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Robison TA, Oh ZG, Lafferty D, Xu X, Villarreal JCA, Gunn LH, Li FW (3 January 2025). "Hornworts reveal a spatial model for pyrenoid-based CO2-concentrating mechanisms in land plants". Nature Plants. 11 (1). Nature Publishing Group: 63–73. doi:10.1038/s41477-024-01871-0. ISSN2055-0278. PMID39753956.
Yamano, T.; Tsujikawa, T.; Hatano, K.; Ozawa, S. I.; Takahashi, Y.; Fukuzawa, H. (2010). "Light and low-CO2-dependent LCIB–LCIC complex localization in the chloroplast supports the carbon-concentrating mechanism in Chlamydomonas reinhardtii". Plant and Cell Physiology. 51 (9): 1453–1468. doi:10.1093/pcp/pcq105. PMID20660228.
Grossman, AR; Croft, M; Gladyshev, VN; Merchant, SS; Posewitz, MC; Prochnik, S; Spalding, MH (2007). "Novel metabolism in Chlamydomonas through the lens of genomics". Curr Opin Plant Biol. 10 (2): 190–8. doi:10.1016/j.pbi.2007.01.012. PMID17291820.
Nassoury, N.; Wang, Y.; Morse, D. (2005). "Brefeldin a inhibits circadian remodeling of chloroplast structure in the dinoflagellate Gonyaulax". Traffic. 6 (7): 548–561. doi:10.1111/j.1600-0854.2005.00296.x. PMID15941407.
Badger, M. R.; Price, G. D. (2003). "CO2 concentrating mechanisms in cyanobacteria: molecular components, their diversity and evolution". Journal of Experimental Botany. 54 (383): 609–622. doi:10.1016/s0928-0987(02)00244-0. PMID12554074.
Meyer, M.; Griffiths, H. (2013). "Origins and diversity of eukaryotic CO2-concentrating mechanisms: Lessons for the future". Journal of Experimental Botany. 64 (3): 769–786. doi:10.1093/jxb/ers390. PMID23345319..
Robison TA, Oh ZG, Lafferty D, Xu X, Villarreal JCA, Gunn LH, Li FW (3 January 2025). "Hornworts reveal a spatial model for pyrenoid-based CO2-concentrating mechanisms in land plants". Nature Plants. 11 (1). Nature Publishing Group: 63–73. doi:10.1038/s41477-024-01871-0. ISSN2055-0278. PMID39753956.