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Combining ecophysiological modelling and quantitative trait locus analysis to identify key elementary processes underlying tomato fruit sugar concentration

机译:结合生态生理建模和数量性状基因座分析确定番茄果糖浓度的关键基本过程

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摘要

A mechanistic model predicting the accumulation of tomato fruit sugars was developed in order (i) to dissect the relative influence of three underlying processes: assimilate supply (S), metabolic transformation of sugars into other compounds (M), and dilution by water uptake (D); and (ii) to estimate the genetic variability of S, M, and D. The latter was estimated in a population of 20 introgression lines derived from the introgression of a wild tomato species (Solanum chmielewskii) into S. lycopersicum, grown under two contrasted fruit load conditions. Low load systematically decreased D in the whole population, while S and M were targets of genotype×fruit load interactions. The sugar concentration positively correlated to S and D when the variation was due to genetic introgressions, while it positively correlated to S and M when the variation was due to changes in fruit load. Co-localizations between quantitative trait loci (QTLs) for sugar concentration and QTLs for S, M, and D allowed hypotheses to be proposed on the processes putatively involved at the QTLs. Among the five QTLs for sugar concentration, four co-localized with QTLs for S, M, and D with similar allele effects. Moreover, the processes underlying QTLs for sugar accumulation changed according to the fruit load condition. Finally, for some genotypes, the processes underlying sugar concentration compensated in such a way that they did not modify the sugar concentration. By uncoupling genetic from physiological relationships between processes, these results provide new insights into further understanding of tomato fruit sugar accumulation.
机译:为了(i)剖析三个基本过程的相对影响,建立了一种预测番茄果糖积累的机理模型:同化供应(S),糖类代谢转化为其他化合物(M)和通过吸水稀释( D); (ii)估计S,M和D的遗传变异性。后者是在野生番茄物种(Solanum chmielewskii)渗入番茄(S. lycopersicum)中生长的20个渗入系中进行估算的,在两个对比下生长水果负荷条件。低负荷系统地降低了整个种群中的D,而S和M是基因型×果实负荷相互作用的目标。当变异是由于基因渗入引起的时,糖浓度与S和D呈正相关,而当变异是由于果实负荷的变化时,与S和M呈正相关。糖浓度的定量性状基因座(QTL)与S,M和D的QTL之间的共定位允许对假定涉及QTL的过程提出假设。在五个糖浓度的QTL中,有四个与S,M和D的QTL共同定位,具有相似的等位基因效应。此外,糖分积累的QTL的基础过程根据水果负荷条件而变化。最后,对于某些基因型,糖浓度下的过程以不改变糖浓度的方式进行补偿。通过使遗传与过程之间的生理关系脱钩,这些结果为进一步了解番茄果实糖分积累提供了新见识。

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