Effects of application of trans-zeatin on tracheid differentiation in mature sugi (Cryptomeria japonica) trees
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[1] I. Dodd,et al. Common and specific responses to availability of mineral nutrients and water. , 2015, Journal of experimental botany.
[2] R. Funada,et al. Gibberellin is required for the formation of tension wood and stem gravitropism in Acacia mangium seedlings. , 2012, Annals of botany.
[3] R. Funada,et al. Cambial sensitivity to rising temperatures by natural condition and artificial heating from late winter to early spring in the evergreen conifer Cryptomeria japonica , 2010, Trees.
[4] U. B. Nielsen,et al. Cytokinin Profiles in the Conifer Tree Abies nordmanniana: Whole-Plant Relations in Year-Round Perspective , 2009, Journal of Plant Growth Regulation.
[5] Hitoshi Sakakibara,et al. Regulation of cytokinin biosynthesis, compartmentalization and translocation. , 2007, Journal of experimental botany.
[6] M. Kojima,et al. Overexpression of a type-A response regulator alters rice morphology and cytokinin metabolism. , 2007, Plant & cell physiology.
[7] B. Sundberg,et al. Tissue-specific localization of gibberellins and expression of gibberellin-biosynthetic and signaling genes in wood-forming tissues in aspen. , 2005, The Plant journal : for cell and molecular biology.
[8] W. G. Brenner,et al. Immediate-early and delayed cytokinin response genes of Arabidopsis thaliana identified by genome-wide expression profiling reveal novel cytokinin-sensitive processes and suggest cytokinin action through transcriptional cascades. , 2005, The Plant journal : for cell and molecular biology.
[9] O. Bouriaud,et al. Intra-annual variations in climate influence growth and wood density of Norway spruce. , 2005, Tree physiology.
[10] T. Kuromori,et al. AtIPT3 is a key determinant of nitrate-dependent cytokinin biosynthesis in Arabidopsis. , 2004, Plant & cell physiology.
[11] Robert J. Jones,et al. Cytokinin Oxidase Gene Expression in Maize Is Localized to the Vasculature, and Is Induced by Cytokinins, Abscisic Acid, and Abiotic Stress , 2003, Plant Physiology.
[12] M. Grabner,et al. Clonal variation of wood density record of cambium reaction to water deficit in Picea abies (L.) Karst , 2002 .
[13] R. Funada,et al. Changes in levels of endogenous plant hormones in cambial regions of stems ofLarix kaempferi at the onset of cambial activity in springtime , 2002, Journal of Wood Science.
[14] B. Sundberg,et al. Function and dynamics of auxin and carbohydrates during earlywood/latewood transition in scots pine. , 2001, Plant physiology.
[15] R. Funada,et al. Seasonal Variations in Endogenous Indole-3-Acetic Acid and Abscisic Acid in the Cambial Region of Pinus densiflora Sieb. et Zucc. Stems in Relation to Earlywood-Latewood Transition and Cessation of Tracheid Production , 2001 .
[16] O. Olsson,et al. Increased gibberellin biosynthesis in transgenic trees promotes growth, biomass production and xylem fiber length , 2000, Nature Biotechnology.
[17] T. Nakai,et al. Effect of the water status within a tree on tracheid morphogenesis in Cryptomeria japonica D. Don , 1999, Trees.
[18] B. Sundberg,et al. Endogenous cytokinins in the vascular cambial region of Pinus sylvestris during activity and dormancy , 1996 .
[19] R. Savidge. The Tracheid-Differentiation Factor of Conifer Needles , 1994, International Journal of Plant Sciences.
[20] B. Sundberg,et al. The relationship between crown size and ring width in Pinus sylvestris L. stems: dependence on indole-3-acetic acid, carbohydrates and nitrogen in the cambial region. , 1993, Tree physiology.
[21] B. Sundberg,et al. Tracheid production in response to indole-3-acetic acid varies with internode age in Pinus sylvestris stems , 1991, Trees.
[22] H. Klee,et al. Inactivation of auxin in tobacco transformed with the indoleacetic acid-lysine synthetase gene of Pseudomonas savastanoi. , 1991, Genes & development.
[23] B. Sundberg,et al. Tracheid production in response to changes in the internal level of indole-3-acetic Acid in 1-year-old shoots of scots pine. , 1990, Plant physiology.
[24] H. Klee,et al. The effects of overproduction of two Agrobacterium tumefaciens T-DNA auxin biosynthetic gene products in transgen c petunia plants , 1987 .
[25] P. Wareing,et al. Seasonal cambial activity and xylem development in Pinuscontorta in relation to endogenous indol-3-yl-acetic and (S)-abscisic acid levels , 1984 .
[26] T. Itoh,et al. Studies on the Improvement of the Pinning Method for Marking Xylem Growth I. : Minute Examination of Pin Marks in Taeda Pine and other Species , 1981 .
[27] M. Coutts,et al. Effects of Growth Hormone Application on the Secondary Growth of Roots and Stems in Picea sitchensis (Bong.) Carr , 1980 .
[28] C. Little,et al. Rest in the cambium of Abies balsamea , 1974 .
[29] R. Funada,et al. Regulation of cambial activity in relation to environmental conditions: understanding the role of temperature in wood formation of trees. , 2013, Physiologia plantarum.
[30] Eric J. W. Visser,et al. Abramoff MD, Magalhaes PJ, Ram SJ. 2004. Image Processing with ImageJ. Biophotonics , 2012 .
[31] S. Ito,et al. Annual Ring Formation and Wood Properties of Slash Pine (Pinus elliottii) Grown in Southern Kyushu, Japan , 2011 .
[32] Y. Kijidani,et al. Variation of Wood Properties with Height Position in the Stems of Obi-Sugi Cultivars , 2009 .
[33] R. Aloni. PHYTOHORMONAL MECHANISMS THAT CONTROL WOOD QUALITY FORMATION IN YOUNG AND MATURE TREES , 2008 .
[34] Tatsuo Kakimoto,et al. Expression of cytokinin biosynthetic isopentenyltransferase genes in Arabidopsis: tissue specificity and regulation by auxin, cytokinin, and nitrate. , 2004, The Plant journal : for cell and molecular biology.
[35] R. Savidge,et al. Cell and molecular biology of wood formation , 2000 .
[36] E.E. Pissaloux,et al. Image Processing , 1994, Proceedings. Second Euromicro Workshop on Parallel and Distributed Processing.
[37] Philip R. Larson,et al. Wood Formation and the Concept of Wood Quality , 1969 .
[38] A. J. Panshin,et al. Textbook of Wood Technology , 1964 .