Lineage-specific evolution of regulatory landscapes in a polyploid plant and its diploid progenitors

X Xiang Li X Xuan Zhang Z Ziliang Luo (Department of Genetics, University of Georgia) H Hao Zhang J John Pablo Mendieta (Department of Genetics, University of Georgia) R Robert J. Schmitz (Department of Genetics, University of Georgia)

Abstract

Cis -regulatory elements are specific DNA sequences that control gene expression in a spatiotemporal manner, and variation within these elements represents a major source of phenotypic diversity and evolutionary innovation. Nevertheless, how regulatory elements evolve and shape gene expression remains poorly understood, particularly in plants. The well-resolved phylogeny of allopolyploid peanut ( Arachis hypogaea ) and its diploid progenitors, Arachis duranensis and Arachis ipaensis , provides an ideal system to investigate the regulatory evolution at a lineage-specific level. By integrating comparative analyses of sequence similarity, chromatin accessibility, histone modifications, conserved noncoding sequences (CNSs), and gene expression, we reconstructed the evolutionary trajectories of Accessible Chromatin Regions (ACRs), where regulatory elements typically reside, and revealed their distinct contributions to homoeolog expression bias, unequal expressions between homoeologs. Most ACRs exhibited high sequence similarity, comparable chromatin accessibility, and conserved states for H3K4me3, H3K56ac, and H3K36me3, indicating regulatory stability after hybridization and polyploidization. However, a subset of novel ACRs emerged de novo from previously nonregulatory regions or through sequence mutations in preexisting ACRs, arising at different rates and evolutionary stages. Notably, even highly sequence-conserved ACRs exhibited substantial variation in chromatin accessibility, consistent with CNS composition differences and minor sequence variation, although causal relationships remain to be demonstrated. Our analyses further revealed a complex spectrum of CNS dynamics within the diploid-polyploid framework. Overall, our study provides empirical insights into the fine-scale evolution of plant regulatory landscapes and complements previous large-scale comparisons across distant lineages.

Article Details

Volume / Issue Vol. 123, Issue 20
Published May 19, 2026
ISSN 0027-8424
Publisher National Academy of Sciences

Authors (6)

X

Xiang Li

X

Xuan Zhang

Z

Ziliang Luo

Department of Genetics, University of Georgia

H

Hao Zhang

J

John Pablo Mendieta

Department of Genetics, University of Georgia

R

Robert J. Schmitz

Department of Genetics, University of Georgia