that auxin promotes gibberellin A1 biosynthesis in pea.
    Plant J. 2000 Mar;21(6):547-52 PMID: 10758505
  157. The NPH4 locus encodes the auxin response factor ARF7, a conditional regulator of differential growth in aerial Arabidopsis tissue.
    Plant Cell. 2000 May;12(5):757-70 PMID: 10810148
  158. A family of auxin-conjugate hydrolases that contributes to free indole-3-acetic acid levels during Arabidopsis germination.
    Plant Physiol. 2004 Jun;135(2):978-88 PMID: 15155875
  159. Differential effects of 1-naphthaleneacetic acid, indole-3-acetic acid and 2,4-dichlorophenoxyacetic acid on the gravitropic response of roots in an auxin-resistant mutant of arabidopsis, aux1.
    Plant Cell Physiol. 1998 Jun;39(6):660-4 PMID: 9697346
  160. Determination of indole-3-pyruvic acid levels in Arabidopsis thaliana by gas chromatography-selected ion monitoring-mass spectrometry.
    J Chromatogr A. 1998 Mar 20;800(1):101-8 PMID: 9561757
  161. Higher activity of an aldehyde oxidase in the auxin-overproducing superroot1 mutant of Arabidopsis thaliana.
    Plant Physiol. 1998 Feb;116(2):687-93 PMID: 9489015
  162. A mutation in protein phosphatase 2A regulatory subunit A affects auxin transport in Arabidopsis.
    EMBO J. 1996 May 1;15(9):2115-24 PMID: 8641277
  163. Identification of an SCF ubiquitin-ligase complex required for auxin response in Arabidopsis thaliana.
    Genes Dev. 1999 Jul 1;13(13):1678-91 PMID: 10398681
  164. Hydrolysis of indole-3-acetic Acid esters exposed to mild alkaline conditions.
    Plant Physiol. 1989 Sep;91(1):9-12 PMID: 16667049
  165. Quantitative analysis of indole-3-acetic acid metabolites in Arabidopsis.
    Plant Physiol. 2001 Dec;127(4):1845-53 PMID: 11743128
  166. Translocation of radiolabeled indole-3-acetic acid and indole-3-acetyl-myo-inositol from kernel to shoot of Zea mays L.
    Plant Physiol. 1988;86:79-84 PMID: 11538236
  167. Arabidopsis CAND1, an unmodified CUL1-interacting protein, is involved in multiple developmental pathways controlled by ubiquitin/proteasome-mediated protein Degradation.
    Plant Cell. 2004 Jul;16(7):1870-82 PMID: 15208391
  168. Expression and localization of nitrilase during symptom development of the clubroot disease in Arabidopsis.
    Plant Physiol. 2000 Feb;122(2):369-78 PMID: 10677430
  169. Enzymic synthesis of indole-3-acetyl-1-O-beta-d-glucose. I. Partial purification and characterization of the enzyme from Zea mays.
    Plant Physiol. 1988;88:1474-80 PMID: 11537438
  170. Characterization of a family of IAA-amino acid conjugate hydrolases from Arabidopsis.
    J Biol Chem. 2002 Jun 7;277(23):20446-52 PMID: 11923288
  171. The auxin-induced transcriptome for etiolated Arabidopsis seedlings using a structure/function approach.
    Funct Integr Genomics. 2003 Dec;3(4):135-43 PMID: 14648238
  172. Fatty acid degradation in plant peroxisomes: function and biosynthesis of the enzymes involved.
    Biochimie. 1993;75(3-4):225-30 PMID: 8507684
  173. MicroRNA regulation of NAC-domain targets is required for proper formation and separation of adjacent embryonic, vegetative, and floral organs.
    Curr Biol. 2004 Jun 22;14(12):1035-46 PMID: 15202996
  174. Early auxin-induced genes encode short-lived nuclear proteins.
    Proc Natl Acad Sci U S A. 1994 Jan 4;91(1):326-30 PMID: 8278386
  175. Enhanced ethylene responsiveness in the Arabidopsis eer1 mutant results from a loss-of-function mutation in the protein phosphatase 2A A regulatory subunit, RCN1.
    Plant J. 2003 Jun;34(5):709-18 PMID: 12787251
  176. IBR5, a dual-specificity phosphatase-like protein modulating auxin and abscisic acid responsiveness in Arabidopsis.
    Plant Cell. 2003 Dec;15(12):2979-91 PMID: 14630970
  177. Control of auxin-regulated root development by the Arabidopsis thaliana SHY2/IAA3 gene.
    Development. 1999 Feb;126(4):711-21 PMID: 9895319
  178. Isolation and Partial Characterization of the Major Amide-Linked Conjugate of Indole-3-Acetic Acid from Phaseolus vulgaris L.
    Plant Physiol. 1986 Jan;80(1):99-104 PMID: 16664615
  179. The metabolism of 3-indolylalkanecarboxylic acids, and their amides, nitriles and methyl esters in plant tissues.
    Proc R Soc Lond B Biol Sci. 1960 May 17;152:231-54 PMID: 13849765
  180. Expression of tryptophan decarboxylase and tyrosine decarboxylase genes in tobacco results in altered biochemical and physiological phenotypes.
    Plant Physiol. 2000 Mar;122(3):933-43 PMID: 10712558
  181. The Arabidopsis cullin AtCUL1 is modified by the ubiquitin-related protein RUB1.
    Proc Natl Acad Sci U S A. 1999 Dec 21;96(26):15342-7 PMID: 10611386
  182. MicroRNAs: genomics, biogenesis, mechanism, and function.
    Cell. 2004 Jan 23;116(2):281-97 PMID: 14744438
  183. ABC-ATPases, adaptable energy generators fuelling transmembrane movement of a variety of molecules in organisms from bacteria to humans.
    J Mol Biol. 1999 Oct 22;293(2):381-99 PMID: 10529352
  184. The RUB/Nedd8 conjugation pathway is required for early development in Arabidopsis.
    EMBO J. 2003 Apr 15;22(8):1762-70 PMID: 12682009
  185. A role for the ubiquitin-26S-proteasome pathway in gibberellin signaling.
    Trends Plant Sci. 2003 Oct;8(10):492-7 PMID: 14557046
  186. Functional analysis of oxidative stress-activated mitogen-activated protein kinase cascade in plants.
    Proc Natl Acad Sci U S A. 2000 Mar 14;97(6):2940-5 PMID: 10717008
  187. Auxin regulation of cytokinin biosynthesis in Arabidopsis thaliana: a factor of potential importance for auxin-cytokinin-regulated development.
    Proc Natl Acad Sci U S A. 2004 May 25;101(21):8039-44 PMID: 15146070
  188. Computational identification of plant microRNAs and their targets, including a stress-induced miRNA.
    Mol Cell. 2004 Jun 18;14(6):787-99 PMID: 15200956
  189. The ABSCISIC ACID INSENSITIVE 3 (ABI3) gene is modulated by farnesylation and is involved in auxin signaling and lateral root development in Arabidopsis.
    Plant J. 2003 Apr;34(1):67-75 PMID: 12662310
  190. Auxin-induced SCFTIR1-Aux/IAA interaction involves stable modification of the SCFTIR1 complex.
    Proc Natl Acad Sci U S A. 2004 Aug 17;101(33):12381-6 PMID: 15295098
  191. Quantification of free plus conjugated indoleacetic acid in arabidopsis requires correction for the nonenzymatic conversion of indolic nitriles.
    Plant Physiol. 1996 Jul;111(3):781-8 PMID: 8754680
  192. Variation in expression and protein localization of the PIN family of auxin efflux facilitator proteins in flavonoid mutants with altered auxin transport in Arabidopsis thaliana.
    Plant Cell. 2004 Jul;16(7):1898-911 PMID: 15208397
  193. COI1: an Arabidopsis gene required for jasmonate-regulated defense and fertility.
    Science. 1998 May 15;280(5366):1091-4 PMID: 9582125
  194. The arabidopsis thaliana AGRAVITROPIC 1 gene encodes a component of the polar-auxin-transport efflux carrier.
    Proc Natl Acad Sci U S A. 1998 Dec 8;95(25):15112-7 PMID: 9844024
  195. Shoot-derived auxin is essential for early lateral root emergence in Arabidopsis seedlings.
    Plant J. 2002 Feb;29(3):325-32 PMID: 11844109
  196. EIN3-dependent regulation of plant ethylene hormone signaling by two arabidopsis F box proteins: EBF1 and EBF2.
    Cell. 2003 Dec 12;115(6):679-89 PMID: 14675533
  197. Isolation of the Arabidopsis ABI3 gene by positional cloning.
    Plant Cell. 1992 Oct;4(10):1251-61 PMID: 1359917
  198. An Arabidopsis mutant with a reduced level of cab140 RNA is a result of cosuppression.
    Plant Cell. 1993 Jun;5(6):667-77 PMID: 8329898
  199. The TIR1 protein of Arabidopsis functions in auxin response and is related to human SKP2 and yeast grr1p.
    Genes Dev. 1998 Jan 15;12(2):198-207 PMID: 9436980
  200. ACS4, a primary indoleacetic acid-responsive gene encoding 1-aminocyclopropane-1-carboxylate synthase in Arabidopsis thaliana. Structural characterization, expression in Escherichia coli, and expression characteristics in response to auxin [corrected].
    J Biol Chem. 1995 Aug 11;270(32):19093-9 PMID: 7642574
  201. Indolic constituents and indole-3-acetic acid biosynthesis in the wild-type and a tryptophan auxotroph mutant of Arabidopsis thaliana.
    Planta. 2000 Nov;211(6):855-63 PMID: 11144271
  202. A Mutation Altering Auxin Homeostasis and Plant Morphology in Arabidopsis.
    Plant Cell. 1995 Dec;7(12):2023-2037 PMID: 12242367
  203. Novel and stress-regulated microRNAs and other small RNAs from Arabidopsis.
    Plant Cell. 2004 Aug;16(8):2001-19 PMID: 15258262
  204. Characterization of auxin conjugates in Arabidopsis. Low steady-state levels of indole-3-acetyl-aspartate, indole-3-acetyl-glutamate, and indole-3-acetyl-glucose.
    Plant Physiol. 2000 Jun;123(2):589-96 PMID: 10859188
  205. Role of the plasma membrane H+-ATPase in auxin-induced elongation growth: historical and new aspects.
    J Plant Res. 2003 Dec;116(6):483-505 PMID: 12937999
  206. SKP1-SnRK protein kinase interactions mediate proteasomal binding of a plant SCF ubiquitin ligase.
    EMBO J. 2001 Jun 1;20(11):2742-56 PMID: 11387208
  207. Arabidopsis EIN3-binding F-box 1 and 2 form ubiquitin-protein ligases that repress ethylene action and promote growth by directing EIN3 degradation.
    Proc Natl Acad Sci U S A. 2004 Apr 27;101(17 ):6803-8 PMID: 15090654
  208. NEDD8 modification of CUL1 dissociates p120(CAND1), an inhibitor of CUL1-SKP1 binding and SCF ligases.
    Mol Cell. 2002 Dec;10 (6):1511-8 PMID: 12504025
  209. SGT1 encodes an essential component of the yeast kinetochore assembly pathway and a novel subunit of the SCF ubiquitin ligase complex.
    Mol Cell. 1999 Jul;4(1):21-33 PMID: 10445024
  210. The Arabidopsis BODENLOS gene encodes an auxin response protein inhibiting MONOPTEROS-mediated embryo patterning.
    Genes Dev. 2002 Jul 1;16(13):1610-5 PMID: 12101120
  211. HOOKLESS1, an ethylene response gene, is required for differential cell elongation in the Arabidopsis hypocotyl.
    Cell. 1996 Apr 19;85(2):183-94 PMID: 8612271
  212. Molecular cloning and analysis of cDNA encoding a plant tryptophan decarboxylase: comparison with animal dopa decarboxylases.
    Proc Natl Acad Sci U S A. 1989 Apr;86(8):2582-6 PMID: 2704736
  213. Trp-dependent auxin biosynthesis in Arabidopsis: involvement of cytochrome P450s CYP79B2 and CYP79B3.
    Genes Dev. 2002 Dec 1;16(23):3100-12 PMID: 12464638
  214. Plant aromatic L-amino acid decarboxylases: evolution, biochemistry, regulation, and metabolic engineering applications.
    Phytochemistry. 2000 May;54(2):121-38 PMID: 10872203
  215. chy1, an Arabidopsis mutant with impaired beta-oxidation, is defective in a peroxisomal beta-hydroxyisobutyryl-CoA hydrolase.
    J Biol Chem. 2001 Aug 17;276(33):31037-46 PMID: 11404361
  216. Growth and development of the axr1 mutants of Arabidopsis.
    Plant Cell. 1990 Nov;2(11):1071-80 PMID: 1983791
  217. An auxin surge following fertilization in carrots: a mechanism for regulating plant totipotency.
    Planta. 2002 Feb;214(4):505-9 PMID: 11925033
  218. Arabidopsis NAC1 transduces auxin signal downstream of TIR1 to promote lateral root development.
    Genes Dev. 2000 Dec 1;14 (23 ):3024-36 PMID: 11114891
  219. A defect in beta-oxidation causes abnormal inflorescence development in Arabidopsis.
    Plant Cell. 1999 Oct;11(10):1911-24 PMID: 10521521
  220. Lateral root formation is blocked by a gain-of-function mutation in the SOLITARY-ROOT/IAA14 gene of Arabidopsis.
    Plant J. 2002 Jan;29(2):153-68 PMID: 11862947
  221. AtCAND1, a HEAT-repeat protein that participates in auxin signaling in Arabidopsis.
    Plant Physiol. 2004 Jun;135(2):1020-6 PMID: 15181201
  222. Molecular cloning and characterization of aldehyde oxidases in Arabidopsis thaliana.
    Plant Cell Physiol. 1998 Apr;39(4):433-42 PMID: 9615466
  223. The IAA1 protein is encoded by AXR5 and is a substrate of SCF(TIR1).
    Plant J. 2004 Dec;40(5):772-82 PMID: 15546359
  224. Involvement of brassinosteroids in the gravitropic response of primary root of maize.
    Plant Physiol. 2000 Jul;123(3):997-1004 PMID: 10889248
  225. IAA17/AXR3: biochemical insight into an auxin mutant phenotype.
    Plant Cell. 2001 Apr;13(4):829-41 PMID: 11283339
  226. The HAT2 gene, a member of the HD-Zip gene family, isolated as an auxin inducible gene by DNA microarray screening, affects auxin response in Arabidopsis.
    Plant J. 2002 Dec;32(6):1011-22 PMID: 12492842
  227. Biosynthesis of indole-3-acetic acid in tomato shoots: Measurement, mass-spectral identification and incorporation of (-2)H from (-2)H 2O into indole-3-acetic acid, D- and L-tryptophan, indole-3-pyruvate and tryptamine.
    Planta. 1991 Jun;184(3):368-76 PMID: 24194155
  228. The SCF(COI1) ubiquitin-ligase complexes are required for jasmonate response in Arabidopsis.
    Plant Cell. 2002 Aug;14 (8):1919-35 PMID: 12172031
  229. ABP1 is required for organized cell elongation and division in Arabidopsis embryogenesis.
    Genes Dev. 2001 Apr 1;15(7):902-11 PMID: 11297513
  230. The role of regulated protein degradation in auxin response.
    Plant Mol Biol. 2002 Jun-Jul;49(3-4):401-9 PMID: 12036263
  231. Bus, a bushy Arabidopsis CYP79F1 knockout mutant with abolished synthesis of short-chain aliphatic glucosinolates.
    Plant Cell. 2001 Feb;13(2):351-67 PMID: 11226190
  232. Tryptophan-Requiring Mutants of the Plant Arabidopsis thaliana.
    Science. 1988 Apr 15;240(4850):305-10 PMID: 17796738
  233. Genetic analysis of indole-3-butyric acid responses in Arabidopsis thaliana reveals four mutant classes.
    Genetics. 2000 Nov;156(3):1323-37 PMID: 11063705
  234. The maize auxotrophic mutant orange pericarp is defective in duplicate genes for tryptophan synthase beta.
    Plant Cell. 1992 Jun;4(6):711-9 PMID: 1356534
  235. Degradation of Aux/IAA proteins is essential for normal auxin signalling.
    Plant J. 2000 Mar;21(6):553-62 PMID: 10758506
  236. The UNUSUAL FLORAL ORGANS gene of Arabidopsis thaliana is an F-box protein required for normal patterning and growth in the floral meristem.
    Plant J. 1999 Nov;20(4):433-45 PMID: 10607296
  237. Cloning and characterization of IAR1, a gene required for auxin conjugate sensitivity in Arabidopsis.
    Plant Cell. 2000 Dec;12(12):2395-2408 PMID: 11148286
  238. Two dominant photomorphogenic mutations of Arabidopsis thaliana identified as suppressor mutations of hy2.
    Plant J. 1996 Apr;9(4):441-56 PMID: 8624510
  239. Loss of an MDR transporter in compact stalks of maize br2 and sorghum dw3 mutants.
    Science. 2003 Oct 3;302(5642):81-4 PMID: 14526073
  240. Inhibition of auxin movement from the shoot into the root inhibits lateral root development in Arabidopsis.
    Plant Physiol. 1998 Dec;118(4):1369-78 PMID: 9847111
  241. Auxin and ETTIN in Arabidopsis gynoecium morphogenesis.
    Development. 2000 Sep;127(18):3877-88 PMID: 10952886
  242. Abscisic Acid Alters the Metabolism of Indole-3-Acetic Acid in Senescing Flowers of Cucumis melo L.
    Plant Physiol. 1990 Nov;94(3):870-4 PMID: 16667865
  243. Cytochrome P450 CYP79B2 from Arabidopsis catalyzes the conversion of tryptophan to indole-3-acetaldoxime, a precursor of indole glucosinolates and indole-3-acetic acid.
    J Biol Chem. 2000 Oct 27;275(43):33712-7 PMID: 10922360
  244. Plant Biology. Hormones and the green revolution.
    Science. 2003 Oct 3;302(5642):71-2 PMID: 14526071
  245. Aux/IAA proteins repress expression of reporter genes containing natural and highly active synthetic auxin response elements.
    Plant Cell. 1997 Nov;9(11):1963-71 PMID: 9401121
  246. Auxin signaling: derepression through regulated proteolysis.
    Dev Cell. 2001 Nov;1(5):595-604 PMID: 11709180
  247. A role for nitrilase 3 in the regulation of root morphology in sulphur-starving Arabidopsis thaliana.
    Plant J. 2002 Apr;30(1):95-106 PMID: 11967096
  248. Structure and function of indolepyruvate decarboxylase, a key enzyme in indole-3-acetic acid biosynthesis.
    Biochim Biophys Acta. 1995 May 18;1249(1):1-13 PMID: 7766676
  249. Analysis of a chemical plant defense mechanism in grasses.
    Science. 1997 Aug 1;277(5326):696-9 PMID: 9235894
  250. The roles of auxin response factor domains in auxin-responsive transcription.
    Plant Cell. 2003 Feb;15(2):533-43 PMID: 12566590
  251. Auxin from the developing inflorescence is required for the biosynthesis of active gibberellins in barley stems.
    Plant Physiol. 2004 Feb;134(2):769-76 PMID: 14730077
  252. Auxin signaling in Arabidopsis leaf vascular development.
    Plant Physiol. 2003 Mar;131(3):1327-39 PMID: 12644682
  253. Characterization of tryptophan synthase alpha subunit mutants of Arabidopsis thaliana.
    Mol Gen Genet. 1996 Dec 13;253(3):353-61 PMID: 9003322
  254. Transport of the two natural auxins, indole-3-butyric acid and indole-3-acetic acid, in Arabidopsis.
    Plant Physiol. 2003 Oct;133(2):761-72 PMID: 14526119
  255. Jasmonic acid carboxyl methyltransferase: a key enzyme for jasmonate-regulated plant responses.
    Proc Natl Acad Sci U S A. 2001 Apr 10;98(8):4788-93 PMID: 11287667
  256. The RCN1-encoded A subunit of protein phosphatase 2A increases phosphatase activity in vivo.
    Plant J. 1999 Nov;20(4):389-99 PMID: 10607292
  257. Isolation and characterization of mutants of Arabidopsis thaliana with increased resistance to growth inhibition by indoleacetic acid-amino acid conjugates.
    Plant Physiol. 1996 Oct;112(2):735-45 PMID: 8883385
  258. Superroot, a recessive mutation in Arabidopsis, confers auxin overproduction.
    Plant Cell. 1995 Sep;7(9):1405-19 PMID: 8589625
  259. MicroRNAs: at the root of plant development?
    Plant Physiol. 2003 Jun;132(2):709-17 PMID: 12805599
  260. Regulation of polar auxin transport by AtPIN1 in Arabidopsis vascular tissue.
    Science. 1998 Dec 18;282(5397):2226-30 PMID: 9856939
  261. AXR2 encodes a member of the Aux/IAA protein family.
    Plant Physiol. 2000 Jun;123(2):563-74 PMID: 10859186
  262. The growth regulating activity of certain omega-substituted alkyl carboxylic acids in relation to their beta-oxidation within the plant.
    Proc R Soc Lond B Biol Sci. 1954 Sep 27;142(909):525-36 PMID: 13215509
  263. Efflux-dependent auxin gradients establish the apical-basal axis of Arabidopsis.
    Nature. 2003 Nov 13;426(6963):147-53 PMID: 14614497
  264. The ZIP family of metal transporters.
    Biochim Biophys Acta. 2000 May 1;1465(1-2):190-8 PMID: 10748254
  265. The chemical diversity and distribution of glucosinolates and isothiocyanates among plants.
    Phytochemistry. 2001 Jan;56(1):5-51 PMID: 11198818
  266. Bacterial biosynthesis of indole-3-acetic acid.
    Can J Microbiol. 1996 Mar;42(3):207-20 PMID: 8868227
  267. The transparent testa4 mutation prevents flavonoid synthesis and alters auxin transport and the response of Arabidopsis roots to gravity and light.
    Plant Cell. 2004 May;16(5):1191-205 PMID: 15100399
  268. MicroRNA regulation of the CUC genes is required for boundary size control in Arabidopsis meristems.
    Development. 2004 Sep;131(17):4311-22 PMID: 15294871
  269. Molecular characterization of two cloned nitrilases from Arabidopsis thaliana: key enzymes in biosynthesis of the plant hormone indole-3-acetic acid.
    Proc Natl Acad Sci U S A. 1994 Jun 21;91(13):6021-5 PMID: 8016109
  270. Localization of the auxin permease AUX1 suggests two functionally distinct hormone transport pathways operate in the Arabidopsis root apex.
    Genes Dev. 2001 Oct 15;15(20):2648-53 PMID: 11641271
  271. Tryptophan mutants in Arabidopsis: the consequences of duplicated tryptophan synthase beta genes.
    Plant Cell. 1991 Apr;3(4):345-58 PMID: 1840915
  272. Teratogenic evaluation of 2,4,5-T.
    Science. 1970 May 15;168(3933):864-6 PMID: 5309824
  273. Disruption and overexpression of auxin response factor 8 gene of Arabidopsis affect hypocotyl elongation and root growth habit, indicating its possible involvement in auxin homeostasis in light condition.
    Plant J. 2004 Nov;40(3):333-43 PMID: 15469491
  274. 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
  275. An Arabidopsis indole-3-butyric acid-response mutant defective in PEROXIN6, an apparent ATPase implicated in peroxisomal function.
    Proc Natl Acad Sci U S A. 2004 Feb 10;101(6):1786-91 PMID: 14745029
  276. Null mutation of AtCUL1 causes arrest in early embryogenesis in Arabidopsis.
    Mol Biol Cell. 2002 Jun;13(6):1916-28 PMID: 12058059
  277. The auxin-induced maize gene ZmSAUR2 encodes a short-lived nuclear protein expressed in elongating tissues.
    J Biol Chem. 2003 Jun 27;278(26):23936-43 PMID: 12695517
  278. Differential regulation of an auxin-producing nitrilase gene family in Arabidopsis thaliana.
    Proc Natl Acad Sci U S A. 1994 Jul 5;91(14):6649-53 PMID: 8022831
  279. IAR3 encodes an auxin conjugate hydrolase from Arabidopsis.
    Plant Cell. 1999 Mar;11(3):365-76 PMID: 10072397
  280. Indole acetic acid distribution coincides with vascular differentiation pattern during Arabidopsis leaf ontogeny.
    Plant Physiol. 2002 Sep;130(1):199-209 PMID: 12226500
  281. EIR1, a root-specific protein involved in auxin transport, is required for gravitropism in Arabidopsis thaliana.
    Genes Dev. 1998 Jul 15;12(14):2175-87 PMID: 9679062
  282. The Nitrilase ZmNIT2 converts indole-3-acetonitrile to indole-3-acetic acid.
    Plant Physiol. 2003 Oct;133(2):794-802 PMID: 12972653
  283. A role for flavin monooxygenase-like enzymes in auxin biosynthesis.
    Science. 2001 Jan 12;291(5502):306-9 PMID: 11209081
  284. Arabidopsis AXR6 encodes CUL1 implicating SCF E3 ligases in auxin regulation of embryogenesis.
    EMBO J. 2003 Jul 1;22(13):3314-25 PMID: 12839993
  285. Characterization of an Arabidopsis enzyme family that conjugates amino acids to indole-3-acetic acid.
    Plant Cell. 2005 Feb;17(2):616-27 PMID: 15659623
  286. Early genes and auxin action.
    Plant Physiol. 1996 May;111(1):9-17 PMID: 8685277
  287. Enhanced gravi- and phototropism in plant mdr mutants mislocalizing the auxin efflux protein PIN1.
    Nature. 2003 Jun 26;423(6943):999-1002 PMID: 12827205
  288. Arabidopsis cytochrome P450 cyp83B1 mutations activate the tryptophan biosynthetic pathway.
    Genetics. 2002 Jan;160(1):323-32 PMID: 11805067
  289. Multidrug resistance-like genes of Arabidopsis required for auxin transport and auxin-mediated development.
    Plant Cell. 2001 Nov;13(11):2441-54 PMID: 11701880
  290. Promoter trapping of a novel medium-chain acyl-CoA oxidase, which is induced transcriptionally during Arabidopsis seed germination.
    J Biol Chem. 2000 Nov 3;275(44):34375-81 PMID: 10918060
  291. Arabidopsis thaliana auxotrophs reveal a tryptophan-independent biosynthetic pathway for indole-3-acetic acid.
    Proc Natl Acad Sci U S A. 1993 Nov 1;90(21):10355-9 PMID: 8234297
  292. Comprehensive comparison of auxin-regulated and brassinosteroid-regulated genes in Arabidopsis.
    Plant Physiol. 2004 Apr;134(4):1555-73 PMID: 15047898
  293. Responses of plant vascular systems to auxin transport inhibition.
    Development. 1999 Jul;126(13):2979-91 PMID: 10357941
  294. A gain-of-function mutation in IAA28 suppresses lateral root development.
    Plant Cell. 2001 Mar;13(3):465-80 PMID: 11251090
  295. Genes involved in organ separation in Arabidopsis: an analysis of the cup-shaped cotyledon mutant.
    Plant Cell. 1997 Jun;9(6):841-57 PMID: 9212461
  296. Auxin transport in roots : II. Polar flux of IAA in Zea roots.
    Planta. 1968 Dec;83(4):323-34 PMID: 24519273
  297. Molecular cloning and characterization of an amidase from Arabidopsis thaliana capable of converting indole-3-acetamide into the plant growth hormone, indole-3-acetic acid.
    Phytochemistry. 2003 Feb;62(3):293-300 PMID: 12620340
  298. Identification and quantification of three active auxins in different tissues of Tropaeolum majus.
    Physiol Plant. 2002 Jun;115(2):320-329 PMID: 12060252
  299. Arabidopsis ETA2, an apparent ortholog of the human cullin-interacting protein CAND1, is required for auxin responses mediated by the SCF(TIR1) ubiquitin ligase.
    Plant Cell. 2004 Jul;16(7):1883-97 PMID: 15208392
  300. The aux1 Mutation of Arabidopsis Confers Both Auxin and Ethylene Resistance.
    Plant Physiol. 1990 Nov;94(3):1462-6 PMID: 16667854
  301. The PS-IAA4/5-like family of early auxin-inducible mRNAs in Arabidopsis thaliana.
    J Mol Biol. 1995 Aug 25;251(4):533-49 PMID: 7658471
  302. Reduced naphthylphthalamic acid binding in the tir3 mutant of Arabidopsis is associated with a reduction in polar auxin transport and diverse morphological defects.
    Plant Cell. 1997 May;9(5):745-57 PMID: 9165751
Article Info
Journal
Annals of botany
Abbr.
Ann Bot
ISSN
0305-7364
Published
2005-04-00
Epub
2005-00-04
Pages
707-35
Language
English
Region
England
NLM ID
0372347
PMCID
PMC4246732
Subset
IM
Analysis Services
Analysis Services

Contact

No. 2 Wenbo Road, Zhangqiu District, Jinan, Shandong

Qilu Normal University · Genelibs Bioinformatics Lab

750 Shunhua Rd, Jinan

2F, Bldg F, University Science Park

Tel: 0531-88819269

WeChat Official Account

Follow our WeChat subscription account for real-time updates and the latest in medical and biological research.


Business Email

E-mail: product@genelibs.com