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Journal of Experimental Botany|October 19, 2012
Multiple photosynthetic transitions, polyploidy, and lateral gene transfer in the grass subtribe NeurachninaePascal-Antoine Christin, Mark J Wallace, Harmony Clayton, et al.The Journal of Ecology|May 22, 2018
Cereal progenitors differ in stand harvest characteristics from related wild grassesCatherine Preece, Natalie F Clamp, Gemma Warham, et al.Global Change Biology|September 8, 2020
High silicon concentrations in grasses are linked to environmental conditions and not associated with C4 photosynthesisWilliam H Brightly, Sue E Hartley, Colin P Osborne, et al.The New Phytologist|November 2, 2021
Disparities among crop species in the evolution of growth rates: the role of distinct origins and domestication historiesAlicia Gómez-Fernández, Colin P Osborne, Mark Rees, et al.Plant, Cell & Environment|January 7, 2021
Estimating uncertainty: A Bayesian approach to modelling photosynthesis in C3 leavesYi Xiao, Jen Sloan, Chris Hepworth, et al.The New Phytologist|May 29, 2018
Human impacts in African savannas are mediated by plant functional traitsColin P Osborne, Tristan Charles-Dominique, Nicola Stevens, et al.The New Phytologist|December 17, 2009
Ecophysiological traits in C3 and C4 grasses: a phylogenetically controlled screening experimentSamuel H Taylor, Stephen P Hulme, Mark Rees, et al.The American Naturalist|October 19, 2010
Partitioning the components of relative growth rate: how important is plant size variation?Mark Rees, Colin P Osborne, F Ian Woodward, et al.Global Change Biology|March 29, 2014
Physiological advantages of C4 grasses in the field: a comparative experiment demonstrating the importance of droughtSamuel H Taylor, Brad S Ripley, Tarryn Martin, et al.Molecular Biology and Evolution|February 28, 2026
Regulatory features determine the evolutionary fate of laterally acquired genes in plantsCatherine F Collins, Benjamin T Alston, Samuel G S Hibdige, et al.Pageof 16