Automated analysis of three-dimensional xylem networks using high-resolution computed tomography.
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Andrew J. McElrone | Brendan Choat | Craig R. Brodersen | Eric F. Lee | Steven Jansen | Ronald J. Phillips | Kenneth A. Shackel | Mark A. Matthews | S. Jansen | B. Choat | A. McElrone | M. Matthews | C. Brodersen | K. Shackel | Ronald J Phillips | Ronald J. Phillips
[1] Sang Joon Lee,et al. Synchrotron X-ray imaging for nondestructive monitoring of sap flow dynamics through xylem vessel elements in rice leaves. , 2010, The New phytologist.
[2] Brendan Choat,et al. The Dynamics of Embolism Repair in Xylem: In Vivo Visualizations Using High-Resolution Computed Tomography1[C][W][OA] , 2010, Plant Physiology.
[3] Brendan Choat,et al. Measurement of vulnerability to water stress-induced cavitation in grapevine: a comparison of four techniques applied to a long-vesseled species. , 2010, Plant, cell & environment.
[4] S. Mayo,et al. Micron-scale 3D imaging of wood and plant microstructure using high-resolution X-ray phase-contrast microtomography. , 2010, Journal of structural biology.
[5] P. Tomlinson,et al. Aspects of Vessel Dimensions in the Aerial Roots of Epiphytic Araceae , 2010, International Journal of Plant Sciences.
[6] 英三 前田,et al. X 線マイクロCT スキャナによる日本型イネ下位枝梗着生部における穂軸維管束走向の非破壊的測定 , 2009 .
[7] M. Matthews,et al. Wound-induced vascular occlusions in Vitis vinifera (Vitaceae): Tyloses in summer and gels in winter1. , 2008, American journal of botany.
[8] H. K. Mebatsion,et al. Three-Dimensional Gas Exchange Pathways in Pome Fruit Characterized by Synchrotron X-Ray Computed Tomography1[C][W][OA] , 2008, Plant Physiology.
[9] Bert Masschaele,et al. Three-dimensional imaging and analysis of infested coated wood with X-ray submicron CT☆ , 2008 .
[10] M. Matthews,et al. Ethylene and Not Embolism Is Required for Wound-Induced Tylose Development in Stems of Grapevines1[C][OA] , 2007, Plant Physiology.
[11] Lasse Loepfe,et al. The relevance of xylem network structure for plant hydraulic efficiency and safety. , 2007, Journal of theoretical biology.
[12] H. H. Bosshard,et al. Die dreidimensionale Strukturanalyse des Holzes—Erste Mitteilung: Die Vernetzung des Gefäßsystems inFagus sylvatica L. , 1973, Holz als Roh- und Werkstoff.
[13] R. Lemeur,et al. Effects of ring-porous and diffuse-porous stem wood anatomy on the hydraulic parameters used in a water flow and storage model. , 2007, Tree physiology.
[14] S. Carlquist. VESSEL GROUPING IN DICOTYLEDON WOOD : SIGNIFICANCE AND RELATIONSHIP TO IMPERFORATE TRACHEARY ELEMENTS , 2007 .
[15] R. Ketcham,et al. Utility of high resolution x-ray computed tomography (HRXCT) for paleobotanical studies: an example using London Clay fruits and seeds. , 2006, American journal of botany.
[16] M. Matthews,et al. Pruning-induced tylose development in stems of current-year shoots of Vitis vinifera (Vitaceae). , 2006, American journal of botany.
[17] N. Holbrook,et al. Direct measurements of intervessel pit membrane hydraulic resistance in two angiosperm tree species. , 2006, American journal of botany.
[18] J. Labavitch,et al. The structure of xylem vessels in grapevine (Vitaceae) and a possible passive mechanism for the systemic spread of bacterial disease. , 2006, American journal of botany.
[19] N. Holbrook,et al. The spatial pattern of air seeding thresholds in mature sugar maple trees , 2005 .
[20] D. Hukin,et al. Cavitation vulnerability in roots and shoots: does Populus euphratica Oliv., a poplar from arid areas of Central Asia, differ from other poplar species? , 2005, Journal of experimental botany.
[21] J. Sperry,et al. Inter‐vessel pitting and cavitation in woody Rosaceae and other vesselled plants: a basis for a safety versus efficiency trade‐off in xylem transport , 2005 .
[22] Veerle Cnudde,et al. Use of X-ray computed microtomography for non-invasive determination of wood anatomical characteristics. , 2004, Journal of structural biology.
[23] R. B. Jackson,et al. Variation in Xylem Structure and Function in Stems and Roots of Trees to 20 M Depth , 2004 .
[24] Manuel Dierick,et al. Octopus, a fast and user-friendly tomographic reconstruction package developed in LabView® , 2004 .
[25] Tomoyuki Fujii,et al. Anatomy of the vessel network within and between tree rings of Fraxinus lanuginosa (Oleaceae). , 2004, American journal of botany.
[26] J. Hopmans,et al. Three dimensional imaging of plant roots in situ with X-ray Computed Tomography , 1997, Plant and Soil.
[27] H. Schultz,et al. Xylem development and hydraulic conductance in sun and shade shoots of grapevine (Vitis vinifera L.): evidence that low light uncouples water transport capacity from leaf area , 1993, Planta.
[28] M. Matthews,et al. Grapevine Susceptibility to Pierce's Disease I: Relevance of Hydraulic Architecture , 2004, American Journal of Enology and Viticulture.
[29] W. Stuppy,et al. Three-dimensional analysis of plant structure using high-resolution X-ray computed tomography. , 2003, Trends in plant science.
[30] C. Ganter,et al. Xylem water content and wood density in spruce and oak trees detected by high-resolution computed tomography. , 2001, Plant physiology.
[31] N. Dengler,et al. Primary Vascular Patterns in the Vitaceae , 2001, INTERNATIONAL JOURNAL PLANT SCIENCES.
[32] E T Ahrens,et al. In vivo observation of cavitation and embolism repair using magnetic resonance imaging. , 2001, Plant physiology.
[33] T. Fujii,et al. CONDUCTIVE FUNCTION OF INTERVESSEL PITS THROUGH A GROWTH RING BOUNDARY OF MACHILUS THUNBERGII , 2001 .
[34] Z. Ashaari,et al. Vessel-Length distribution in stems of rattan (Calamus SPP.) , 1999 .
[35] J. S. Hicks,et al. A new X-ray computed tomography system for laboratory mouse imaging , 1998, 1998 IEEE Nuclear Science Symposium Conference Record. 1998 IEEE Nuclear Science Symposium and Medical Imaging Conference (Cat. No.98CH36255).
[36] C. Lovisolo,et al. Effects of water stress on vessel size and xylem hydraulic conductivity in Vitis vinifera L. , 1998 .
[37] L. Aylmore. Use of Computer-Assisted Tomography in Studying Water Movement Around Plant Roots , 1993 .
[38] M. C. Nichols,et al. X-Ray Tomographic Microscopy (XTM) Using Synchrotron Radiation , 1992 .
[39] U. Bonse,et al. X-Ray Tomographic Microscopy , 1992 .
[40] A. Tyree,et al. Vulnerability of Xylem to Cavitation and Embolism , 1989 .
[41] M. Zimmermann,et al. Spring filling of xylem vessels in wild grapevine. , 1987, Plant physiology.
[42] S. Carlquist. Vessel Grouping in Dicotyledon Wood , 1984 .
[43] P. Larson,et al. Development and Organization of the Primary Vascular System in the Phase II Leaf and Bud of Osmunda cinnamomea L. , 1983, Botanical Gazette.
[44] M. Zimmermann. Xylem Structure and the Ascent of Sap , 1983, Springer Series in Wood Science.
[45] M. Zimmermann,et al. Vessel-length distribution in stems of some American woody plants , 1981 .
[46] P. Larson. Interrelations between Phyllotaxis, Leaf Development and the Primary-secondary Vascular Transition in Populus deltoides , 1980 .
[47] P. Larson. DEVELOPMENT AND ORGANIZATION OF THE PRIMARY VASCULAR SYSTEM IN POPULUS DELTOIDES ACCORDING TO PHYLLOTAXY , 1975 .
[48] P. D. Burggraaf. SOME OBSERVATIONS ON THE COURSE OF THE VESSELS IN THE WOOD OF FRAXINUS EXCELSIOR L. , 1972 .
[49] P. Tomlinson,et al. Analysis of Complex Vascular Systems in Plants: Optical Shuttle Method , 1966, Science.
[50] A. Dimond. Pressure and flow relations in vascular bundles of the tomato plant. , 1966, Plant physiology.