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Yang L, Wang HN, Hou XH, et al. (2018) Parallel evolution of common allelic variants confers flowering diversity in Capsella rubella. The Plant Cell
Li ZW, Chen X, Wu Q, et al. (2016) On the origin of de novo genes in Arabidopsis thaliana populations. Genome Biology and Evolution
Slotte T, Hazzouri KM, Ã…gren JA, et al. (2013) The Capsella rubella genome and the genomic consequences of rapid mating system evolution. Nature Genetics. 45: 831-5
Guo YL, Todesco M, Hagmann J, et al. (2012) Independent FLC mutations as causes of flowering-time variation in Arabidopsis thaliana and Capsella rubella. Genetics. 192: 729-39
Guo YL, Fitz J, Schneeberger K, et al. (2011) Genome-wide comparison of nucleotide-binding site-leucine-rich repeat-encoding genes in Arabidopsis. Plant Physiology. 157: 757-69
Guo YL, Zhao X, Lanz C, et al. (2011) Evolution of the S-locus region in Arabidopsis relatives. Plant Physiology. 157: 937-46
Hu TT, Pattyn P, Bakker EG, et al. (2011) The Arabidopsis lyrata genome sequence and the basis of rapid genome size change. Nature Genetics. 43: 476-81
Hollister JD, Smith LM, Guo YL, et al. (2011) Transposable elements and small RNAs contribute to gene expression divergence between Arabidopsis thaliana and Arabidopsis lyrata. Proceedings of the National Academy of Sciences of the United States of America. 108: 2322-7
Guo YL, Bechsgaard JS, Slotte T, et al. (2009) Recent speciation of Capsella rubella from Capsella grandiflora, associated with loss of self-incompatibility and an extreme bottleneck. Proceedings of the National Academy of Sciences of the United States of America. 106: 5246-51
Tang C, Toomajian C, Sherman-Broyles S, et al. (2007) The evolution of selfing in Arabidopsis thaliana. Science (New York, N.Y.). 317: 1070-2
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