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1998, ISBN 9781566766845, xx, 179
Book
Proceedings of the National Academy of Sciences of the United States of America, ISSN 0027-8424, 12/2009, Volume 106, Issue 52, pp. 22540 - 22545
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... 
Receptors | Phenotypes | RNA | Genes | Alleles | Auxins | Gene expression regulation | Plants | Seedlings | Plant cells | Plant hormone | Plant development | plant hormone | plant development | ARABIDOPSIS-THALIANA | DOMAIN | MEMBERS | ARF | MULTIDISCIPLINARY SCIENCES | FUNCTIONAL GENOMIC ANALYSIS | BOX PROTEIN TIR1 | TRANSCRIPTIONAL REPRESSION | DEGRADATION | AUX/IAA PROTEINS | Arabidopsis Proteins - genetics | Plant Roots - metabolism | Indoleacetic Acids - metabolism | Arabidopsis - growth & development | F-Box Proteins - metabolism | Receptors, Cell Surface - metabolism | RNA, Plant - genetics | Recombinant Fusion Proteins - metabolism | Arabidopsis - metabolism | Arabidopsis - genetics | Arabidopsis Proteins - metabolism | Plant Proteins - genetics | Indoleacetic Acids - pharmacology | Plants, Genetically Modified | Gene Expression Regulation, Plant | Recombinant Fusion Proteins - genetics | MicroRNAs - genetics | Plant Proteins - metabolism | Mutation | F-Box Proteins - genetics | Genes, Plant - drug effects | Plant Roots - growth & development | Receptors, Cell Surface - genetics | Plant proteins | Auxin | Research | Arabidopsis | Growth | RNA, Plant | Genes, Plant | Receptors, Cell Surface | Recombinant Fusion Proteins | Life Sciences | F-Box Proteins | Arabidopsis Proteins | Plant Roots | MicroRNAs | Plant Proteins | Vegetal Biology | Indoleacetic Acids | Biological Sciences
Journal Article
New Phytologist, ISSN 0028-646X, 2/2012, Volume 193, Issue 3, pp. 570 - 575
Journal Article
PLoS ONE, ISSN 1932-6203, 03/2016, Volume 11, Issue 3, p. e0149980
Previous studies with Paenibacillus lentimorbus B-30488" (hereafter referred as B-30488), a plant growth promoting rhizobacteria (PGPR) isolated from cow's... 
BUNCHY-TOP-VIRUS | SYSTEMIC RESISTANCE | TRANSGENIC TOBACCO | ABIOTIC STRESS | PSEUDOMONAS-FLUORESCENS | FUNCTIONAL DIVERSITY | ENDOPHYTIC BACTERIA | PROMOTING RHIZOBACTERIA | MULTIDISCIPLINARY SCIENCES | PHOSPHATE SOLUBILIZING BACTERIA | PLANT-GROWTH | Seeds - virology | Plant Leaves - virology | Plant Diseases - microbiology | Paenibacillus - genetics | Tobacco - growth & development | Flowers - virology | Cucumovirus - genetics | Plant Diseases - virology | Photosynthesis - genetics | Virulence - genetics | Genes, Viral - genetics | Seeds - microbiology | Tobacco - virology | Flowers - microbiology | Tobacco - microbiology | Plant Leaves - microbiology | Chlorophyll | Biological control | Physiological aspects | Rhizobium | Research | Pests | Photosynthesis | Ascorbic acid | Pathogenesis | Virulence | Biochemistry | Guaiacol | Cow's milk | Aging | Physiology | Plant viruses | Crop yield | Milk | Stresses | Pectin | Plants | Gene expression | Malondialdehyde | Studies | Polymerase chain reaction | Tobacco | Councils | Host plants | Vigor | Alkaline phosphatase | Seeds | Laboratories | L-Ascorbate peroxidase | Genes | Proline | Viruses | Superoxide dismutase | Infections | Flowers | Accumulation | Leaves | Inoculation | Catalase | Hypodermis | Bacteria | Peroxidase | Agriculture | Plants (botany) | Abiotic stress | Histology | Ecology | Ribonucleic acid--RNA | Stress | Plant virus diseases | Virology | Lymphocytes B | Plant growth | Crop diseases | Acid phosphatase | RNA | Ribonucleic acid
Journal Article
The Plant Journal, ISSN 0960-7412, 10/2011, Volume 68, Issue 2, pp. 302 - 313
Summary NAC transcription factors play important roles in plant growth, development and stress responses. Previously, we identified multiple NAC genes in... 
soybean | transgenic plants | transcription factor | stress tolerance | NAC protein | lateral root | MOLECULAR CHARACTERIZATION | PROTEIN | MEDIATED TRANSFORMATION | ARABIDOPSIS PLANTS | SALT-STRESS | NEGATIVE REGULATOR | MERISTEM FORMATION | PLANT SCIENCES | SHOOT MERISTEM | FUNCTIONAL-ANALYSIS | RESPONSIVE GENE-EXPRESSION | Green Fluorescent Proteins | Flowers - metabolism | Nucleotide Motifs - genetics | Sodium Chloride - pharmacology | Transcriptional Activation | Protoplasts | Plant Roots - genetics | Seedlings - genetics | Plant Stems - genetics | Soybeans - genetics | Freezing | Seedlings - growth & development | DNA-Binding Proteins - metabolism | Soybeans - growth & development | Cell Nucleus - metabolism | Droughts | Plants, Genetically Modified | Salt-Tolerance | Plant Proteins - metabolism | Plant Roots - growth & development | Plant Stems - growth & development | Stress, Physiological - physiology | Soybean Proteins - metabolism | Plant Roots - metabolism | Indoleacetic Acids - metabolism | Soybean Proteins - genetics | Gene Expression Regulation, Plant - genetics | Transcription Factors - genetics | Cotyledon - genetics | DNA-Binding Proteins - genetics | Cotyledon - metabolism | Soybeans - metabolism | Flowers - growth & development | Arabidopsis - metabolism | Arabidopsis - genetics | Transcription Factors - metabolism | Plant Proteins - genetics | Plant Stems - metabolism | Cotyledon - growth & development | Plant Growth Regulators - metabolism | Flowers - genetics | Seedlings - metabolism | Genetically modified plants | Analysis | Genes | Genetic research | Genetic engineering | DNA binding proteins | Soybean | Plants | Glycine | Plant hormones | Soybeans | Crop science | Plant growth | Gene expression | Transgenic plants | Agronomy
Journal Article
PLoS ONE, ISSN 1932-6203, 04/2017, Volume 12, Issue 4, p. e0175650
Drought is a major threat to global soybean production. The limited transformation potential and polyploid nature of soybean have hindered functional analysis... 
SIGNAL-TRANSDUCTION | ARABIDOPSIS-THALIANA | PROTEIN | YIELD PROTECTION | TOLERANCE | MULTIDISCIPLINARY SCIENCES | LATENT-SPHERICAL-VIRUS | FARNESYLATION | FARNESYLTRANSFERASE | PLANT FUNCTIONAL GENOMICS | STRESS | Gene Expression Regulation, Enzymologic - drug effects | Plant Viruses - genetics | Soybeans - genetics | Soybeans - growth & development | Adaptation, Physiological - genetics | Droughts | Base Sequence | Soybeans - enzymology | Plant Stomata - drug effects | Plant Leaves - enzymology | Amino Acid Sequence | Malus - virology | Isoenzymes - genetics | Gene Expression Regulation, Developmental - drug effects | Gene Silencing | Down-Regulation - drug effects | Reverse Transcriptase Polymerase Chain Reaction | Sequence Homology, Nucleic Acid | Sequence Homology, Amino Acid | Abscisic Acid - pharmacology | Plant Proteins - genetics | Gene Expression Regulation, Plant - drug effects | Plant Leaves - genetics | Farnesyltranstransferase - genetics | Plant Leaves - growth & development | Plant Growth Regulators - pharmacology | Plant Stomata - genetics | Plant Stomata - physiology | Japan | Environmental aspects | Physiological aspects | Abscisic acid | Genetic aspects | Soybean | Research | Soybeans | Plant pathology | Seeds | Laboratories | Genomics | Genes | Viruses | Dehydration | Harvest | Transgenic plants | Proteins | Disease resistance | Water loss | Drought resistance | Acid resistance | Agricultural production | Farnesyltransferase | Agriculture | Drought | Deoxyribonucleic acid--DNA | Guard cells | Stomata | Functional analysis | Gene expression | Gene silencing | Plant breeding | Wilting | Deoxyribonucleic acid | DNA
Journal Article
Journal of Experimental Botany, ISSN 0022-0957, 1/2013, Volume 64, Issue 13, pp. 4053 - 4080
Journal Article
PLoS Genetics, ISSN 1553-7390, 05/2011, Volume 7, Issue 5, p. e1001388
Floral organs display tremendous variation in their exterior that is essential for organogenesis and the interaction with the environment. This diversity in... 
CELL-WALL | CUTIN BIOSYNTHESIS | THALIANA | GIBBERELLIN | GENETICS & HEREDITY | GENE-EXPRESSION | TRANSGENIC PLANTS | EXTRACELLULAR-MATRIX | FLORAL DEVELOPMENT | FATTY-ACIDS | FUNCTIONAL GENOMICS | Up-Regulation | Pectins - metabolism | Plants, Genetically Modified - growth & development | Arabidopsis - growth & development | Flowers - metabolism | Genes, Plant | Transcriptional Activation | Flowers - ultrastructure | Arabidopsis Proteins - metabolism | Gene Expression Regulation, Developmental | Gibberellins - metabolism | Luciferases | Gene Expression Regulation, Plant | Membrane Lipids - analysis | Plant Epidermis - growth & development | Arabidopsis Proteins - genetics | Plants, Genetically Modified - genetics | Signal Transduction | Down-Regulation | Gene Silencing | Arabidopsis - ultrastructure | Transcription Factors - genetics | Flowers - growth & development | Arabidopsis - metabolism | Arabidopsis - genetics | Transcription Factors - metabolism | Plants, Genetically Modified - ultrastructure | Phenotype | Plants, Genetically Modified - metabolism | Cell Wall - metabolism | Membrane Lipids - metabolism | Waxes - analysis | Flowers - genetics | Physiological aspects | Transcription factors | Genetic aspects | Flowers | Arabidopsis | Proteins | Plant reproduction | Microscopy | Colleges & universities | Lipids | Biosynthesis | Flowers & plants | Metabolism | Fatty acids
Journal Article