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Identification of amino acid networks governing catalysis in the closed complex of class I terpene synthases
Author(s) -
Patrick Schrepfer,
Alexander Buettner,
Christian Goerner,
Michael Hertel,
Jeaphianne van Rijn,
Frank Wallrapp,
Wolfgang Eisenreich,
Volker Sieber,
Robert Kourist,
Thomas Brück
Publication year - 2016
Publication title -
proceedings of the national academy of sciences
Language(s) - English
Resource type - Journals
SCImago Journal Rank - 5.011
H-Index - 771
eISSN - 1091-6490
pISSN - 0027-8424
DOI - 10.1073/pnas.1519680113
Subject(s) - carbocation , terpene , active site , chemistry , terpenoid , stereochemistry , in silico , catalysis , structural motif , chemical space , atp synthase , drug discovery , biochemistry , enzyme , organic chemistry , gene
Class I terpene synthases generate the structural core of bioactive terpenoids. Deciphering structure-function relationships in the reactive closed complex and targeted engineering is hampered by highly dynamic carbocation rearrangements during catalysis. Available crystal structures, however, represent the open, catalytically inactive form or harbor nonproductive substrate analogs. Here, we present a catalytically relevant, closed conformation of taxadiene synthase (TXS), the model class I terpene synthase, which simulates the initial catalytic time point. In silico modeling of subsequent catalytic steps allowed unprecedented insights into the dynamic reaction cascades and promiscuity mechanisms of class I terpene synthases. This generally applicable methodology enables the active-site localization of carbocations and demonstrates the presence of an active-site base motif and its dominating role during catalysis. It additionally allowed in silico-designed targeted protein engineering that unlocked the path to alternate monocyclic and bicyclic synthons representing the basis of a myriad of bioactive terpenoids.

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