TY - UNPB
T1 - Bacterial pathogen deploys iminosugar galactosyrin to manipulate plant glycobiology
AU - Sanguankiattichai, Nattapong
AU - Chandrasekar, Balakumaran
AU - Sheng, Yuewen
AU - Hardenbrook, Nathan
AU - Tabak, Werner W A
AU - Krahn, Daniel
AU - Drapal, Margit
AU - Buscaill, Pierre
AU - Yamamoto, Suzuka
AU - Kato, Atsushi
AU - Nash, Robert
AU - Fleet, George
AU - Fraser, Paul
AU - Kaiser, Markus
AU - Zhang, Peijun
AU - Preston, Gail M
AU - van der Hoorn, Renier A L
PY - 2025/2/14
Y1 - 2025/2/14
N2 - The extracellular space (apoplast) of plants is an important molecular battleground during infection by many pathogens. We previously found that a plant-secreted β-galactosidase BGAL1 acts in immunity by facilitating the release of immunogenic peptides from bacterial flagellin and that
Pseudomonas syringae suppresses this enzyme by producing a small molecule inhibitor called galactosyrin. Here, we elucidated the structure and biosynthesis of galactosyrin and uncovered its multifunctional roles during infection. Structural elucidation by cryo-EM and chemical synthesis revealed that galactosyrin is an iminosugar featuring a unique geminal diol attached to the pyrrolidine moiety that mimics galactose binding to the β-galactosidase active site. Galactosyrin biosynthesis branches off from purine biosynthesis and involves three enzymes of which the first is a reductase that is unique in iminosugar biosynthesis. Besides inhibiting BGAL1 to avoid detection, galactosyrin also changes the glycoproteome and metabolome of the apoplast. The manipulation of host glycobiology may be common to plant-associated bacteria that carry putative iminosugar biosynthesis clusters.
AB - The extracellular space (apoplast) of plants is an important molecular battleground during infection by many pathogens. We previously found that a plant-secreted β-galactosidase BGAL1 acts in immunity by facilitating the release of immunogenic peptides from bacterial flagellin and that
Pseudomonas syringae suppresses this enzyme by producing a small molecule inhibitor called galactosyrin. Here, we elucidated the structure and biosynthesis of galactosyrin and uncovered its multifunctional roles during infection. Structural elucidation by cryo-EM and chemical synthesis revealed that galactosyrin is an iminosugar featuring a unique geminal diol attached to the pyrrolidine moiety that mimics galactose binding to the β-galactosidase active site. Galactosyrin biosynthesis branches off from purine biosynthesis and involves three enzymes of which the first is a reductase that is unique in iminosugar biosynthesis. Besides inhibiting BGAL1 to avoid detection, galactosyrin also changes the glycoproteome and metabolome of the apoplast. The manipulation of host glycobiology may be common to plant-associated bacteria that carry putative iminosugar biosynthesis clusters.
U2 - 10.1101/2025.02.13.638044
DO - 10.1101/2025.02.13.638044
M3 - Preprint
C2 - 39990308
BT - Bacterial pathogen deploys iminosugar galactosyrin to manipulate plant glycobiology
PB - bioRxiv
ER -