Polygenic architecture of flowering time and its relationship with local environments in the grass Brachypodium distachyon.
Minadakis, N.; Kaderli, L.; Horvath, R.; Xu, W.; Thieme, M.; Woods, D. P.; Roulin, A. C.
Show abstract
Synchronizing the timing of reproduction with the environment is crucial in the wild. Among the multiple mechanisms annual plants evolved to sense their environment, the requirement of cold-mediated vernalization is a major process that prevents individuals from flowering during winter. In many annual plants including crops, both a long and short vernalization requirement can be observed within species, resulting in so-called early-(spring) and late (winter)-flowering genotypes. Here, using the grass model Brachypodium distachyon, we explored the link between flowering time-related trait (vernalization requirement and flowering time), environmental variation, and diversity at flowering-time genes by combining measurements under greenhouse and outdoor conditions. These experiments confirmed that B. distachyon natural accessions display large differences regarding vernalization requirements and ultimately flowering time. We underline significant, albeit quantitative effects of current environmental conditions on flowering time-related traits. While disentangling the confounding effects of population structure on flowering time-related traits remains challenging, population genomics analyses indicate that well-characterized flowering-time genes may contribute significantly to flowering time variation and display signs of polygenic selection. Flowering-time genes, however, do not colocalize with GWAs peaks obtained with outdoor measurements, suggesting that additional genetic factors contribute to flowering time variation in the wild. Altogether, our study fosters our understanding of the polygenic architecture of flowering time in a natural grass system and opens new avenues of research to investigate the gene-by-environment interaction at play for this trait. Article SummarySynchronizing the timing of reproduction with the environment is crucial in the wild. We used here the model Brachypodium distachyon to expand our knowledge on the adaptive potential and polygenic architecture of flowering time in wild grasses. While genetic factors play an important role in flowering time variation in our species, we showed that flowering time correlates with environmental variables and is therefore a locally adapted trait.
Matching journals
The top 5 journals account for 50% of the predicted probability mass.
Similar papers in this journal
- Contemporary hybridization among Arabis floodplain species creates opportunities for adaptation 97%
- Novel major loci shape habitat-associated flowering time variation in Yellowstone monkeyflowers 96%
- Genomic studies in Linum shed light on the evolution of the distyly supergene and the molecular basis of convergent floral evolution 95%
Similar papers in this journal
- Genetic incompatibilities and evolutionary rescue by wild relatives shaped grain amaranth domestication 96%
- Brassica rapa domestication: untangling wild and feral forms and convergence of crop morphotypes 95%
- The evolutionary forces shaping cis and trans regulation of gene expression within a population of outcrossing plants. 95%
Similar papers in this journal
Similar papers in this journal
- Dual domestication, diversity, and differential introgression in Old World cotton diploids 95%
- Demography and natural selection have shaped genome-wide variation in the widely distributed conifer Norway Spruce (Picea abies) 94%
- Methylomes reveal recent evolutionary changes in populations of two plant species 93%
Similar papers in this journal
- The diallelic self-incompatibility system in Oleaceae is controlled by a hemizygous genomic region expressing a gibberellin pathway gene 95%
- Genomic analyses of the Linum distyly supergene reveal convergent evolution at the molecular level 94%
- Patterns of hybrid seed inviability in perennials of the Mimulus guttatus sp. complex reveal a potential role of parental conflict in reproductive isolation 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.