Neofunctionalization underlies the evolutionary origin of sclareol biosynthesis in the mint family

F Fei Dong M Marion Verdenaud (CNRS, Institut National de Recherche pour l’Agriculture, l’Alimentation et l’Environnement, Université d’Evry, Institute of Plant Sciences Paris-Saclay, Université Paris-Saclay) G Gabriele Adam F Feng-Quan Tan W Wissame Mouloud S Stephanie Drevensek M Melissa Hanique C Clement Pichot F Fabien Marcel (CNRS, Institut National de Recherche pour l’Agriculture, l’Alimentation et l’Environnement, Université d’Evry, Institute of Plant Sciences Paris-Saclay, Université Paris-Saclay) F Francoise Gilard B Bertrand Gakière A Alexandra Launay-Avon E Etienne Delannoy B Benoit Join J Johannes Panten (Symrise AG, Mühlenfeldstraße 1, 37603 Holzminden, Germany) M Michel Dron A Abdelhafid Bendahmane (CNRS, Institut National de Recherche pour l’Agriculture, l’Alimentation et l’Environnement, Université d’Evry, Institute of Plant Sciences Paris-Saclay, Université Paris-Saclay) A Adnane Boualem

Abstract

Abstract Plant specialized metabolites play essential ecological roles, yet the mechanisms underlying their diversification remain poorly understood. Here, we investigate the biosynthesis of sclareol, a potent antifungal diterpene produced by Salvia sclarea (clary sage). A complete telomere-to-telomere genome assembly of clary sage, compared with genomes of related Lamiaceae species that do not produce sclareol, reveals a recent tandem duplication of a class II diterpene synthase gene ( SsLPPS ). This duplicated enzyme acquires a specific catalytic activity, synthesizing labda-13-en-8-ol diphosphate (LPP), the direct precursor of sclareol. Structural modeling and site-directed mutagenesis identify key amino acid substitutions responsible for this neofunctionalization. Integrative genome, chromatin, and transcriptome analyses show that SsLPPS and additional diterpenoid biosynthetic genes are organized in a trichome-specific, co-regulated gene cluster. Together, our findings illustrate how enzyme innovation and regulatory rewiring can give rise to unique metabolic pathways and may inform future strategies for engineering valuable plant terpenoids.

Article Details

Volume / Issue Vol. 17, Issue 1
Published May 22, 2026
ISSN 2041-1723
Publisher Nature Portfolio

Journal Info

Nature Communications

Nature Portfolio

ISSN: 2041-1723 Open Access Life Sciences

Authors (18)

F

Fei Dong

M

Marion Verdenaud

CNRS, Institut National de Recherche pour l’Agriculture, l’Alimentation et l’Environnement, Université d’Evry, Institute of Plant Sciences Paris-Saclay, Université Paris-Saclay

G

Gabriele Adam

F

Feng-Quan Tan

W

Wissame Mouloud

S

Stephanie Drevensek

M

Melissa Hanique

C

Clement Pichot

F

Fabien Marcel

CNRS, Institut National de Recherche pour l’Agriculture, l’Alimentation et l’Environnement, Université d’Evry, Institute of Plant Sciences Paris-Saclay, Université Paris-Saclay

F

Francoise Gilard

B

Bertrand Gakière

A

Alexandra Launay-Avon

E

Etienne Delannoy

B

Benoit Join

J

Johannes Panten

Symrise AG, Mühlenfeldstraße 1, 37603 Holzminden, Germany

M

Michel Dron

A

Abdelhafid Bendahmane

CNRS, Institut National de Recherche pour l’Agriculture, l’Alimentation et l’Environnement, Université d’Evry, Institute of Plant Sciences Paris-Saclay, Université Paris-Saclay

A

Adnane Boualem