The ORGAN SIZE (ORG) locus contributes to isometric gigantism in domesticated tomato
Vicente, M. H.; MacLeod, K.; Figueiredo, C. R.; Figueira, A. V.; Mohareb, F. R.; Kevei, Z.; Thompson, A. J.; Zsogon, A.; Peres, L.
Show abstract
Gigantism is a key component of the domestication syndrome, a suite of traits that differentiates crops from their wild relatives. Allometric gigantism is strongly marked in horticultural crops, causing disproportionate increases in the size of edible parts such as stems, leaves or fruits. Tomato (Solanum lycopersicum) has attracted attention as a model for fruit gigantism, and many genes have been described controlling this trait. However, the genetic basis of a corresponding increase in size of vegetative organs contributing to isometric gigantism, has remained relatively unexplored. Here, we identified a 0.4 Mbp region on chromosome 7 in introgression lines (ILs) from the wild species Solanum pennellii in two different tomato genetic backgrounds (cv. M82 and cv. Micro-Tom) that controls vegetative and reproductive organ size in tomato. The locus, named ORGAN SIZE (ORG), was fine-mapped using genotype-by-sequencing. A survey of literature revealed that ORG overlaps with previously mapped QTLs controlling tomato fruit weight during domestication. Alleles from the wild species led to reduced cell number in different organs, which was partially compensated by greater cell expansion in leaves but not in fruits. The result was a proportional reduction in leaf, flower and fruit size in the ILs harbouring the wild alleles. These findings suggest that selection for large fruit during domestication also tends to select for increases in leaf size by influencing cell division. Since leaf size is relevant for both source-sink balance and crop adaptation to different environments, the discovery of ORG could allow fine-tuning of these parameters. One sentence summaryA locus that controls isometric size increase in vegetative and reproductive organs of tomato through changes in cell division
Matching journals
The top 6 journals account for 50% of the predicted probability mass.
Similar papers in this journal
- SlKIX8 and SlKIX9 are negative regulators of leaf and fruit growth in tomato 97%
- The tomato DELLA protein PROCERA promotes ABA responses in guard cells by upregulating ABA transporter 96%
- Variation in microbial feature perception in the Rutaceae family with immune receptor conservation in citrus 96%
Similar papers in this journal
Similar papers in this journal
- Tomato CRABS CLAW paralogues interact with chromatin remodelling factors to mediate carpel development and floral determinacy 97%
- Introgression of a dominant phototropin1 mutant superenhances carotenoids and boosts flavor-related volatiles in genome-edited tomato RIN mutants 96%
- The SINGLE FLOWER (SFL) gene encodes a MYB transcription factor that regulates the number of flowers produced by the inflorescence of chickpea. 96%
Similar papers in this journal
Similar papers in this journal
"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.