Explainable AI identifies recombination and chromatin environment as key predictors of subgenome evolution in maize and Brassica
Schuster, L. A.; Liu, B.; Silva, J. C. F.; Cheng, X.; Dias, R.; Zhao, M.
Show abstract
Polyploidy, or whole genome duplication, reshapes genomes through biased gene loss and regulatory rewiring, yet the drivers of biased fractionation among subgenomes remain unclear. Using maize and Brassica rapa as model allopolyploids, we compiled 60 genomic and epigenomic features in maize and 45 in B. rapa and constructed supervised machine-learning models to classify genes by subgenome identity. In both species, eXplainable Artificial Intelligence (XAI) approaches identified recombination rate as the most influential and highly interconnected feature despite nonsignificant mean differences between subgenome groups. Chromosome location, transposon density, and chromatin-associated features, including the proximity of accessible chromatin regions to genes and active histone marks such as H3K9ac and H3K27ac, consistently ranked among the top contributors to subgenome classification. XAI-derived co-variation and interaction networks further revealed recombination rate as the central node connecting significant features. Together, these results highlight recombination and chromatin environment as major predictors of subgenome divergence in polyploid genomes. TeaserRecombination and chromatin environment are key predictors of unequal gene loss and subgenome dominance after polyploidy.
Matching journals
The top 4 journals account for 50% of the predicted probability mass.
Similar papers in this journal
- The genomic and epigenomic dynamics of hemizygous genes across crops with contrasting mating systems 96%
- The Avocado Genome Informs Deep Angiosperm Phylogeny, Highlights Introgressive Hybridization, and Reveals Pathogen Influenced Gene Space Adaptation 95%
- Plant stem cell organization and differentiation at single-cell resolution 95%
Similar papers in this journal
- Machine-learning predicts genomic determinants of meiosis-driven structural variation in a eukaryotic pathogen 94%
- High-quality genome and methylomes illustrate features underlying evolutionary success of oaks 94%
- Transposable elements strongly contribute to cell-specific and species-specific looping diversity in mammalian genomes. 94%
Similar papers in this journal
Similar papers in this journal
- Differences in activity and stability drive transposable element variation in tropical and temperate maize. 94%
- Purifying selection on noncoding deletions of human regulatory elements detected using their cellular pleiotropy 93%
- Dissecting the regulatory activity and sequence content of loci with exceptional numbers of transcription factor associations 93%
Similar papers in this journal
- TAC-C uncovers open chromatin interaction in crops and SPL-mediated photosynthesis regulation 95%
- An orthologous gene coevolution network provides insight into eukaryotic cellular and genomic structure and function 93%
- Predicting future from past: The genomic basis of recurrent and rapid stickleback evolution 93%
"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.