TY - JOUR
T1 - The catalytic role of glutathione transferases in heterologous anthocyanin biosynthesis
AU - Eichenberger, Michael
AU - Schwander, Thomas
AU - Hüppi, Sean
AU - Kreuzer, Jan
AU - Mittl, Peer R.E.
AU - Peccati, Francesca
AU - Jiménez-Osés, Gonzalo
AU - Naesby, Michael
AU - Buller, Rebecca M.
PY - 2023
Y1 - 2023
N2 - Anthocyanins are ubiquitous plant pigments used in a variety of technological applications. Yet, after over a century of research, the penultimate biosynthetic step to anthocyanidins attributed to the action of leucoanthocyanidin dioxygenase has never been efficiently reconstituted outside plants, preventing the construction of heterologous cell factories. Through biochemical and structural analysis, here we show that anthocyanin-related glutathione transferases, currently implicated only in anthocyanin transport, catalyse an essential dehydration of the leucoanthocyanidin dioxygenase product, flavan-3,3,4-triol, to generate cyanidin. Building on this knowledge, introduction of anthocyanin-related glutathione transferases into a heterologous biosynthetic pathway in baker’s yeast results in >35-fold increased anthocyanin production. In addition to unravelling the long-elusive anthocyanin biosynthesis, our findings pave the way for the colourants’ heterologous microbial production and could impact the breeding of industrial and ornamental plants. [Figure not available: see fulltext.]
AB - Anthocyanins are ubiquitous plant pigments used in a variety of technological applications. Yet, after over a century of research, the penultimate biosynthetic step to anthocyanidins attributed to the action of leucoanthocyanidin dioxygenase has never been efficiently reconstituted outside plants, preventing the construction of heterologous cell factories. Through biochemical and structural analysis, here we show that anthocyanin-related glutathione transferases, currently implicated only in anthocyanin transport, catalyse an essential dehydration of the leucoanthocyanidin dioxygenase product, flavan-3,3,4-triol, to generate cyanidin. Building on this knowledge, introduction of anthocyanin-related glutathione transferases into a heterologous biosynthetic pathway in baker’s yeast results in >35-fold increased anthocyanin production. In addition to unravelling the long-elusive anthocyanin biosynthesis, our findings pave the way for the colourants’ heterologous microbial production and could impact the breeding of industrial and ornamental plants. [Figure not available: see fulltext.]
UR - http://www.scopus.com/inward/record.url?scp=85169164802&partnerID=8YFLogxK
U2 - 10.1038/s41929-023-01018-y
DO - 10.1038/s41929-023-01018-y
M3 - Article
AN - SCOPUS:85169164802
SN - 2520-1158
VL - 6
SP - 927
EP - 938
JO - Nature Catalysis
JF - Nature Catalysis
IS - 10
ER -