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Biology subjects

de Neve, A. E.

Publications and source records attributed to de Neve, A. E..

2 recordsLinked to original sources

A deep-time landscape of plant cis-regulatory sequence evolution

Developmental gene function is often conserved over deep time, but cis-regulatory sequence conservation is difficult to identify. Rapid sequence turnover, paleopolyploidy, structural variation, and limited phylogenomic sampling have impeded conserved non-coding sequence (CNS) discovery. Using Conservatory, an algorithm that leverages microsynteny and iterative alignments to map CNS-gene associations over evolution, we uncovered [~]2.3 million CNSs, including over 3,000 predating angiosperms, from 284 plant species spanning 300 million years of diversification. Ancient CNSs were enriched near developmental regulators, and mutating CNSs near HOMEOBOX genes produced strong phenotypes. Tracing CNS evolution uncovered key principles: CNS spacing varies, but order is conserved; genomic rearrangements form new CNS-gene associations; and ancient CNSs are preferentially retained among paralogs, but are often lost as cohorts or evolve into lineage-specific CNSs. One Sentence SummaryConservatory maps ancient cis-regulatory elements and uncovers regulatory evolution dynamics.

plant biology↗

Partial retention of ancient function increases genetic pleiotropy in grass evolution

Changes in form are driven by the differential, context-dependent regulation of pleiotropic genes. How genetic pleiotropy itself emerges, however, remains unclear. The maize genes GRASSY TILLERS1 (GT1) and RAMOSA3 (RA3) are required for axillary meristem suppression, a deeply conserved trait across angiosperms, and for floral organ suppression, a trait which evolved within the grass family. To determine how these pleiotropic functions are regulated, we first established a high-throughput method for quantitative phenotyping of grass flowers. Using this method, we show that distinct environmental mechanisms regulate axillary meristem versus floral organ suppression. In line with these differences, we find upstream regulation of GT1 and RA3 has diverged, consistent with their redeployment in flowers. Our results show that, rather than wholesale adoption of genetic networks, developmental genes can retain ancient functions and be recruited into other programs in the evolution of form, thereby increasing genetic pleiotropy.

plant biology↗