[1] Anderson, J.T. 2016. Plant fitness in a rapidly changing world. New Phytol. 210, 81-87. [2] Ahn, J., Gao, F., Dong, Y. 2025. Developmental mechanisms of fruit diversification in angiosperms and the evolutionary implications. Plant Cell Environ. 48, 4585-4598. [3] Bliss, L.C. 1971. Arctic and alpine plant life cycles. Ann. Rev. Ecol. Syst. 2, 405-438. [4] Chen, Z., Chomicki, G., Li, Y., et al., 2026. Berry Batesian mimicry enables bird dispersal of asexual bulbils in a yam. Proc. Natl. Acad. Sci. U.S.A. 123, e2528094123. [5] Cole, D.T., Cole, N.A., eds 2005. Lithops: Flowering Stones, Cactus & Co. Libri. [6] Dong, Y., ?stergaard, L., 2019. Fruit development and diversification. Curr. Biol. 29, R781-R785. [7] Eriksson, O., Jakobsson, A. 1999. Recruitment trade-offs and the evolution of dispersal mechanisms in plants. Evol. Ecol. 13, 411-423. [8] Ghasemi, A., Hemami, M.R., Karimi, S. et al. 2024. Potential seed dispersal by persian wild ass in south central Iran. Rangel. Ecol. Manage. 92, 73-79. [9] Hughes, C.E., Atchison, G.W. 2015. The ubiquity of alpine plant radiations: from the Andes to the Hengduan Mountains. New Phytol. 248, 125-139. [10] Korner, C. 2003. Alpine plant life: functional plant ecology of high mountain ecosystems, 2nd edn. New York, NY, USA: Springer-Verlag Berlin Heideberg. [11] Lev-Yadun, S., Dafni, A., Flaishman, M.A. et al. 2004. Plant coloration undermines herbivorous insect camouflage. BioEssays. 26, 1126-1130. [12] Lev-Yadun, S. 2014. Defensive masquerade by plants. Biol. J. Linn. Soc. 113, 1162-1166. [13] Lv, T.F., Gao, F., Su, T.B. et al. 2025. Developmental genetics of fruit diversity in Brassicaceae. Curr. Opin. Plant Biol. 85, 102707. [14] Niu, Y., Stevens, M., Sun, H. 2021. Commercial harvesting has driven the evolution of camouflage in an alpine plant. Curr. Biol. 31, 446-449. [15] Niu, Y., Sun, H., Stevens, M. 2018. Plant camouflage: ecology, evolution, and implications. Trends Ecol. Evol. 33, 608-618. [16] Olson, K. A., Murray, M.G., Fuller, T.K. 2010. Vegetation Composition and Nutritional Quality of Forage for Gazelles in Eastern Mongolia. Rangel. Ecol. Manage. 63, 593-598. [17] Roff, D.A., Fairbairn, D.J. 2007. The evolution of trade-offs: where are we? J. Evol. Biol. 20, 433-447. [18] Seymour, G.B., OEstergaard, L., Chapman, N.H. et al., 2013. Fruit development and ripening. Annu. Rev. Plant Biol. 64, 219-241. [19] Xu, L.R., Zhang, M.L., Podlech, D. 2010. Phyllolobium. In:Wu ZY, Hong DY, Raven P. editors. Flora of China, vol 10. Beijing (China): Science Press; St. Louis (MO): Missouri Botanical Garden Press. p. 322-328. [20] Zhang, H., Zhang, P., Niu, Y. et al. 2025. Genetic basis of camouflage in an alpine plant and its long-term co-evolution with an insect herbivore. Nat. Ecol. Evol. 9, 628-638. [21] Zhang, M.L., Rang, Y. 2009. A taxonomic note on the sections of the genus Phyllolobium (Leguminosae). J. Lanzhou Univ. 45, 75-78. [22] Zhang, M.L., Kang, Y., Zhong, Y., et al., 2012. Intense uplift of the Qinghai-Tibetan Plateau triggered rapid diversification of Phyllolobium (Leguminosae) in the Late Cenozoic. Plant Ecol. Divers. 5, 491-499. [23] Zhang, X., Deng, T., Wang, H. et al. 2026. Genomic insights into alpine plant adaptation. Plant Divers. https://doi.org/10.1016/j.pld.2025.12.012. |