Single Point Mutation Abolishes Water Capture in Germacradien‐4‐ol Synthase
The high‐fidelity sesquiterpene cyclase (−)‐germacradien‐4‐ol synthase (GdolS) converts farnesyl diphosphate into the macrocyclic alcohol (−)‐germacradien‐4‐ol. Site‐directed mutagenesis was used to decipher the role of key residues in the water control mechanism. Replacement of Ala176, located in t...
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Veröffentlicht in: | Chembiochem : a European journal of chemical biology 2024-12, Vol.25 (23), p.e202400290-n/a |
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Sprache: | eng |
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Zusammenfassung: | The high‐fidelity sesquiterpene cyclase (−)‐germacradien‐4‐ol synthase (GdolS) converts farnesyl diphosphate into the macrocyclic alcohol (−)‐germacradien‐4‐ol. Site‐directed mutagenesis was used to decipher the role of key residues in the water control mechanism. Replacement of Ala176, located in the G1/2 helix, with non‐polar aliphatic residues of increasing size (valine, leucine, isoleucine and methionine) resulted in the accumulation of the non‐hydroxylated products germacrene A and germacrene D. In contrast, hydroxylation was maintained when the polar residues threonine, glutamine or aspartate replaced Ala176. Additionally, although a contribution of His150 to the nucleophilic water addition could be ruled out, the imidazole ring of His150 appears to assist carbocation stabilisation. The results presented here shed light on how hydroxylating sesquiterpene synthases can be engineered to design modified sesquiterpene synthases to reduce the need for further steps in the biocatalytic production of oxygenated sesquiterpenoids.
Engineering water capture in sesquiterpene synthase (GdolS) is explored by manipulating highly conserved active site residues. This work demonstrates that hydroxylation in sesquiterpene synthases can be prevented resulting in the formation of sesquiterpene hydrocarbons from carbocation intermediates. |
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ISSN: | 1439-4227 1439-7633 1439-7633 |
DOI: | 10.1002/cbic.202400290 |