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1.
Plant J ; 103(3): 1189-1204, 2020 08.
Article in English | MEDLINE | ID: mdl-32369642

ABSTRACT

Tomato (Solanum lycopersicum L.) has become a popular model for genetic studies of fruit flavor in the last two decades. In this article we present a study of tomato fruit flavor, including an analysis of the genetic, metabolic and sensorial variation of a collection of contemporary commercial glasshouse tomato cultivars, followed by a validation of the associations found by quantitative trait locus (QTL) analysis of representative biparental segregating populations. This led to the identification of the major sensorial and chemical components determining fruit flavor variation and detection of the underlying QTLs. The high representation of QTL haplotypes in the breeders' germplasm suggests that there is great potential for applying these QTLs in current breeding programs aimed at improving tomato flavor. A QTL on chromosome 4 was found to affect the levels of the phenylalanine-derived volatiles (PHEVs) 2-phenylethanol, phenylacetaldehyde and 1-nitro-2-phenylethane. Fruits of near-isogenic lines contrasting for this locus and in the composition of PHEVs significantly differed in the perception of fruity and rose-hip-like aroma. The PHEV locus was fine mapped, which allowed for the identification of FLORAL4 as a candidate gene for PHEV regulation. Using a gene-editing-based (CRISPR-CAS9) reverse-genetics approach, FLORAL4 was demonstrated to be the key factor in this QTL affecting PHEV accumulation in tomato fruit.


Subject(s)
Borates/metabolism , Fructose/analogs & derivatives , Genes, Plant/genetics , Quantitative Trait Loci/genetics , Solanum lycopersicum/genetics , Borates/standards , CRISPR-Associated Protein 9 , CRISPR-Cas Systems , Chromosome Mapping , Chromosomes, Plant/genetics , Food Quality , Fructose/metabolism , Fructose/standards , Gene Editing , Genes, Plant/physiology , Solanum lycopersicum/metabolism , Solanum lycopersicum/standards , Phenylalanine/metabolism , Quantitative Trait, Heritable , Volatile Organic Compounds/metabolism
2.
Front Plant Sci ; 10: 1606, 2019.
Article in English | MEDLINE | ID: mdl-31921253

ABSTRACT

It is generally believed that domestication and breeding of plants has led to genetic erosion, including loss of nutritional value and resistances to diseases, especially in tomato. We studied the diversity dynamics of greenhouse tomato varieties in NW Europe, especially The Netherlands, over the last seven decades. According to the used SNP array, the genetic diversity was indeed very low during the 1960s, but is now eight times higher when compared to that dip. The pressure since the 1970s to apply less pesticides led to the introgression of many disease resistances from wild relatives, representing the first boost of genetic diversity. In Europe a second boost ensued, largely driven by German popular media who named poor tasting tomatoes Wasserbomben (water bombs). The subsequent collapse of Dutch tomato exports to Germany fueled breeding for fruit flavor, further increasing diversity since the 1990s. The increased diversity in composition of aroma volatiles observed starting from 1990s may reflect the efforts of breeders to improve fruit quality. Specific groups of aroma compounds showed different quantitative trend over the decades studied. Our study provides compelling evidence that breeding has increased the diversity of tomato varieties considerably since the 1970s.

3.
Plant Cell ; 25(8): 3067-78, 2013 Aug.
Article in English | MEDLINE | ID: mdl-23956261

ABSTRACT

Phenylpropanoid volatiles are responsible for the key tomato fruit (Solanum lycopersicum) aroma attribute termed "smoky." Release of these volatiles from their glycosylated precursors, rather than their biosynthesis, is the major determinant of smoky aroma in cultivated tomato. using a combinatorial omics approach, we identified the non-smoky glycosyltransferase1 (NSGT1) gene. Expression of NSGT1 is induced during fruit ripening, and the encoded enzyme converts the cleavable diglycosides of the smoky-related phenylpropanoid volatiles into noncleavable triglycosides, thereby preventing their deglycosylation and release from tomato fruit upon tissue disruption. In an nsgt1/nsgt1 background, further glycosylation of phenylpropanoid volatile diglycosides does not occur, thereby enabling their cleavage and the release of corresponding volatiles. Using reverse genetics approaches, the NSGT1-mediated glycosylation was shown to be the molecular mechanism underlying the major quantitative trait locus for smoky aroma. Sensory trials with transgenic fruits, in which the inactive nsgt1 was complemented with the functional NSGT1, showed a significant and perceivable reduction in smoky aroma. NSGT1 may be used in a precision breeding strategy toward development of tomato fruits with distinct flavor phenotypes.


Subject(s)
Fruit/enzymology , Glycosyltransferases/metabolism , Odorants/analysis , Plant Proteins/metabolism , Solanum lycopersicum/enzymology , Chromatography, Liquid , Chromosome Segregation/genetics , Chromosomes, Plant/genetics , Eugenol/chemistry , Fruit/genetics , Fruit/growth & development , Gene Expression Regulation, Plant , Genetic Markers , Genome, Plant/genetics , Glycosides/chemistry , Glycosides/metabolism , Glycosylation , Guaiacol/chemistry , Humans , Solanum lycopersicum/genetics , Solanum lycopersicum/metabolism , Mass Spectrometry , Metabolome/genetics , Molecular Sequence Data , Phylogeny , Plant Proteins/genetics , Plants, Genetically Modified , Salicylates/chemistry , Transcription, Genetic
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