Back

Extensive genome evolution distinguishes maize within a stable tribe of grasses

Stitzer, M. C.; Seetharam, A. S.; Scheben, A.; Hsu, S.-K.; Schulz, A. J.; AuBuchon-Elder, T.; El-Walid, M.; Ferebee, T. H.; Hale, C. O.; La, T.; Liu, Z.-Y.; McMorrow, S. J.; Minx, P.; Phillips, A.; Syring, M.; Wrightsman, T.; Zhai, J.; Pasquet, R.; McAllister, C.; Malcomber, S.; Traiperm, P.; Layton, D.; Zhong, J.; Costich, D. E.; Dawe, R. K.; Fengler, K.; Harris, C.; Irelan, Z.; Llaca, V.; Parakkal, P.; Zastrow-Hayes, G.; Woodhouse, M. R.; Cannon, E. K.; Portwood, J.; Andorf, C. M.; Albert, P. S.; Birchler, J. A.; Siepel, A.; Ross-Ibarra, J.; Romay, M. C.; Kellogg, E.; Buckler, E. S.; Hufford

2025-01-24 evolutionary biology
10.1101/2025.01.22.633974 bioRxiv
Show abstract

Over the last 20 million years, the Andropogoneae tribe of grasses has evolved to dominate 17% of global land area. Domestication of these grasses in the last 10,000 years has yielded our most productive crops, including maize, sugarcane, and sorghum. The majority of Andropogoneae species, including maize, show a history of polyploidy - a condition that, while offering the evolutionary advantage of multiple gene copies, poses challenges to basic cellular processes, gene expression, and epigenetic regulation. Genomic studies of polyploidy have been limited by sparse sampling of taxa in groups with multiple polyploidy events. Here, we present 33 genome assemblies from 27 species, including chromosome-scale assemblies of maize relatives Zea and Tripsacum. In maize, the after-effects of polyploidy have been widely studied, showing reduced chromosome number, biased fractionation of duplicate genes, and transposable element (TE) expansions. While we observe these patterns within the genus Zea, 12 other polyploidy events deviate significantly. Those tetraploids and hexaploids retain elevated chromosome number, maintain nearly complete complements of duplicate genes, and have only stochastic TE amplifications. These genomes reveal variable outcomes of polyploidy, challenging simple predictions and providing a foundation for understanding its evolutionary implications in an ecologically and economically important clade.

Matching journals

The top 5 journals account for 50% of the predicted probability mass.

50% of probability mass above

"Similar papers" are the closest papers from that journal in the model's embedding space. They show what the match is built on, but the ranking comes mostly from a classifier over the whole training set, not from these examples alone.