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Research ArticleResearch Article
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Control of Plant Trichome Development by a Cotton Fiber MYB Gene

Shui Wang, Jia-Wei Wang, Nan Yu, Chun-Hong Li, Bin Luo, Jin-Ying Gou, Ling-Jian Wang, Xiao-Ya Chen
Shui Wang
National Key Laboratory of Plant Molecular Genetics, Institute of Plant Physiology and Ecology, Shanghai Institutes for Biological Sciences, Chinese Academy of Sciences, Shanghai 200032, China
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Jia-Wei Wang
National Key Laboratory of Plant Molecular Genetics, Institute of Plant Physiology and Ecology, Shanghai Institutes for Biological Sciences, Chinese Academy of Sciences, Shanghai 200032, China
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Nan Yu
National Key Laboratory of Plant Molecular Genetics, Institute of Plant Physiology and Ecology, Shanghai Institutes for Biological Sciences, Chinese Academy of Sciences, Shanghai 200032, China
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Chun-Hong Li
National Key Laboratory of Plant Molecular Genetics, Institute of Plant Physiology and Ecology, Shanghai Institutes for Biological Sciences, Chinese Academy of Sciences, Shanghai 200032, China
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Bin Luo
National Key Laboratory of Plant Molecular Genetics, Institute of Plant Physiology and Ecology, Shanghai Institutes for Biological Sciences, Chinese Academy of Sciences, Shanghai 200032, China
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Jin-Ying Gou
National Key Laboratory of Plant Molecular Genetics, Institute of Plant Physiology and Ecology, Shanghai Institutes for Biological Sciences, Chinese Academy of Sciences, Shanghai 200032, China
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Ling-Jian Wang
National Key Laboratory of Plant Molecular Genetics, Institute of Plant Physiology and Ecology, Shanghai Institutes for Biological Sciences, Chinese Academy of Sciences, Shanghai 200032, China
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Xiao-Ya Chen
National Key Laboratory of Plant Molecular Genetics, Institute of Plant Physiology and Ecology, Shanghai Institutes for Biological Sciences, Chinese Academy of Sciences, Shanghai 200032, China
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Published September 2004. DOI: https://doi.org/10.1105/tpc.104.024844

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  • Figure 1.
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    Figure 1.

    Expression Patterns of G. arboreum RDL1, MYB2/FIF1, and HOX3 Genes.

    (A) Transcript profile of GaRDL1, GaMYB2, and GaHOX3 in plants of G. arboreum. Relative transcript amounts of each gene were normalized with respect to cotton Histone3 transcript levels (100%). Mean values were obtained from three independent PCR amplifications, and the error bars indicate the standard error of the mean. A break in the scale (=) has been incorporated to show the higher amount of GaRDL1 in fibers. R, roots; S, stems; L, leaves; O-0, 0-DPA ovules; F-3, 3-DPA fibers; F-6, 6-DPA fibers; F-9, 9-DPA fibers; F-12, 12-DPA fibers; NO-6, 6-DPA naked ovules (fibers stripped off).

    (B) GUS staining of Arabidopsis plants expressing RDL1-P3::GUS. Young leaf (top), mature leaf (middle), and stem (bottom) are shown.

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    Figure 2.

    Identification of cis-Elements in the RDL1 Promoter.

    (A) GUS activities driven by different upstream fragments of the cotton RDL1 gene. Nucleotides are numbered from the transcription initiation site.

    (B) Linker scanning of RDL1-P3. The 8-bp linkers (GGAATTCC or CCTGCAGG) were used. Red and pink boxes represent linkers of SCAN-1 through -20. The L1 box and MYB motif are underlined.

    (C) Effects of disruption of L1 box (L1-MU) and MYB motif (MYB-MU) on promoter activity. L1-MYB-MU indicates that both L1 box and MYB motif were mutated. The L1 box was mutated from TGCATTTA to TGCcgTTA and the MYB motif from CAGTTG to CAGTgG.

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    Figure 3.

    Transcriptional Activation of RDL1-P3 by GaMYB2 and HOX3.

    (A) DNA–protein interactions in yeast one-hybrid system. Yeast strain YM4271 integrating RDL1-OH (−221 to −33 bp) or RDL-OH-MYB-MU was transformed with GAL4 transcriptional activation domain (AD) (1), AD-GL1 (2), AD-WER (3), AD-GaMYB1 (4), and AD-GaMYB2 (5).

    (B) Effects of ectopic expression of MYB (GaMYB2 or GL1) and HOX (HOX3 or GL2) genes on the RDL1-P3::GUS expression pattern in Arabidopsis. In GL1/GL2, the box indicates the magnified region shown at right. 35S-NOS, the 35S promoter and nopaline synthase (NOS) terminator cassette; GaMYB2, 35S::GaMYB2/RDL1::GUS; HOX3, 35S::HOX3/RDL1::GUS; GaMYB2/HOX3, 35S::GaMYB2/35S::HOX3/RDL1::GUS; GL1/GL2, 35S::GL1/35S::GL2/RDL1::GUS.

    (C) GUS activities in Arabidopsis plants expressing both RDL1-P3::GUS and the transcription factors as indicated. MYB2, GaMYB2.

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    Figure 4.

    GaMYB2 Regulates Arabidopsis Trichome Development.

    (A) The Arabidopsis wild-type and a gl1 (SALK_039478) mutant seedling.

    (B) and (C) Trichome phenotypes of wild-type or gl1 mutant plants transformed with various chimerical genes as indicated. For intronless cDNA, a “c” was added as a suffix.

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    Figure 5.

    Effects of Intron 1 and the Intronic MYB Motif on Expression of Trichome-Related Genes.

    (A) GUS staining of Arabidopsis seedlings expressing GL1::GUS containing the GUS intron (top) and the first intron of GL1 (middle and bottom).

    (B) Intron positions in GL1, WER, and GaMYB2 genes and the MYB motif in the first intron of each gene. MYB2, GaMYB2.

    (C) Reduced production of trichomes in gl1 plants expressing GL1::GaMYB109, whose intron contains no MYB motif, or the MYB genes with disrupted intronic MYB motif. See also Table 1.

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    Figure 6.

    In Situ Hybridization of Cotton Ovule and the Arabidopsis Seed Trichome.

    (A) In situ hybridization of GaMYB2 transcripts in the G. arboreum ovule (0 DPA) with antisense (top) and sense (middle) probes. Arrowheads indicate fiber cells; the mRNA was localized in fiber cells.

    (B) Trichome(s) on seed of wild-type Arabidopsis expressing 35S::GaMYB2 observed under binoculars. Arrowheads indicate the seed-trichome.

    (C) Scanning electron micrographs depicting the trichome on seed of transgenic Arabidopsis expressing 35S::GaMYB2. The box indicates the magnified region shown in the bottom panels. Arrowhead indicates the seed-trichome.

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    Table 1.

    Regulation of Arabidopsis Trichome Development by GL1-Like Genes

    Wild-Type Backgroundgl1 Background
    ConstructT1 Plants Examined+ (%)↓ (%)T1 Plants Examined+ (%)+/− (%)− (%)
    GL1::GaMYB24757.542.55492.60.07.4
    GL1::GaMYB2c46100.00.0520.00.0100.0
    GL1::GaMYB10948100.00.05111.864.723.5
    GL1::GaMYB109c48100.00.0500.00.0100.0
    GL1::GL14856.243.85496.30.03.7
    GL1::GL1c46100.00.0540.00.0100.0
    GL1::WER4852.147.953100.00.00.0
    GL1::WERc48100.00.0540.00.0100.0
    35S::GaMYB25468.531.55492.60.07.4
    35S::GaMYB2c52100.00.0540.00.0100.0
    35S::GaMYB10954100.00.0480.00.0100.0
    35S::GaMYB109c50100.00.0480.00.0100.0
    35S::GL15466.733.35398.10.01.9
    35S::GL1c54100.00.0500.00.0100.0
    35S::WER5366.034.0541000.00.0
    35S::WERc53100.00.0520.00.0100.0
    RDL1::GaMYB23272.928.13096.70.03.3
    RDL1::GaMYB2c3174.225.832100.00.00.0
    RDL1::GL13177.422.632100.00.00.0
    RDL1::GL1c3278.121.931100.00.00.0
    GL1::GaMYB2-IN-MU3669.430.63611.133.355.6
    GL1::GL1-IN-MU3663.936.13658.341.70.0
    GL1::WER-IN-MU3661.138.93611.10.088.9
    • +, Trichomes normal; ↓, trichome amount reduced (less than one-third of wild-type trichomes); +/−, partial complementation to gl1 (less than half of wild-type trichomes); −, glabrous.

Additional Files

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    Files in this Data Supplement:

    • Supplemental Table 1
    • Supplemental Table 2
    • Supplemental Figure 1 - DNA blots of RDL1 and GaMYB2. Genomic DNA (10 μg/lane) of G. arboreum was completely digested and hybridized.
    • Supplemental Figure 2 - Alignment of protein sequences of A. thaliana GL1, WER, and G. arboreum MYB2. The deduced R2 and R3 MYB domains and the activation domain (AD) are indicated, respectively.
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Control of Plant Trichome Development by a Cotton Fiber MYB Gene
Shui Wang, Jia-Wei Wang, Nan Yu, Chun-Hong Li, Bin Luo, Jin-Ying Gou, Ling-Jian Wang, Xiao-Ya Chen
The Plant Cell Sep 2004, 16 (9) 2323-2334; DOI: 10.1105/tpc.104.024844

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Control of Plant Trichome Development by a Cotton Fiber MYB Gene
Shui Wang, Jia-Wei Wang, Nan Yu, Chun-Hong Li, Bin Luo, Jin-Ying Gou, Ling-Jian Wang, Xiao-Ya Chen
The Plant Cell Sep 2004, 16 (9) 2323-2334; DOI: 10.1105/tpc.104.024844
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The Plant Cell Online: 16 (9)
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