2016•Nature GeneticsOpen access
A high-quality carrot genome assembly provides new insights into carotenoid accumulation and asterid genome evolution
Massimo Iorizzo, Shelby L. Ellison, Douglas A. Senalik, Peng Zeng, Pimchanok Satapoomin, Jiaying Huang, Megan J. Bowman, Marina Iovene, Walter Sanseverino, Pablo F. Cavagnaro, Mehtap Yıldız, Alicja Macko‐Podgórni, Emilia Morańska, Ewa Grzebelus, Dariusz Grzebelus, Hamid Ashrafi, Zhijun Zheng, Shifeng Cheng, David M. Spooner, Allen Van Deynze, Philipp W. Simon
Abstract
Philipp Simon, Massimo Iorizzo, Allen Van Deynze and colleagues report the high-quality assembly of the carrot genome, providing an important resource for crop improvement. They find a candidate gene that regulates carotenoid accumulation and gain further insights into asterid genome evolution, including characterization of two new polyploidization events. We report a high-quality chromosome-scale assembly and analysis of the carrot (Daucus carota) genome, the first sequenced genome to include a comparative evolutionary analysis among members of the euasterid II clade. We characterized two new polyploidization events, both occurring after the divergence of carrot from members of the Asterales order, clarifying the evolutionary scenario before and after radiation of the two main asterid clades. Large- and small-scale lineage-specific duplications have contributed to the expansion of gene families, including those with roles in flowering time, defense response, flavor, and pigment accumulation. We identified a candidate gene, DCAR_032551, that conditions carotenoid accumulation (Y) in carrot taproot and is coexpressed with several isoprenoid biosynthetic genes. The primary mechanism regulating carotenoid accumulation in carrot taproot is not at the biosynthetic level. We hypothesize that DCAR_032551 regulates upstream photosystem development and functional processes, including photomorphogenesis and root de-etiolation.