Plant tropisms: providing the power of movement to a sessile organism.
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[1] C. Darwin. Power of Movement in Plants , 1880 .
[2] H. Hooker. Hydrotropism in Roots of Lupinus albus , 1915 .
[3] J. Davies,et al. Molecular Biology of the Cell , 1983, Bristol Medico-Chirurgical Journal.
[4] R. W. Davis,et al. Rapid induction of specific mRNAs by auxin in pea epicotyl tissue. , 1985, Journal of molecular biology.
[5] R. Hertel,et al. Amyloplasts are necessary for full gravitropic sensitivity in roots of Arabidopsis thaliana. , 1989, Planta.
[6] Ronald W. Davis,et al. Rain-, wind-, and touch-induced expression of calmodulin and calmodulin-related genes in Arabidopsis , 1990, Cell.
[7] Hideyuki Takahashi,et al. Root hydrotropism of an agravitropic pea mutant, ageotropum , 1991 .
[8] Y. Shimura,et al. Mutational Analysis of Root Gravitropism and Phototropism of Arabidopsis thaliana Seedlings , 1992 .
[9] J. Braam. Regulated expression of the calmodulin-related TCH genes in cultured Arabidopsis cells: induction by calcium and heat shock. , 1992, Proceedings of the National Academy of Sciences of the United States of America.
[10] Hideyuki Takahashi,et al. Intensity of hydrostimulation for the induction of root hydrotropism and its sensing by the root cap. , 1993, Plant, cell & environment.
[11] D. O’Day,et al. Calmodulin and calmodulin-binding proteins during cell fusion in Dictyostelium discoideum: developmental regulation by calcium ions. , 1993, Experimental cell research.
[12] J. Braam,et al. Arabidopsis TCH3 encodes a novel Ca2+ binding protein and shows environmentally induced and tissue-specific regulation. , 1994, The Plant cell.
[13] S. Fry,et al. Arabidopsis TCH4, regulated by hormones and the environment, encodes a xyloglucan endotransglycosylase. , 1995, The Plant cell.
[14] J. Braam,et al. Cellular localization of the Ca2+ binding TCH3 protein of Arabidopsis. , 1995, The Plant journal : for cell and molecular biology.
[15] E. Liscum,et al. Mutations in the NPH1 locus of Arabidopsis disrupt the perception of phototropic stimuli. , 1995, The Plant cell.
[16] K. Feldmann,et al. Arabidopsis AUX1 Gene: A Permease-Like Regulator of Root Gravitropism , 1996, Science.
[17] P. Quail,et al. Phytochrome A Regulates Red-Light Induction of Phototropic Enhancement in Arabidopsis , 1996, Plant physiology.
[18] P. Campbell,et al. The Arabidopsis XET-related gene family: environmental and hormonal regulation of expression. , 1996, The Plant journal : for cell and molecular biology.
[19] E. Liscum,et al. Mutations of Arabidopsis in Potential Transduction and Response Components of the Phototropic Signaling Pathway , 1996, Plant physiology.
[20] H. Fukaki,et al. Gravitropic Response of Inflorescence Stems in Arabidopsis thaliana , 1996, Plant physiology.
[21] H. Suge,et al. Characterization of hydrotropism: the timing of perception and signal movement from the root cap in the agravitropic pea mutant ageotropum. , 1996, Plant & cell physiology.
[22] I. Zhulin,et al. PAS domain S-boxes in Archaea, Bacteria and sensors for oxygen and redox. , 1997, Trends in biochemical sciences.
[23] E. Blancaflor,et al. Cytoplasmic Free Ca2+ in Arabidopsis Roots Changes in Response to Touch but Not Gravity , 1997, Plant physiology.
[24] H. Fukaki,et al. Mutations in the SGR4, SGR5 and SGR6 loci of Arabidopsis thaliana alter the shoot gravitropism. , 1997, Plant & cell physiology.
[25] P. Oeller,et al. Arabidopsis NPH1: a protein kinase with a putative redox-sensing domain. , 1997, Science.
[26] Richard D. Firn,et al. Solving the puzzle of gravitropism — has a lost piece been found? , 1997, Planta.
[27] B. Bartel. AUXIN BIOSYNTHESIS. , 1997, Annual review of plant physiology and plant molecular biology.
[28] M. Watahiki,et al. The massugu1 Mutation of Arabidopsis Identified with Failure of Auxin-Induced Growth Curvature of Hypocotyl Confers Auxin Insensitivity to Hypocotyl and Leaf , 1997, Plant physiology.
[29] M. Ishitani,et al. Genetic analysis of osmotic and cold stress signal transduction in Arabidopsis: interactions and convergence of abscisic acid-dependent and abscisic acid-independent pathways. , 1997, The Plant cell.
[30] G. Hagen,et al. ARF1, a transcription factor that binds to auxin response elements. , 1997, Science.
[31] K. L. Poff,et al. Both phytochrome A and phytochrome B are required for the normal expression of phototropism in Arabidopsis thaliana seedlings , 1997 .
[32] J. Nemhauser,et al. ETTIN patterns the Arabidopsis floral meristem and reproductive organs. , 1997, Development.
[33] K. Bennett,et al. The power of movement in plants. , 1998, Trends in ecology & evolution.
[34] E. Liscum,et al. NPH4, a conditional modulator of auxin-dependent differential growth responses in Arabidopsis. , 1998, Plant physiology.
[35] P Reymond,et al. Arabidopsis NPH1: a flavoprotein with the properties of a photoreceptor for phototropism. , 1998, Science.
[36] C. Hardtke,et al. The Arabidopsis gene MONOPTEROS encodes a transcription factor mediating embryo axis formation and vascular development , 1998, The EMBO journal.
[37] A. Müller,et al. Regulation of polar auxin transport by AtPIN1 in Arabidopsis vascular tissue. , 1998, Science.
[38] Klaus Palme,et al. AtPIN2 defines a locus of Arabidopsis for root gravitropism control , 1998, The EMBO journal.
[39] E. Blancaflor,et al. Mapping the functional roles of cap cells in the response of Arabidopsis primary roots to gravity. , 1998, Plant physiology.
[40] R Chen,et al. Arabidopsis thalianaのAGRAVITROPIC 1遺伝子は極性オーキシン輸送の流出キャリアの構成員をコード化する , 1998 .
[41] I. Zhulin,et al. PAS Domains: Internal Sensors of Oxygen, Redox Potential, and Light , 1999, Microbiology and Molecular Biology Reviews.
[42] P. Campbell,et al. In vitro activities of four xyloglucan endotransglycosylases from Arabidopsis. , 1999, The Plant journal : for cell and molecular biology.
[43] Alan Marchant,et al. AUX1 regulates root gravitropism in Arabidopsis by facilitating auxin uptake within root apical tissues , 1999, The EMBO journal.
[44] G. Hagen,et al. Dimerization and DNA binding of auxin response factors. , 1999, The Plant journal : for cell and molecular biology.
[45] P. Masson,et al. ARG1 (altered response to gravity) encodes a DnaJ-like protein that potentially interacts with the cytoskeleton. , 1999, Proceedings of the National Academy of Sciences of the United States of America.
[46] E. Liscum,et al. Arabidopsis NPH3: A NPH1 photoreceptor-interacting protein essential for phototropism. , 1999, Science.
[47] A. Scott,et al. Changes in cytosolic pH within Arabidopsis root columella cells play a key role in the early signaling pathway for root gravitropism. , 1999, Plant physiology.
[48] D J Cosgrove,et al. New genes and new biological roles for expansins. , 2000, Current opinion in plant biology.
[49] J. Chory,et al. Regulation of Auxin Response by the Protein Kinase PINOID , 2000, Cell.
[50] J. Nemhauser,et al. Auxin and ETTIN in Arabidopsis gynoecium morphogenesis. , 2000, Development.
[51] T. Wada,et al. RPT2: A Signal Transducer of the Phototropic Response in Arabidopsis , 2000, Plant Cell.
[52] E. Liscum,et al. The NPH4 Locus Encodes the Auxin Response Factor ARF7, a Conditional Regulator of Differential Growth in Aerial Arabidopsis Tissue , 2000, Plant Cell.
[53] L. Staehelin,et al. Amyloplast sedimentation dynamics in maize columella cells support a new model for the gravity-sensing apparatus of roots. , 2001, Plant physiology.
[54] Imara Y. Perera,et al. A role for inositol 1,4,5-trisphosphate in gravitropic signaling and the retention of cold-perceived gravistimulation of oat shoot pulvini. , 2001, Plant physiology.
[55] O. Leyser,et al. Rapid Degradation of Auxin/Indoleacetic Acid Proteins Requires Conserved Amino Acids of Domain II and Is Proteasome Dependent , 2001, The Plant Cell Online.
[56] J. Callis,et al. Auxin modulates the degradation rate of Aux/IAA proteins , 2001, Proceedings of the National Academy of Sciences of the United States of America.
[57] G. Hagen,et al. AUX/IAA Proteins Are Active Repressors, and Their Stability and Activity Are Modulated by Auxin Article, publication date, and citation information can be found at www.plantcell.org/cgi/doi/10.1105/tpc.010289. , 2001, The Plant Cell Online.
[58] G. Muday,et al. Genetic and Chemical Reductions in Protein Phosphatase Activity Alter Auxin Transport, Gravity Response, and Lateral Root Growth , 2001, The Plant Cell Online.
[59] Z. Sulová,et al. Ten isoenzymes of xyloglucan endotransglycosylase from plant cell walls select and cleave the donor substrate stochastically. , 2001, The Biochemical journal.
[60] Klaus Palme,et al. Auxin transport inhibitors block PIN1 cycling and vesicle trafficking , 2001, Nature.
[61] Masahiro Kasahara,et al. Arabidopsis nph1 and npl1: Blue light receptors that mediate both phototropism and chloroplast relocation , 2001, Proceedings of the National Academy of Sciences of the United States of America.
[62] E. Blancaflor,et al. Changes in Root Cap pH Are Required for the Gravity Response of the Arabidopsis Root , 2001, Plant Cell.
[63] Ottoline Leyser,et al. Auxin regulates SCFTIR1-dependent degradation of AUX/IAA proteins , 2001, Nature.
[64] A. Murphy,et al. Multidrug Resistance–like Genes of Arabidopsis Required for Auxin Transport and Auxin-Mediated Development Article, publication date, and citation information can be found at www.aspb.org/cgi/doi/10.1105/tpc.010350. , 2001, The Plant Cell Online.
[65] M. Morita,et al. SGR2, a Phospholipase-Like Protein, and ZIG/SGR4, a SNARE, Are Involved in the Shoot Gravitropism of Arabidopsis Article, publication date, and citation information can be found at www.plantcell.org/cgi/doi/10.1105/tpc.010215. , 2002, The Plant Cell Online.
[66] Wei Xu,et al. Transcriptional and Posttranscriptional Regulation of ArabidopsisTCH4 Expression by Diverse Stimuli. Roles of cis Regions and Brassinosteroids1 , 2002, Plant Physiology.
[67] Heather Knight,et al. Mechanically Stimulated TCH3 Gene Expression in Arabidopsis Involves Protein Phosphorylation and EIN6 Downstream of Calcium1 , 2002, Plant Physiology.
[68] Emmanuel Liscum,et al. Phototropism: Mechanisms and Outcomes , 2002 .
[69] A. Sievers,et al. Basipetal propagation of gravity-induced surface pH changes along primary roots of Lepidium sativum L. , 2002, Planta.
[70] S. Clouse,et al. Transcriptional and Posttranscriptional Regulation of Arabidopsis TCH4 Expression by Diverse Stimuli. Roles of cis Regions and Brassinosteroids 1 , 2002 .
[71] A. Trewavas,et al. Reorientation of Seedlings in the Earth's Gravitational Field Induces Cytosolic Calcium Transients1 , 2002, Plant Physiology.
[72] Klaus Palme,et al. Lateral relocation of auxin efflux regulator PIN3 mediates tropism in Arabidopsis , 2002, Nature.
[73] C. Brownlee,et al. Calcium at the Crossroads of Signaling Article, publication date, and citation information can be found at www.plantcell.org/cgi/doi/10.1105/tpc.002899. , 2002, The Plant Cell Online.
[74] J. Christie,et al. Phototropin LOV domains exhibit distinct roles in regulating photoreceptor function. , 2002, The Plant journal : for cell and molecular biology.
[75] Gioia D. Massa,et al. Ionic Signaling in Plant Responses to Gravity and Touch , 2002, Journal of Plant Growth Regulation.
[76] J. Christie,et al. Phototropins 1 and 2: versatile plant blue-light receptors. , 2002, Trends in plant science.
[77] K. Nishitani,et al. The XTH family of enzymes involved in xyloglucan endotransglucosylation and endohydrolysis: current perspectives and a new unifying nomenclature. , 2002, Plant & cell physiology.
[78] Hideyuki Takahashi,et al. Hydrotropism in abscisic acid, wavy, and gravitropic mutants of Arabidopsis thaliana , 2002, Planta.
[79] J. Kiss,et al. Disruption of the Actin Cytoskeleton Results in the Promotion of Gravitropism in Inflorescence Stems and Hypocotyls of Arabidopsis1 , 2002, Plant Physiology.
[80] Delfeena Eapen,et al. A no hydrotropic response Root Mutant that Responds Positively to Gravitropism in Arabidopsis1,212 , 2003, Plant Physiology.
[81] Elison B. Blancaflor,et al. Enhanced Gravitropism of Roots with a Disrupted Cap Actin Cytoskeleton1 , 2003, Plant Physiology.
[82] Hideyuki Takahashi,et al. Hydrotropism Interacts with Gravitropism by Degrading Amyloplasts in Seedling Roots of Arabidopsis and Radish1 , 2003, Plant Physiology.
[83] Physiological and genetic characterization of hydrotropic mutants of Arabidopsis thaliana. , 2003, Uchu Seibutsu Kagaku.
[84] Kevin H. Gardner,et al. Structural Basis of a Phototropin Light Switch , 2003, Science.
[85] M. Evans,et al. Gravity-regulated differential auxin transport from columella to lateral root cap cells , 2003, Proceedings of the National Academy of Sciences of the United States of America.
[86] M. Morita,et al. A SNARE complex containing SGR3/AtVAM3 and ZIG/VTI11 in gravity-sensing cells is important for Arabidopsis shoot gravitropism , 2003, Proceedings of the National Academy of Sciences of the United States of America.
[87] J. Friml,et al. Auxin transport - shaping the plant. , 2003, Current opinion in plant biology.
[88] E. Blancaflor,et al. The promotive effect of latrunculin B on maize root gravitropism is concentration dependent. , 2003, Advances in space research : the official journal of the Committee on Space Research.
[89] Keith Moffat,et al. The LOV domain family: photoresponsive signaling modules coupled to diverse output domains. , 2003, Biochemistry.
[90] Simon Gilroy,et al. Touch modulates gravity sensing to regulate the growth of primary roots of Arabidopsis thaliana. , 2003, The Plant journal : for cell and molecular biology.
[91] P. Masson,et al. ALTERED RESPONSE TO GRAVITY Is a Peripheral Membrane Protein That Modulates Gravity-Induced Cytoplasmic Alkalinization and Lateral Auxin Transport in Plant Statocytes Article, publication date, and citation information can be found at www.plantcell.org/cgi/doi/10.1105/tpc.015560. , 2003, The Plant Cell Online.
[92] E. Blancaflor,et al. Plant Gravitropism. Unraveling the Ups and Downs of a Complex Process1 , 2003, Plant Physiology.
[93] K. Dreher,et al. Acceleration of Aux/IAA proteolysis is specific for auxin and independent of AXR1. , 2003, The Plant journal : for cell and molecular biology.
[94] A. Murphy,et al. Enhanced gravi- and phototropism in plant mdr mutants mislocalizing the auxin efflux protein PIN1 , 2003, Nature.
[95] R. Hangarter,et al. Second Positive Phototropism Results from Coordinated Co-Action of the Phototropins and Cryptochromes1 , 2003, Plant Physiology.
[96] R. Offringa,et al. PINOID-Mediated Signaling Involves Calcium-Binding Proteins , 2003, Plant Physiology.
[97] G. Hagen,et al. The Roles of Auxin Response Factor Domains in Auxin-Responsive Transcription Article, publication date, and citation information can be found at www.plantcell.org/cgi/doi/10.1105/tpc.008417. , 2003, The Plant Cell Online.
[98] O. Leyser,et al. Auxin-induced SCFTIR1-Aux/IAA interaction involves stable modification of the SCFTIR1 complex. , 2004, Proceedings of the National Academy of Sciences of the United States of America.
[99] K. Gardner,et al. Conformational changes in a photosensory LOV domain monitored by time-resolved NMR spectroscopy. , 2004, Journal of the American Chemical Society.
[100] A. Murphy,et al. Relocalization of the PIN1 Auxin Efflux Facilitator Plays a Role in Phototropic Responses1[w] , 2004, Plant Physiology.
[101] Christopher S. Brown,et al. The Fast and Transient Transcriptional Network of Gravity and Mechanical Stimulation in the Arabidopsis Root Apex1[w] , 2004, Plant Physiology.
[102] Klaus Palme,et al. A PINOID-Dependent Binary Switch in Apical-Basal PIN Polar Targeting Directs Auxin Efflux , 2004, Science.
[103] K. Okada,et al. RPT2 Is a Signal Transducer Involved in Phototropic Response and Stomatal Opening by Association with Phototropin 1 in Arabidopsis thaliana , 2004, The Plant Cell Online.
[104] Alan Marchant,et al. Structure-Function Analysis of the Presumptive Arabidopsis Auxin Permease AUX1w⃞ , 2004, The Plant Cell Online.
[105] G. Hagen,et al. Overlapping and non-redundant functions of the Arabidopsis auxin response factors MONOPTEROS and NONPHOTOTROPIC HYPOCOTYL 4 , 2004, Development.
[106] John Z. Kiss,et al. Amyloplasts are necessary for full gravitropic sensitivity in roots of Arabidopsis thaliana , 2004, Planta.
[107] K. Okada,et al. Genetic analyses of signalling in flower development using Arabidopsis , 1994, Plant Molecular Biology.
[108] S. Tiwari,et al. Aux/IAA Proteins Contain a Potent Transcriptional Repression Domain , 2004, The Plant Cell Online.
[109] E. Liscum,et al. Genetics of Aux/IAA and ARF action in plant growth and development , 2002, Plant Molecular Biology.
[110] T. Koshiba,et al. 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. , 2004, The Plant journal : for cell and molecular biology.
[111] G. Hagen,et al. Auxin-responsive gene expression: genes, promoters and regulatory factors , 2002, Plant Molecular Biology.
[112] W. Rüdiger,et al. Dimerization of the plant photoreceptor phototropin is probably mediated by the LOV1 domain , 2004, FEBS letters.
[113] E. Liscum,et al. 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 , 2004, The Plant Cell Online.
[114] C. A. Esmon,et al. Phototropins, other photoreceptors, and associated signaling: the lead and supporting cast in the control of plant movement responses. , 2005, Current topics in developmental biology.
[115] Phototropins and Associated Signaling: Providing the Power of Movement in Higher Plants ¶ , 2005, Photochemistry and photobiology.
[116] Hideyuki Takahashi. Hydrotropism: The current state of our knowledge , 1997, Journal of Plant Research.