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Clark LV, Dwiyanti MS, Anzoua KG, et al. (2019) Genome‐wide association and genomic prediction for biomass yield in a genetically diverse Miscanthus sinensis germplasm panel phenotyped at five locations in Asia and North America Gcb Bioenergy. 11: 988-1007 |
Dong H, Clark LV, Lipka AE, et al. (2019) Winter hardiness of Miscanthus (III): Genome‐wide association and genomic prediction for overwintering ability in Miscanthus sinensis Gcb Bioenergy. 11: 930-955 |
Barling A, Swaminathan K, Mitros T, et al. (2013) A detailed gene expression study of the Miscanthus genus reveals changes in the transcriptome associated with the rejuvenation of spring rhizomes. Bmc Genomics. 14: 864 |
Flowers JM, Hanzawa Y, Hall MC, et al. (2009) Population genomics of the Arabidopsis thaliana flowering time gene network. Molecular Biology and Evolution. 26: 2475-86 |
Lowry DB, Hall MC, Salt DE, et al. (2009) Genetic and physiological basis of adaptive salt tolerance divergence between coastal and inland Mimulus guttatus. The New Phytologist. 183: 776-88 |
Hall MC, Dworkin I, Ungerer MC, et al. (2007) Genetics of microenvironmental canalization in Arabidopsis thaliana. Proceedings of the National Academy of Sciences of the United States of America. 104: 13717-22 |
Hall MC, Willis JH. (2006) Divergent selection on flowering time contributes to local adaptation in Mimulus guttatus populations. Evolution; International Journal of Organic Evolution. 60: 2466-77 |
Hall MC, Basten CJ, Willis JH. (2006) Pleiotropic quantitative trait loci contribute to population divergence in traits associated with life-history variation in Mimulus guttatus. Genetics. 172: 1829-44 |
Hall MC, Willis JH. (2006) DIVERGENT SELECTION ON FLOWERING TIME CONTRIBUTES TO LOCAL ADAPTATION IN MIMULUS GUTTATUS POPULATIONS Evolution. 60: 2466-2477 |