Modeling Root Zone Effects on Preferred Pathways for the Passive Transport of Ions and Water in Plant Roots
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[1] N. Geldner,et al. Suberization - the second life of an endodermal cell. , 2015, Current opinion in plant biology.
[2] S. Miklavcic,et al. Toward a biophysical understanding of the salt stress response of individual plant cells. , 2015, Journal of theoretical biology.
[3] M. Yokozawa,et al. In silico simulation modeling reveals the importance of the Casparian strip for efficient silicon uptake in rice roots. , 2015, Plant & cell physiology.
[4] T. Fujiwara,et al. Mathematical Modeling and Experimental Validation of the Spatial Distribution of Boron in the Root of Arabidopsis thaliana Identify High Boron Accumulation in the Tip and Predict a Distinct Root Tip Uptake Function , 2015, Plant & cell physiology.
[5] C. Maurel,et al. A receptor-like kinase mutant with absent endodermal diffusion barrier displays selective nutrient homeostasis defects , 2014, eLife.
[6] N. Geldner,et al. Radial Transport of Nutrients: The Plant Root as a Polarized Epithelium1 , 2014, Plant Physiology.
[7] E. Stelzer,et al. A Spatial Accommodation by Neighboring Cells Is Required for Organ Initiation in Arabidopsis , 2014, Science.
[8] S. Miklavcic,et al. On the competitive uptake and transport of ions through differentiated root tissues. , 2014, Journal of Theoretical Biology.
[9] Stanley J Miklavcic,et al. Mathematical modelling of the uptake and transport of salt in plant roots. , 2013, Journal of theoretical biology.
[10] J. Claus,et al. Zinc uptake and radial transport in roots of Arabidopsis thaliana: a modelling approach to understand accumulation. , 2012, Annals of botany.
[11] N. Geldner,et al. Casparian strip diffusion barrier in Arabidopsis is made of a lignin polymer without suberin , 2012, Proceedings of the National Academy of Sciences.
[12] Jinxing Lin,et al. Net sodium fluxes change significantly at anatomically distinct root zones of rice (Oryza sativa L.) seedlings. , 2011, Journal of plant physiology.
[13] N. Geldner,et al. A novel protein family mediates Casparian strip formation in the endodermis , 2011, Nature.
[14] L. Schreiber,et al. Water and solute permeabilities of Arabidopsis roots in relation to the amount and composition of aliphatic suberin , 2011, Journal of experimental botany.
[15] Christophe Maurel,et al. Natural Variation of Root Hydraulics in Arabidopsis Grown in Normal and Salt-Stressed Conditions1[C][W] , 2011, Plant Physiology.
[16] N. Geldner,et al. A developmental framework for endodermal differentiation and polarity , 2010, Proceedings of the National Academy of Sciences.
[17] M. Tester,et al. Shoot Na+ Exclusion and Increased Salinity Tolerance Engineered by Cell Type–Specific Alteration of Na+ Transport in Arabidopsis[W][OA] , 2009, The Plant Cell Online.
[18] R. Munns,et al. Cell-specific localization of Na+ in roots of durum wheat and possible control points for salt exclusion. , 2008, Plant, cell & environment.
[19] M. Tester,et al. Salinity tolerance of Arabidopsis: a good model for cereals? , 2007, Trends in plant science.
[20] Christophe Maurel,et al. Early Effects of Salinity on Water Transport in Arabidopsis Roots. Molecular and Cellular Features of Aquaporin Expression1 , 2005, Plant Physiology.
[21] G. Sandberg,et al. Dissecting Arabidopsis lateral root development. , 2003, Trends in plant science.
[22] Fabrice Martin-Laurent,et al. Role of a Single Aquaporin Isoform in Root Water Uptake Article, publication date, and citation information can be found at www.plantcell.org/cgi/doi/10.1105/tpc.008888. , 2003, The Plant Cell Online.
[23] C. Peterson,et al. Root Endodermis and Exodermis: Structure, Function, and Responses to the Environment , 2002, Journal of Plant Growth Regulation.
[24] P. White. The pathways of calcium movement to the xylem. , 2001, Journal of experimental botany.
[25] T. Berleth,et al. Responses of plant vascular systems to auxin transport inhibition. , 1999, Development.
[26] E. Steudle,et al. Water and solute transport along developing maize roots , 1996, Planta.
[27] C. Peterson,et al. Functions of passage cells in the endodermis and exodermis of roots , 1996 .
[28] D. Reinhardt,et al. On the correlation of primary root growth and tracheary element size and distance from the tip in cotton seedlings grown under salinity , 1995 .
[29] H. C. van der Horst,et al. Use of nanofiltration for concentration and demineralization in the dairy industry: Model for mass transport , 1995 .
[30] B. Scheres,et al. Cellular organisation of the Arabidopsis thaliana root. , 1993, Development.
[31] E. Steudle,et al. Water Transport in Onion (Allium cepa L.) Roots (Changes of Axial and Radial Hydraulic Conductivities during Root Development) , 1993, Plant physiology.
[32] R. T. Cruz,et al. Structural Changes and Associated Reduction of Hydraulic Conductance in Roots of Sorghum bicolor L. following Exposure to Water Deficit. , 1992, Plant physiology.
[33] J. Sanderson. Water Uptake by Different Regions of the Barley Root. Pathways of Radial Flow in Relation to Development of the Endodermis , 1983 .
[34] D. Clarkson,et al. The structure of barley roots in relation to the transport of ions into the stele , 1973, Protoplasma.
[35] A. Katchalsky,et al. Nonequilibrium Thermodynamics in Biophysics , 1965 .
[36] S. C. Bhatla. Water and Solute Transport , 2018 .
[37] Niko Geldner. The endodermis. , 2013, Annual review of plant biology.
[38] P. Benfey,et al. Mutations affecting the radial organisation of the Arabidopsis root display specific defects throughout the embryonic axis , 1995 .
[39] M. Rothbart,et al. A Developmental Framework , 1991 .
[40] U. Lüttge. Import and Export of Mineral Nutrients in Plant Roots , 1983 .