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The Plant cell, ISSN 1040-4651, 9/2007, Volume 19, Issue 9, pp. 2763 - 2775
.... To date, nothing is known about their function in plants. Here, we show that the Arabidopsis thaliana CLASP protein is a microtubule-associated protein that is involved in both cell division and cell expansion... 
Proteins | Dendritic cells | Microtubules | Epidermal cells | Plant roots | Fluorescence | Plants | Microtubule associated proteins | Animal cells | Plant cells | PLUS-END | BAND ORGANIZATION | ROOT | BIOCHEMISTRY & MOLECULAR BIOLOGY | PLANT-CELLS | MICROFILAMENT CROSS-TALK | PLANT SCIENCES | CELL BIOLOGY | CORTICAL MICROTUBULES | CELLULOSE MICROFIBRIL ALIGNMENT | MITOTIC SPINDLE | DYNAMICS | HELICAL GROWTH | Microtubule-Associated Proteins - chemistry | Microtubule-Associated Proteins - genetics | Dinitrobenzenes - pharmacology | Phylogeny | Plant Epidermis - ultrastructure | Recombinant Fusion Proteins - metabolism | Plant Roots - drug effects | Microtubules - metabolism | Microtubules - drug effects | Plant Epidermis - cytology | Plant Leaves - drug effects | Plant Roots - growth & development | Cytokinesis - drug effects | Protein Structure, Tertiary | Green Fluorescent Proteins - metabolism | Arabidopsis Proteins - genetics | Arabidopsis - drug effects | Arabidopsis - cytology | Cell Size - drug effects | Plant Roots - cytology | Plant Epidermis - drug effects | Mutation - genetics | Cell Division - drug effects | Plant Leaves - cytology | Arabidopsis - metabolism | Arabidopsis - genetics | Gene Expression Regulation, Plant - drug effects | Mitosis - drug effects | Arabidopsis Proteins - chemistry | Cell Proliferation - drug effects | Interphase - drug effects | Plant Leaves - ultrastructure | Sulfanilamides - pharmacology | Arabidopsis thaliana | Growth | Mitosis | Kinetochores | Genetic aspects | Research | Properties | Observations | Gene expression
Journal Article
Development (Cambridge), ISSN 0950-1991, 11/2013, Volume 140, Issue 22, pp. 4510 - 4521
... asymmetrically only once to produce an Alcama-negative, proliferating retinal progenitor. The initial mitotic division of Muller glia involves interkinetic nuclear migration, but mitosis of retinal progenitors occurs in situ... 
Müller glia | N-cadherin | Retinal regeneration | Alcama | Muller glia | STEM-CELLS | DEDIFFERENTIATION | PROLIFERATION | DEVELOPMENTAL BIOLOGY | GOLDFISH RETINA | ADULT ZEBRAFISH | VERTEBRATE RETINA | ROD PHOTORECEPTORS | SIGNALING PATHWAY | NEUROGENESIS | LINEAGE | Cadherins - metabolism | Multipotent Stem Cells - metabolism | Photoreceptor Cells, Vertebrate - drug effects | Ependymoglial Cells - metabolism | Neural Stem Cells - cytology | Neuroepithelial Cells - cytology | Retinal Ganglion Cells - metabolism | Retinal Neurons - cytology | Retinal Ganglion Cells - cytology | Neurogenesis - drug effects | Retinal Neurons - drug effects | Asymmetric Cell Division - drug effects | Ouabain - pharmacology | Biomarkers - metabolism | Cell Dedifferentiation - drug effects | Zebrafish Proteins - metabolism | Neural Stem Cells - drug effects | Photoreceptor Cells, Vertebrate - cytology | Cell Adhesion - drug effects | Ependymoglial Cells - drug effects | Regeneration - drug effects | Animals | Retinal Neurons - metabolism | Models, Biological | Multipotent Stem Cells - cytology | Zebrafish - metabolism | Ependymoglial Cells - cytology | Heterozygote | Neuroepithelial Cells - metabolism | Photoreceptor Cells, Vertebrate - metabolism | Cell Cycle - drug effects | Neural Stem Cells - metabolism | Retinal Ganglion Cells - drug effects | Stem Cells and Regeneration
Journal Article
Nature neuroscience, ISSN 1546-1726, 2006, Volume 9, Issue 6, pp. 729 - 731
.... To investigate a causal link between these two observations, we analyzed the effect of enrichment on spatial learning and anxiety-like behavior while blocking adult hippocampal neurogenesis... 
NEURONS | MICE | LONG-TERM-MEMORY | DENTATE GYRUS | EXPRESSION | NEUROSCIENCES | Memory Disorders - physiopathology | Maze Learning - radiation effects | Neuronal Plasticity - drug effects | Bromodeoxyuridine | Anxiety - drug therapy | Behavior, Animal - radiation effects | Environment, Controlled | Habituation, Psychophysiologic - drug effects | Neuronal Plasticity - physiology | Dentate Gyrus - drug effects | Neurons - physiology | Behavior, Animal - drug effects | Antidepressive Agents - pharmacology | Habituation, Psychophysiologic - radiation effects | Neurons - drug effects | Neuronal Plasticity - radiation effects | Maze Learning - physiology | Stem Cells - radiation effects | Anxiety - physiopathology | Cell Division - radiation effects | Behavior, Animal - physiology | Dentate Gyrus - radiation effects | Maze Learning - drug effects | Cell Division - drug effects | Feeding Behavior - physiology | Feeding Behavior - drug effects | Cell Division - physiology | Animals | Dentate Gyrus - physiology | Habituation, Psychophysiologic - physiology | X-Rays | Feeding Behavior - radiation effects | Stem Cells - drug effects | Stem Cells - physiology | Mice | Neurons - radiation effects | Cell Proliferation - radiation effects | Neural transmission | Regulation | Behavioral assessment | Research | Hippocampus (Brain) | Neurons
Journal Article
The Plant cell, ISSN 1532-298X, 2006, Volume 18, Issue 11, pp. 3132 - 3144
... (for NAC with transmembrane motifi), is activated by proteolytic cleavage through regulated intramembrane proteolysis and mediates cytokinin signaling during cell division in Arabidopsis thaliana... 
Cytokinins | Leaves | Transcription factors | Plant growth regulators | Epidermal cells | Cell division | Gene expression regulation | Plants | Transgenic plants | Plant cells | BIOCHEMISTRY & MOLECULAR BIOLOGY | STRESS-RESPONSE | LATERAL ROOT DEVELOPMENT | KINASE INHIBITOR | CYTOKININ | PLANT SCIENCES | CELL BIOLOGY | ORGAN DEVELOPMENT | AUXIN | PROTEIN-DEGRADATION | FUNCTIONAL-ANALYSIS | APICAL-MERISTEM | EXPRESSION | Gene Expression - drug effects | Arabidopsis - growth & development | Arabidopsis Proteins - secretion | Cytokinins - pharmacology | Arabidopsis Proteins - metabolism | Transcription Factors - secretion | Thermodynamics | Protein Processing, Post-Translational - drug effects | Plants, Genetically Modified | Cell Membrane - metabolism | Membrane Proteins - metabolism | Plant Leaves - drug effects | Cell Membrane - drug effects | Hypocotyl - ultrastructure | Membrane Proteins - secretion | Arabidopsis - cytology | Arabidopsis - ultrastructure | Chromosome Mapping | Seedlings - drug effects | Chromosomes, Plant - metabolism | Mutation - genetics | Cell Division - drug effects | Plant Leaves - cytology | Seedlings - ultrastructure | Arabidopsis - genetics | Transcription Factors - metabolism | Biomechanical Phenomena | Phenotype | Signal Transduction - drug effects | Models, Biological | Hypocotyl - drug effects | Intracellular Membranes - drug effects | Intracellular Membranes - metabolism | Plant Leaves - ultrastructure | Arabidopsis | Plant cellular control mechanisms | Genetic aspects | Research | DNA binding proteins | Structure
Journal Article
Journal of Cell Science, ISSN 0021-9533, 2016, Volume 129, Issue 18, pp. 3437 - 3448
Journal Article
Journal of experimental botany, ISSN 0022-0957, 1/2014, Volume 65, Issue 22, pp. 6553 - 6561
Journal Article
The New phytologist, ISSN 0028-646X, 2014, Volume 203, Issue 4, pp. 1175 - 1193
...Introduction Asymmetric cell division and differential cell growth are both fundamental mechanisms underlying plant development and morphogenesis... 
Phosphates | Full papers | Dehydrogenases | Ribosomal proteins | Carrier proteins | Adenosine triphosphatases | Heat shock proteins | Trip chaining | Peptide elongation factors | Families | Chaperonins | MAPKKK | MAP65‐1 | Arabidopsis | root | MPK6 | YODA | microtubules | cell division plane | MAP65-1 | Root | Microtubules | Cell division plane | MICROTUBULE ARRAYS | SITE | STOMATAL DEVELOPMENT | MAP KINASE | FATE | PHRAGMOPLAST | PLANT SCIENCES | CYTOKINESIS | THALIANA | GROWTH | GENE FAMILY | Meristem - cytology | Arabidopsis - enzymology | Arabidopsis - embryology | Protein Transport - drug effects | Arabidopsis Proteins - metabolism | Microtubules - metabolism | Microtubules - drug effects | Protein Binding - drug effects | Plant Epidermis - cytology | Meristem - drug effects | Phosphorylation - drug effects | Cytokinesis - drug effects | Arabidopsis - drug effects | Indoleacetic Acids - metabolism | Interphase | Arabidopsis - cytology | MAP Kinase Kinase Kinases - metabolism | Plant Roots - cytology | Mutation - genetics | Cell Division - drug effects | Up-Regulation - drug effects | Phenotype | Mitosis - drug effects | Indoleacetic Acids - pharmacology | Plant Roots - embryology | Fluorescent Antibody Technique | Proteomics | Plant Roots - anatomy & histology | Mitogen-Activated Protein Kinases - metabolism | Arabidopsis thaliana | Cell division | Embryonic development | Mitogens | Protein kinases | Analysis
Journal Article
PLoS ONE, ISSN 1932-6203, 04/2013, Volume 8, Issue 4, p. e62082
Some potent chemotherapy drugs including tubulin-binding agents had been developed from nature plants, such as podophyllotoxin and paclitaxel... 
MITOSIS | ANTIMITOTIC ACTIVITY | MICROTUBULES | NATURAL-PRODUCTS | MULTIDISCIPLINARY SCIENCES | DRUG DISCOVERY | RESISTANCE | TUBULIN | BINDING AGENTS | EXPRESSION | KINASES | Lung Neoplasms - drug therapy | Podophyllotoxin - pharmacology | Apoptosis - drug effects | Humans | Lung Neoplasms - metabolism | Apoptosis - genetics | Endoplasmic Reticulum Stress - genetics | Microtubules - metabolism | Podophyllotoxin - toxicity | Drug Evaluation, Preclinical | Disease Models, Animal | DNA Damage - drug effects | Lung Neoplasms - genetics | M Phase Cell Cycle Checkpoints - drug effects | Endoplasmic Reticulum Stress - drug effects | Antineoplastic Agents, Phytogenic - toxicity | Xenograft Model Antitumor Assays | Animals | Mitosis - drug effects | Signal Transduction - drug effects | Tumor Burden - drug effects | Cell Cycle Checkpoints - drug effects | Models, Biological | Cell Line, Tumor | Cell Proliferation - drug effects | Mice | Antineoplastic Agents, Phytogenic - pharmacology | Protein Multimerization - drug effects | Podophyllotoxin - analogs & derivatives | Chemotherapy | Podophyllotoxin | Analysis | Lung cancer | Polymerization | Stress (Physiology) | Tubulins | Health aspects | Apoptosis | Cancer | Drugs | Flow cytometry | Toxicity | Mitosis | Leukemia | DNA damage | Cytotoxicity | Selectivity | Drug development | Kinases | Cancer therapies | Anticancer properties | Metastases | Proteins | Signal transduction | Tubulin | Paclitaxel | Xenografts | Cell cycle | Inhibition | Stains | Deoxyribonucleic acid--DNA | Stresses | Plants (botany) | Hematology | Injection | Survivin | Tumor cell lines | Gene expression | Stress | Aurora B protein | Signaling | Side effects | Colonization | Deoxyribonucleic acid | DNA
Journal Article
Journal Article
Nature Communications, ISSN 2041-1723, 2013, Volume 4, Issue 1, p. 1801
Journal Article