Genome Sequencing Center, HudsonAlpha Institute for Biotechnology, Huntsville, AL, USA.
Department of Horticultural Science, Texas A&M University, College Station, TX, USA.
Nat Commun. 2021 Jul 5;12(1):4125. doi: 10.1038/s41467-021-24328-w.
Genome-enabled biotechnologies have the potential to accelerate breeding efforts in long-lived perennial crop species. Despite the transformative potential of molecular tools in pecan and other outcrossing tree species, highly heterozygous genomes, significant presence-absence gene content variation, and histories of interspecific hybridization have constrained breeding efforts. To overcome these challenges, here, we present diploid genome assemblies and annotations of four outbred pecan genotypes, including a PacBio HiFi chromosome-scale assembly of both haplotypes of the 'Pawnee' cultivar. Comparative analysis and pan-genome integration reveal substantial and likely adaptive interspecific genomic introgressions, including an over-retained haplotype introgressed from bitternut hickory into pecan breeding pedigrees. Further, by leveraging our pan-genome presence-absence and functional annotation database among genomes and within the two outbred haplotypes of the 'Lakota' genome, we identify candidate genes for pest and pathogen resistance. Combined, these analyses and resources highlight significant progress towards functional and quantitative genomics in highly diverse and outbred crops.
基因组生物技术有可能加速长寿命多年生作物品种的选育工作。尽管分子工具在山核桃和其他异交树种中有变革潜力,但高度杂合的基因组、大量存在-缺失基因内容变异以及种间杂交的历史限制了选育工作。为了克服这些挑战,我们在这里展示了四个杂交山核桃基因型的二倍体基因组组装和注释,包括'Pawnee'品种两个单倍型的 PacBio HiFi 染色体规模组装。比较分析和泛基因组整合揭示了大量且可能具有适应性的种间基因组渐渗,包括从美洲山核桃中保留下来的一个单倍型渐渗到山核桃育种品系中。此外,通过利用我们的泛基因组存在缺失和功能注释数据库在基因组之间以及在'Lakota'基因组的两个杂交单倍型内,我们鉴定出了抗虫害和病原体的候选基因。综上所述,这些分析和资源突显了在高度多样化和杂交作物中进行功能和数量基因组学研究的重大进展。