Active Site Loop Engineering Abolishes Water Capture in Hydroxylating Sesquiterpene Synthases

Allbwn ymchwil: Cyfraniad at gyfnodolynErthygladolygiad gan gymheiriaid

Fersiynau electronig

Dangosydd eitem ddigidol (DOI)

  • Prabhakar L Srivastava
    School of Healthcare Sciences, Cardiff University
  • Sam T Johns
    University Walk
  • Rebecca Walters
    University Walk
  • David J Miller
    School of Healthcare Sciences, Cardiff University
  • Marc W Van der Kamp
    University Walk
  • Rudolf K Allemann
    School of Healthcare Sciences, Cardiff University

Terpene synthases (TS) catalyze complex reactions to produce a diverse array of terpene skeletons from linear isoprenyl diphosphates. Patchoulol synthase (PTS) from Pogostemon cablin converts farnesyl diphosphate into patchoulol. Using simulation-guided engineering, we obtained PTS variants that eliminate water capture. Further, we demonstrate that modifying the structurally conserved Hα-1 loop also reduces hydroxylation in PTS, as well as in germacradiene-11-ol synthase (Gd11olS), leading to cyclic neutral intermediates as products, including α-bulnesene (PTS) and isolepidozene (Gd11olS). Hα-1 loop modification could be a general strategy for engineering sesquiterpene synthases to produce complex cyclic hydrocarbons without the need for structure determination or modeling.

Iaith wreiddiolSaesneg
Tudalennau (o-i)14199-14204
Nifer y tudalennau6
CyfnodolynACS Catalysis
Cyfrol13
Rhif y cyfnodolyn21
Dyddiad ar-lein cynnar20 Hyd 2023
Dynodwyr Gwrthrych Digidol (DOIs)
StatwsCyhoeddwyd - 3 Tach 2023
Cyhoeddwyd yn allanolIe
Gweld graff cysylltiadau