Abstract
<jats:p>Perennial crops follow different domestication trajectories from annuals, yet the molecular basis of slow-variable domestication - subtle tuning of conserved regulatory hubs - remains poorly characterized. We reconstructed the evolutionary history of the chloroplast kinase ABC1K7 across 9 seed plant species spanning ~350 Myr, employing PAML codon models, IQ-TREE robust codon models, and protein-level phylogenetic inference, with AlphaFold2 structural modeling. ABC1K7 was under extreme purifying selection (omega = 0.073-0.104) across all seed plants. In coconut, a single Y to F substitution at residue 652 - located >30 A from the catalytic core in a predicted intrinsically disordered region - represents the only non-synonymous change differentiating coconut from 7 of 8 angiosperm orthologs, and exhibits perfect co-segregation with domestication traits across a 17-year breeding panel (n = 327). These findings provide population-level evidence consistent with the slow-variable domestication model, identifying ABC1K orthologs as targets for perennial crop improvement.</jats:p>