A common genetic basis to the origin of the leaf economics spectrum and metabolic scaling allometry.
暂无分享,去创建一个
[1] Takuya Yamaguchi,et al. Genetic dissection of black grain rice by the development of a near isogenic line , 2014, Breeding science.
[2] William P. Jones. Does the Exception Prove the Rule , 2012 .
[3] G. Wagner,et al. A model of developmental evolution: selection, pleiotropy and compensation. , 2012, Trends in ecology & evolution.
[4] B. Enquist,et al. Land Plants: New Theoretical Directions and Empirical Prospects , 2012 .
[5] Joy Bergelson,et al. References and Notes Supporting Online Material Adaptation to Climate across the Arabidopsis Thaliana Genome , 2022 .
[6] C. R. McClung,et al. The Genetic Architecture of Ecophysiological and Circadian Traits in Brassica rapa , 2011, Genetics.
[7] Mark G. M. Aarts,et al. Natural genetic variation in plant photosynthesis. , 2011, Trends in plant science.
[8] B. Enquist,et al. Venation networks and the origin of the leaf economics spectrum. , 2011, Ecology letters.
[9] H. de Kroon,et al. The evolution of the worldwide leaf economics spectrum. , 2011, Trends in ecology & evolution.
[10] Christopher Baraloto,et al. Decoupled leaf and stem economics in rain forest trees. , 2010, Ecology letters.
[11] Eric J. Deeds,et al. Curvature in metabolic scaling , 2010, Nature.
[12] José M. Martínez-Zapater,et al. Temporal analysis of natural variation for the rate of leaf production and its relationship with flowering initiation in Arabidopsis thaliana , 2010, Journal of experimental botany.
[13] A. P. Abaimov,et al. Mixed-power scaling of whole-plant respiration from seedlings to giant trees , 2010, Proceedings of the National Academy of Sciences.
[14] T. Mitchell-Olds,et al. Life history in a model system: opening the black box with Arabidopsis thaliana. , 2009, Ecology letters.
[15] Mark G. M. Aarts,et al. What Has Natural Variation Taught Us about Plant Development, Physiology, and Adaptation? , 2009, The Plant Cell Online.
[16] Mark E Olson,et al. Universal foliage-stem scaling across environments and species in dicot trees: plasticity, biomechanics and Corner's Rules. , 2009, Ecology letters.
[17] Jingyuan Fu,et al. System-wide molecular evidence for phenotypic buffering in Arabidopsis , 2009, Nature Genetics.
[18] Christine Granier,et al. Combined Genetic and Modeling Approaches Reveal That Epidermal Cell Area and Number in Leaves Are Controlled by Leaf and Plant Developmental Processes in Arabidopsis1[W] , 2008, Plant Physiology.
[19] D. Weigel,et al. HUA2 Caused Natural Variation in Shoot Morphology of A. thaliana , 2007, Current Biology.
[20] N. Warthmann,et al. Autoimmune Response as a Mechanism for a Dobzhansky-Muller-Type Incompatibility Syndrome in Plants , 2007, PLoS biology.
[21] Charles A Price,et al. A general model for allometric covariation in botanical form and function , 2007, Proceedings of the National Academy of Sciences.
[22] K. Niklas,et al. Metabolic Scaling and the Evolutionary Dynamics of Plant Size, Form, and Diversity: Toward a Synthesis of Ecology, Evolution, and Paleontology , 2007, International Journal of Plant Sciences.
[23] Karl J. Niklas,et al. Biological scaling: Does the exception prove the rule? , 2007, Nature.
[24] J. Keurentjes,et al. Development of a Near-Isogenic Line Population of Arabidopsis thaliana and Comparison of Mapping Power With a Recombinant Inbred Line Population , 2007, Genetics.
[25] M. Lechowicz,et al. Toward Synthesis of Relationships among Leaf Longevity, Instantaneous Photosynthetic Rate, Lifetime Leaf Carbon Gain, and the Gross Primary Production of Forests , 2006, The American Naturalist.
[26] T. Mitchell-Olds,et al. Genetic mechanisms and evolutionary significance of natural variation in Arabidopsis , 2006, Nature.
[27] P. Reich,et al. Fundamental trade-offs generating the worldwide leaf economics spectrum. , 2006, Ecology.
[28] Mark G. Tjoelker,et al. Universal scaling of respiratory metabolism, size and nitrogen in plants , 2006, Nature.
[29] K. Chenu,et al. PHENOPSIS, an automated platform for reproducible phenotyping of plant responses to soil water deficit in Arabidopsis thaliana permitted the identification of an accession with low sensitivity to soil water deficit. , 2006, The New phytologist.
[30] D. S. Glazier,et al. Beyond the ‘3/4‐power law’: variation in the intra‐and interspecific scaling of metabolic rate in animals , 2005, Biological reviews of the Cambridge Philosophical Society.
[31] G. Farquhar,et al. The ERECTA gene regulates plant transpiration efficiency in Arabidopsis , 2005, Nature.
[32] R. Amasino,et al. HUA2 is required for the expression of floral repressors in Arabidopsis thaliana. , 2004, The Plant journal : for cell and molecular biology.
[33] Sean C. Thomas,et al. The worldwide leaf economics spectrum , 2004, Nature.
[34] H. Lambers,et al. A genetic analysis of relative growth rate and underlying components in Hordeum spontaneum , 2004, Oecologia.
[35] T. Mitchell-Olds,et al. Genetics of drought adaptation in Arabidopsis thaliana: I. Pleiotropy contributes to genetic correlations among ecological traits , 2003, Molecular ecology.
[36] M. Westoby,et al. ECOLOGICAL STRATEGIES : Some Leading Dimensions of Variation Between Species , 2002 .
[37] A. Brice,et al. Mutations in PTPN11, encoding the protein tyrosine phosphatase SHP-2, cause Noonan syndrome , 2002, Nature Genetics.
[38] A. Peeters,et al. A QTL for flowering time in Arabidopsis reveals a novel allele of CRY2 , 2001, Nature Genetics.
[39] Mark Westoby,et al. The Time Value of Leaf Area , 2000, The American Naturalist.
[40] P. Reich,et al. Generality of leaf trait relationships: a test across six biomes: Ecology , 1999 .
[41] James H. Brown,et al. A general model for the structure and allometry of plant vascular systems , 1999, Nature.
[42] James H. Brown,et al. The fourth dimension of life: fractal geometry and allometric scaling of organisms. , 1999, Science.
[43] Riisgård. No foundation of a “3/4 power scaling law” for respiration in biology , 1998 .
[44] G. Coupland,et al. Analysis of natural allelic variation at flowering time loci in the Landsberg erecta and Cape Verde Islands ecotypes of Arabidopsis thaliana. , 1998, Genetics.
[45] M Koornneef,et al. Development of an AFLP based linkage map of Ler, Col and Cvi Arabidopsis thaliana ecotypes and construction of a Ler/Cvi recombinant inbred line population. , 1998, The Plant journal : for cell and molecular biology.
[46] P. Reich,et al. From tropics to tundra: global convergence in plant functioning. , 1997, Proceedings of the National Academy of Sciences of the United States of America.
[47] Karl J. Niklas,et al. Botanical Scaling. (Book Reviews: Plant Allometry. The Scaling of Form and Process.) , 1994 .
[48] J. Coleman,et al. Interpreting phenotypic variation in plants. , 1994, Trends in ecology & evolution.
[49] F. Stuart Chapin,et al. Evolution of Suites of Traits in Response to Environmental Stress , 1993, The American Naturalist.
[50] Eric L. Charnov,et al. Life History Invariants: Some Explorations of Symmetry in Evolutionary Ecology , 1993 .
[51] K. Kikuzawa. A Cost-Benefit Analysis of Leaf Habit and Leaf Longevity of Trees and Their Geographical Pattern , 1991, The American Naturalist.
[52] Thomas J. Givnish,et al. Adaptation to Sun and Shade: a Whole-Plant Perspective , 1988 .
[53] S. Gould. ALLOMETRY AND SIZE IN ONTOGENY AND PHYLOGENY , 1966, Biological reviews of the Cambridge Philosophical Society.
[54] J. Huxley. Problems of relative growth , 1932 .