bioRxiv Science⌕ Search

Biology subjects

Wittstock, U.

Publications and source records attributed to Wittstock, U..

2 recordsLinked to original sources

Genome sequence of the medicinal plant Tropaeolum majus provides insights into flavonoid biosynthesis

Tropaeolum majus is a very popular species around the world with an enormous number of commercially available varieties displaying various flower color patterns and growth characteristics. It is rich in phytochemicals such as glucotropaeolin, hydroxycinnamic acid derivatives, and flavonol glycosides. Here, we report a highly continuous genome sequence of T. majus and a comprehensive annotation of protein encoding genes suitable for comparative genomics. The potential for the exploration of individual gene functions in this valuable plant is demonstrated by an analysis of the flavonoid biosynthesis genes and their transcriptional regulators. Important players of the flavonol biosynthesis, including structural genes and a transcription factor, were identified that are required to produce precursors of phytomedically relevant flavonol glycosides. The genome sequence does not reveal an ortholog of the leucoanthocyanidin reductase encoding gene (LAR), which aligns with previous reports about the absence of this gene in many Brassicales species.

plant biology↗

Beyond defense: Glucosinolate structural diversity shapes recruitment of a metabolic network of leaf-associated bacteria

Leaf bacteria are critical for plant health, but little is known about how plant traits control their recruitment. Aliphatic glucosinolates (GLSs) are secondary metabolites present in leaves of Brassicaceae plants in genotypically-defined mixtures. Upon damage, they are broken down to products that deter herbivory and inhibit pathogens. Using two A. thaliana genotypes with different aliphatic GLS profiles, we find that structural variants differentially affect commensal leaf bacteria: In the model genotype Col-0, GLS breakdown products (mostly from 4-methylsulfinylbutyl-glucosinolate) are potentially highly toxic to bacteria but have no effect on natural leaf colonization. In contrast, in an A. thaliana genotype from a wild population, GLS (mostly allyl-GLS) enriches Burkholderiales bacteria, an effect also detected in nature. Indeed, in-vitro as a carbon source, intact allyl-GLS specifically enriches a Burkholderiales-containing community in which Burkholderiales depend on other bacteria but in turn increase community growth rates. Metabolism of different GLSs is linked to breakdown product detoxification, helping explain GLS structural control of community recruitment.

microbiology↗