Institute of Crop Sciences, Chinese Academy of Agricultural Sciences, Beijing, China.
Novogene Bioinformatics Institute, Beijing, China.
Nat Plants. 2022 Jul;8(7):750-763. doi: 10.1038/s41477-022-01190-2. Epub 2022 Jul 18.
Single-cross maize hybrids display superior heterosis and are produced from crossing two parental inbred lines belonging to genetically different heterotic groups. Here we assembled 1,604 historically utilized maize inbred lines belonging to various female heterotic groups (FHGs) and male heterotic groups (MHGs), and conducted phenotyping and genomic sequencing analyses. We found that the FHGs and MHGs have undergone both convergent and divergent changes for different sets of agronomic traits. Using genome-wide selection scans and association analyses, we identified a large number of candidate genes that contributed to the improvement of agronomic traits of the FHGs and MHGs. Moreover, we observed increased genetic differentiation between the FHGs and MHGs across the breeding eras, and we found a positive correlation between increasing heterozygosity levels in the differentiated genes and heterosis in hybrids. Furthermore, we validated the function of two selected genes and a differentiated gene. This study provides insights into the genomic basis of modern hybrid maize breeding.
单交玉米杂种表现出优良的杂种优势,是通过将两个属于遗传上不同杂种群的亲本自交系杂交产生的。在这里,我们组装了 1604 个历史上使用的属于不同雌性杂种群(FHG)和雄性杂种群(MHG)的玉米自交系,并进行了表型和基因组测序分析。我们发现,FHG 和 MHG 为不同的农艺性状集经历了趋同和发散的变化。利用全基因组选择扫描和关联分析,我们鉴定了大量候选基因,这些基因有助于提高 FHG 和 MHG 的农艺性状。此外,我们观察到在整个育种时代,FHG 和 MHG 之间的遗传分化增加,并且我们发现分化基因中的杂合性水平增加与杂种优势呈正相关。此外,我们验证了两个选定基因和一个分化基因的功能。这项研究为现代杂交玉米育种的基因组基础提供了新的见解。