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FIG. 6. Functional characterization of AtOPT3. A, hybridization of an 600-bp AtOPT3 cDNA probe, corresponding to the 3-terminal exon, to RNA extracted from <t>Arabidopsis</t> roots of plants grown in control conditions (Ctl), copper (-Cu), manganese (-Mn), zinc (-Zn), and iron (-Fe) deficiency. The ethidium bromide-stained RNA gel is shown for quantification. B, growth of ctr1 expressing AtOPT3 on YPG-Ura plates supplemented with 10 M CuSO4 compared with the mutant transformed with the vector alone. C, growth of smf1 expressing AtOPT3 on manganese-limited medium, with and without 1 mM EGTA compared with the growth of the mutant transformed with the vector alone.
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FIG. 6. Functional characterization of AtOPT3. A, hybridization of an 600-bp AtOPT3 cDNA probe, corresponding to the 3-terminal exon, to RNA extracted from <t>Arabidopsis</t> roots of plants grown in control conditions (Ctl), copper (-Cu), manganese (-Mn), zinc (-Zn), and iron (-Fe) deficiency. The ethidium bromide-stained RNA gel is shown for quantification. B, growth of ctr1 expressing AtOPT3 on YPG-Ura plates supplemented with 10 M CuSO4 compared with the mutant transformed with the vector alone. C, growth of smf1 expressing AtOPT3 on manganese-limited medium, with and without 1 mM EGTA compared with the growth of the mutant transformed with the vector alone.
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FIG. 6. Functional characterization of AtOPT3. A, hybridization of an 600-bp AtOPT3 cDNA probe, corresponding to the 3-terminal exon, to RNA extracted from <t>Arabidopsis</t> roots of plants grown in control conditions (Ctl), copper (-Cu), manganese (-Mn), zinc (-Zn), and iron (-Fe) deficiency. The ethidium bromide-stained RNA gel is shown for quantification. B, growth of ctr1 expressing AtOPT3 on YPG-Ura plates supplemented with 10 M CuSO4 compared with the mutant transformed with the vector alone. C, growth of smf1 expressing AtOPT3 on manganese-limited medium, with and without 1 mM EGTA compared with the growth of the mutant transformed with the vector alone.
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FIG. 6. Functional characterization of AtOPT3. A, hybridization of an 600-bp AtOPT3 cDNA probe, corresponding to the 3-terminal exon, to RNA extracted from <t>Arabidopsis</t> roots of plants grown in control conditions (Ctl), copper (-Cu), manganese (-Mn), zinc (-Zn), and iron (-Fe) deficiency. The ethidium bromide-stained RNA gel is shown for quantification. B, growth of ctr1 expressing AtOPT3 on YPG-Ura plates supplemented with 10 M CuSO4 compared with the mutant transformed with the vector alone. C, growth of smf1 expressing AtOPT3 on manganese-limited medium, with and without 1 mM EGTA compared with the growth of the mutant transformed with the vector alone.
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FIG. 6. Functional characterization of AtOPT3. A, hybridization of an 600-bp AtOPT3 cDNA probe, corresponding to the 3-terminal exon, to RNA extracted from <t>Arabidopsis</t> roots of plants grown in control conditions (Ctl), copper (-Cu), manganese (-Mn), zinc (-Zn), and iron (-Fe) deficiency. The ethidium bromide-stained RNA gel is shown for quantification. B, growth of ctr1 expressing AtOPT3 on YPG-Ura plates supplemented with 10 M CuSO4 compared with the mutant transformed with the vector alone. C, growth of smf1 expressing AtOPT3 on manganese-limited medium, with and without 1 mM EGTA compared with the growth of the mutant transformed with the vector alone.
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FIG. 6. Functional characterization of AtOPT3. A, hybridization of an 600-bp AtOPT3 cDNA probe, corresponding to the 3-terminal exon, to RNA extracted from <t>Arabidopsis</t> roots of plants grown in control conditions (Ctl), copper (-Cu), manganese (-Mn), zinc (-Zn), and iron (-Fe) deficiency. The ethidium bromide-stained RNA gel is shown for quantification. B, growth of ctr1 expressing AtOPT3 on YPG-Ura plates supplemented with 10 M CuSO4 compared with the mutant transformed with the vector alone. C, growth of smf1 expressing AtOPT3 on manganese-limited medium, with and without 1 mM EGTA compared with the growth of the mutant transformed with the vector alone.
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Thermo Fisher s2 copy number analysis snp based copy number analysis dna
FIG. 6. Functional characterization of AtOPT3. A, hybridization of an 600-bp AtOPT3 cDNA probe, corresponding to the 3-terminal exon, to RNA extracted from <t>Arabidopsis</t> roots of plants grown in control conditions (Ctl), copper (-Cu), manganese (-Mn), zinc (-Zn), and iron (-Fe) deficiency. The ethidium bromide-stained RNA gel is shown for quantification. B, growth of ctr1 expressing AtOPT3 on YPG-Ura plates supplemented with 10 M CuSO4 compared with the mutant transformed with the vector alone. C, growth of smf1 expressing AtOPT3 on manganese-limited medium, with and without 1 mM EGTA compared with the growth of the mutant transformed with the vector alone.
S2 Copy Number Analysis Snp Based Copy Number Analysis Dna, supplied by Thermo Fisher, used in various techniques. Bioz Stars score: 99/100, based on 1 PubMed citations. ZERO BIAS - scores, article reviews, protocol conditions and more
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FIG. 6. Functional characterization of AtOPT3. A, hybridization of an 600-bp AtOPT3 cDNA probe, corresponding to the 3-terminal exon, to RNA extracted from <t>Arabidopsis</t> roots of plants grown in control conditions (Ctl), copper (-Cu), manganese (-Mn), zinc (-Zn), and iron (-Fe) deficiency. The ethidium bromide-stained RNA gel is shown for quantification. B, growth of ctr1 expressing AtOPT3 on YPG-Ura plates supplemented with 10 M CuSO4 compared with the mutant transformed with the vector alone. C, growth of smf1 expressing AtOPT3 on manganese-limited medium, with and without 1 mM EGTA compared with the growth of the mutant transformed with the vector alone.
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Thermo Fisher biotin labeled ss cdna
FIG. 6. Functional characterization of AtOPT3. A, hybridization of an 600-bp AtOPT3 cDNA probe, corresponding to the 3-terminal exon, to RNA extracted from <t>Arabidopsis</t> roots of plants grown in control conditions (Ctl), copper (-Cu), manganese (-Mn), zinc (-Zn), and iron (-Fe) deficiency. The ethidium bromide-stained RNA gel is shown for quantification. B, growth of ctr1 expressing AtOPT3 on YPG-Ura plates supplemented with 10 M CuSO4 compared with the mutant transformed with the vector alone. C, growth of smf1 expressing AtOPT3 on manganese-limited medium, with and without 1 mM EGTA compared with the growth of the mutant transformed with the vector alone.
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FIG. 6. Functional characterization of AtOPT3. A, hybridization of an 600-bp AtOPT3 cDNA probe, corresponding to the 3-terminal exon, to RNA extracted from <t>Arabidopsis</t> roots of plants grown in control conditions (Ctl), copper (-Cu), manganese (-Mn), zinc (-Zn), and iron (-Fe) deficiency. The ethidium bromide-stained RNA gel is shown for quantification. B, growth of ctr1 expressing AtOPT3 on YPG-Ura plates supplemented with 10 M CuSO4 compared with the mutant transformed with the vector alone. C, growth of smf1 expressing AtOPT3 on manganese-limited medium, with and without 1 mM EGTA compared with the growth of the mutant transformed with the vector alone.
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FIG. 6. Functional characterization of AtOPT3. A, hybridization of an 600-bp AtOPT3 cDNA probe, corresponding to the 3-terminal exon, to RNA extracted from <t>Arabidopsis</t> roots of plants grown in control conditions (Ctl), copper (-Cu), manganese (-Mn), zinc (-Zn), and iron (-Fe) deficiency. The ethidium bromide-stained RNA gel is shown for quantification. B, growth of ctr1 expressing AtOPT3 on YPG-Ura plates supplemented with 10 M CuSO4 compared with the mutant transformed with the vector alone. C, growth of smf1 expressing AtOPT3 on manganese-limited medium, with and without 1 mM EGTA compared with the growth of the mutant transformed with the vector alone.
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Image Search Results


FIG. 6. Functional characterization of AtOPT3. A, hybridization of an 600-bp AtOPT3 cDNA probe, corresponding to the 3-terminal exon, to RNA extracted from Arabidopsis roots of plants grown in control conditions (Ctl), copper (-Cu), manganese (-Mn), zinc (-Zn), and iron (-Fe) deficiency. The ethidium bromide-stained RNA gel is shown for quantification. B, growth of ctr1 expressing AtOPT3 on YPG-Ura plates supplemented with 10 M CuSO4 compared with the mutant transformed with the vector alone. C, growth of smf1 expressing AtOPT3 on manganese-limited medium, with and without 1 mM EGTA compared with the growth of the mutant transformed with the vector alone.

Journal: Journal of Biological Chemistry

Article Title: Expression Profiles of Arabidopsis thaliana in Mineral Deficiencies Reveal Novel Transporters Involved in Metal Homeostasis

doi: 10.1074/jbc.m309338200

Figure Lengend Snippet: FIG. 6. Functional characterization of AtOPT3. A, hybridization of an 600-bp AtOPT3 cDNA probe, corresponding to the 3-terminal exon, to RNA extracted from Arabidopsis roots of plants grown in control conditions (Ctl), copper (-Cu), manganese (-Mn), zinc (-Zn), and iron (-Fe) deficiency. The ethidium bromide-stained RNA gel is shown for quantification. B, growth of ctr1 expressing AtOPT3 on YPG-Ura plates supplemented with 10 M CuSO4 compared with the mutant transformed with the vector alone. C, growth of smf1 expressing AtOPT3 on manganese-limited medium, with and without 1 mM EGTA compared with the growth of the mutant transformed with the vector alone.

Article Snippet: Genome-wide Analysis Provides Insight into Metal Transport—We have used Affymetrix Arabidopsis DNA chips containing 8,300 genes (which cover about one-third of the ge- FIG. 7.

Techniques: Functional Assay, Hybridization, Control, Staining, Expressing, Mutagenesis, Transformation Assay, Plasmid Preparation