DNA-encoded chemical library (DEL) technology is a powerful tool in early-stage drug discovery. Although widely applied in industry and academia, challenges persist in generating DELs with high quality and chemical diversity. Low yields in building-block incorporation, limited selectivity and, most importantly, DNA damage from harsh reaction conditions compromise library quality, reduce signal-to-noise in affinity selections and ultimately hinder drug discovery. Here we show that tailored enzymes can be harnessed for the effective construction of molecular diversity on DNA under mild conditions. Targeting amide bond formation, we designed a cascade of complementary coenzyme A ligases and rationally tailored N-acyltransferases to access a broad amide scope on-DNA (>120 examples), identifying structural elements that optimize the biocatalysts’ DNA compatibility in the process. Integrating the enzymatic cascade with chemical synthesis led to the construction of a diverse DEL without damage to the DNA barcode, highlighting the biocatalysts’ applicability for early scaffold construction and late-stage functionalization. DNA-encoded library (DEL) synthesis can be constrained by DNA damage and limited reaction scope under conventional chemistry. Here a complementary CoA ligase–N-acyltransferase cascade is engineered to enable high yield, DNA-compatible amide formation, expanding substrate scope and DEL quality.
Daniel Schaub, Alice Lessing, Fabian Meyer et al.· Nature Catalysis· 1 citation
The anthocyanin biosynthetic pathway (ABP), a branch of the phenylpropanoid pathway, is responsible for the production of a wide range of flavonoid compounds in plants. Anthocyanin-related glutathione transferases (arGSTs) have long been proposed to act as non-catalytic carrier proteins, mediating the vacuolar sequestration of anthocyanins. However, recent structural and biochemical evidence has suggested a potential catalytic role for arGSTs in the ABP, notably in catalyzing the dehydration of flavan-3,3,4-triol to anthocyanidin. Despite their importance, only a limited number of arGSTs have been characterized biochemically and structurally. Here, we investigated the arGST isoform from bilberry, one of the richest fruit sources of anthocyanins. We showed that the expression of arGST gene in bilberry increases during fruit ripening in parallel with other ABP genes and putative transcription factors. Biochemical and structural analyses highlighted the remarkable ability of GSTs to adapt to their substrates and revealed a possible inhibitory effect of quercetin on arGST activity, as quercetin is a by-product of the anthocyanin biosynthetic pathway.
Laura Morette, S. Mathiot, S. Rochoux et al.· International Journal of Bio...· 0 citations