AUX1-mediated root hair auxin influx governs SCFTIR1/AFB-type Ca2+ signaling
暂无分享,去创建一个
K. Al-Rasheid | M. Bennett | R. Hedrich | M. Roelfsema | K. Palme | D. Becker | S. Scherzer | P. Dietrich | Julian Dindas | Katharina von Meyer | Heike M. Müller | K. Al-Rasheid | M. Bennett
[1] S. Luan,et al. Arabidopsis CNGC14 Mediates Calcium Influx Required for Tip Growth in Root Hairs. , 2017, Molecular plant.
[2] Thomas A. DeFalco,et al. Calmodulin as a Ca2+-Sensing Subunit of Arabidopsis Cyclic Nucleotide-Gated Channel Complexes , 2017, Plant & cell physiology.
[3] R. Mittler,et al. Orchestrating rapid long-distance signaling in plants with Ca2+ , ROS and electrical signals. , 2017, The Plant journal : for cell and molecular biology.
[4] M. Estelle,et al. Mechanisms of auxin signaling , 2016, Development.
[5] R. Hedrich,et al. Electrical Wiring and Long-Distance Plant Communication. , 2016, Trends in plant science.
[6] Nathan D. Miller,et al. The Cyclic Nucleotide-Gated Channel CNGC14 Regulates Root Gravitropism in Arabidopsis thaliana , 2015, Current Biology.
[7] Wei-Hua Wu,et al. Cytosolic Ca(2+) Signals Enhance the Vacuolar Ion Conductivity of Bulging Arabidopsis Root Hair Cells. , 2015, Molecular plant.
[8] J. Schroeder,et al. Live Cell Imaging with R-GECO1 Sheds Light on flg22- and Chitin-Induced Transient [Ca(2+)]cyt Patterns in Arabidopsis. , 2015, Molecular plant.
[9] M. Kumar,et al. Arabidopsis response to low-phosphate conditions includes active changes in actin filaments and PIN2 polarization and is dependent on strigolactone signalling , 2015, Journal of experimental botany.
[10] T. Kakimoto,et al. Auxin sensitivities of all Arabidopsis Aux/IAAs for degradation in the presence of every TIR1/AFB. , 2014, Plant & cell physiology.
[11] N. von Wirén,et al. It's time to make changes: modulation of root system architecture by nutrient signals. , 2014, Journal of experimental botany.
[12] Steffen Vanneste,et al. Calcium: The Missing Link in Auxin Action , 2013, Plants.
[13] Wenfeng Li,et al. Mapping gene activity of Arabidopsis root hairs , 2013, Genome Biology.
[14] T. Cuin,et al. Ion flux measurements using the MIFE technique. , 2013, Methods in molecular biology.
[15] R. Swarup,et al. AUX/LAX family of auxin influx carriers—an overview , 2012, Front. Plant Sci..
[16] Stijn Dhondt,et al. AUX/LAX Genes Encode a Family of Auxin Influx Transporters That Perform Distinct Functions during Arabidopsis Development[C][W] , 2012, Plant Cell.
[17] R. Hedrich,et al. Anion channels: master switches of stress responses. , 2012, Trends in plant science.
[18] H. Nozaki,et al. Rational design of an auxin antagonist of the SCF(TIR1) auxin receptor complex. , 2012, ACS chemical biology.
[19] Tom Beeckman,et al. A novel sensor to map auxin response and distribution at high spatio-temporal resolution , 2012, Nature.
[20] Yongxin Zhao,et al. An Expanded Palette of Genetically Encoded Ca2+ Indicators , 2011, Science.
[21] Heidi L Rutschow,et al. AuxV: a database of auxin transport velocities. , 2011, Trends in plant science.
[22] Nathan D. Miller,et al. Dynamics of auxin-dependent Ca2+ and pH signaling in root growth revealed by integrating high-resolution imaging with automated computer vision-based analysis. , 2011, The Plant journal : for cell and molecular biology.
[23] L. Jaffe. Fast calcium waves. , 2010, Cell calcium.
[24] Jean-Jacques Meister,et al. Mechanisms of propagation of intercellular calcium waves in arterial smooth muscle cells. , 2010, Biophysical journal.
[25] Gabriel Krouk,et al. Nitrate-regulated auxin transport by NRT1.1 defines a mechanism for nutrient sensing in plants. , 2010, Developmental cell.
[26] S. Cutler,et al. Abscisic acid: emergence of a core signaling network. , 2010, Annual review of plant biology.
[27] S. Postel,et al. Perception of the Arabidopsis Danger Signal Peptide 1 Involves the Pattern Recognition Receptor AtPEPR1 and Its Close Homologue AtPEPR2* , 2010, The Journal of Biological Chemistry.
[28] T. Boller,et al. Early signaling through the Arabidopsis pattern recognition receptors FLS2 and EFR involves Ca-associated opening of plasma membrane anion channels. , 2010, The Plant journal : for cell and molecular biology.
[29] Claire S. Grierson,et al. Auxin transport through non-hair cells sustains root-hair development , 2008, Nature Cell Biology.
[30] L. Herrera-Estrella,et al. Phosphate Availability Alters Lateral Root Development in Arabidopsis by Modulating Auxin Sensitivity via a Mechanism Involving the TIR1 Auxin Receptor[C][W][OA] , 2008, The Plant Cell Online.
[31] M. Bennett,et al. The Binding of Auxin to the Arabidopsis Auxin Influx Transporter AUX11[OA] , 2008, Plant Physiology.
[32] Yoshihisa Ikeda,et al. Mechanisms of auxin-dependent cell and tissue polarity. , 2007, Current opinion in plant biology.
[33] A. Murphy,et al. Interactions of PIN and PGP auxin transport mechanisms. , 2007, Biochemical Society transactions.
[34] Rex A. Cole,et al. Polarized growth: maintaining focus on the tip. , 2006, Current opinion in plant biology.
[35] D. Schachtman,et al. High-Affinity Auxin Transport by the AUX1 Influx Carrier Protein , 2006, Current Biology.
[36] Gerrit T. S. Beemster,et al. Root gravitropism requires lateral root cap and epidermal cells for transport and response to a mobile auxin signal , 2005, Nature Cell Biology.
[37] Bertrand Muller,et al. A Role for Auxin Redistribution in the Responses of the Root System Architecture to Phosphate Starvation in Arabidopsis1 , 2005, Plant Physiology.
[38] E. Kramer,et al. PIN and AUX/LAX proteins: their role in auxin accumulation. , 2004, Trends in plant science.
[39] F. Bouteau,et al. Plasma Membrane Depolarization Induced by Abscisic Acid in Arabidopsis Suspension Cells Involves Reduction of Proton Pumping in Addition to Anion Channel Activation, Which Are Both Ca2+ Dependent , 2004, Plant Physiology.
[40] R. Hedrich,et al. ABA depolarizes guard cells in intact plants, through a transient activation of R- and S-type anion channels. , 2004, The Plant journal : for cell and molecular biology.
[41] M. Goldsmith,et al. Rapid response of the plasma-membrane potential in oat coleoptiles to auxin and other weak acids , 1983, Planta.
[42] D. Shasha,et al. A Gene Expression Map of the Arabidopsis Root , 2003, Science.
[43] M. Bennett,et al. Auxin transport: the fountain of life in plants? , 2003, Developmental cell.
[44] G. Jürgens,et al. Local, Efflux-Dependent Auxin Gradients as a Common Module for Plant Organ Formation , 2003, Cell.
[45] K. Ljung,et al. Shoot-derived auxin is essential for early lateral root emergence in Arabidopsis seedlings. , 2002, The Plant journal : for cell and molecular biology.
[46] I. Newman,et al. Ion transport in roots: measurement of fluxes using ion-selective microelectrodes to characterize transporter function. , 2001, Plant, cell & environment.
[47] L. Gälweiler,et al. PIN-pointing the molecular basis of auxin transport. , 1999, Current opinion in plant biology.
[48] S. May,et al. Going the distance with auxin: unravelling the molecular basis of auxin transport. , 1998, Philosophical transactions of the Royal Society of London. Series B, Biological sciences.
[49] S. Gilroy,et al. Cytoplasmic free calcium distributions during the development of root hairs of Arabidopsis thaliana. , 1997, The Plant journal : for cell and molecular biology.
[50] Noel Keenlyside,et al. Proton flux measurements from tissues in buffered solution , 1995 .
[51] N. Crawford,et al. Ammonium Inhibition of Arabidopsis Root Growth Can Be Reversed by Potassium and by Auxin Resistance Mutations aux1, axr1, and axr2 , 1993, Plant physiology.
[52] K. Palme,et al. The electrical response of maize to auxins. , 1991, Biochimica et biophysica acta.
[53] F. Went,et al. Experiments on the Transport of Auxin , 1939, Botanical Gazette.
[54] 77. P. Boysen‐Jensen: Über die Leitung des phototropischen Reizes in der Avenakoleoptile , 1913, Berichte der Deutschen Botanischen Gesellschaft.