Structure of the prenyltransferase in bifunctional copalyl diphosphate synthase from Penicillium fellutanum reveals an open hexamer conformation

[Display omitted] •P. fellutanum copalyl diphosphate synthase is an assembly-line terpene synthase.•This bifunctional enzyme catalyzes prenyltransferase and cyclase reactions.•Cryo-EM analysis reveals an open hexamer conformation for the prenyltransferase.•The open hexamer conformation may facilitat...

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Veröffentlicht in:Journal of structural biology 2024-03, Vol.216 (1), p.108060-108060, Article 108060
Hauptverfasser: Gaynes, Matthew N., Ronnebaum, Trey A., Schultz, Kollin, Faylo, Jacque L., Marmorstein, Ronen, Christianson, David W.
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Sprache:eng
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Zusammenfassung:[Display omitted] •P. fellutanum copalyl diphosphate synthase is an assembly-line terpene synthase.•This bifunctional enzyme catalyzes prenyltransferase and cyclase reactions.•Cryo-EM analysis reveals an open hexamer conformation for the prenyltransferase.•The open hexamer conformation may facilitate hexamer-octamer equilibration.•Splayed-out and more closely-associated positions are found for cyclase domains. Copalyl diphosphate synthase from Penicillium fellutanum (PfCPS) is an assembly-line terpene synthase that contains both prenyltransferase and class II cyclase activities. The prenyltransferase catalyzes processive chain elongation reactions using dimethylallyl diphosphate and three equivalents of isopentenyl diphosphate to yield geranylgeranyl diphosphate, which is then utilized as a substrate by the class II cyclase domain to generate copalyl diphosphate. Here, we report the 2.81 Å-resolution cryo-EM structure of the hexameric prenyltransferase of full-length PfCPS, which is surrounded by randomly splayed-out class II cyclase domains connected by disordered polypeptide linkers. The hexamer can be described as a trimer of dimers; surprisingly, one of the three dimer-dimer interfaces is separated to yield an open hexamer conformation, thus breaking the D3 symmetry typically observed in crystal structures of other prenyltransferase hexamers such as wild-type human GGPP synthase (hGGPPS). Interestingly, however, an open hexamer conformation was previously observed in the crystal structure of D188Y hGGPPS, apparently facilitated by hexamer-hexamer packing in the crystal lattice. The cryo-EM structure of the PfCPS prenyltransferase hexamer is the first to reveal that an open conformation can be achieved even in the absence of a point mutation or interaction with another hexamer. Even though PfCPS octamers are not detected, we suggest that the open hexamer conformation represents an intermediate in the hexamer-octamer equilibrium for those prenyltransferases that do exhibit oligomeric heterogeneity.
ISSN:1047-8477
1095-8657
DOI:10.1016/j.jsb.2023.108060