Functional Characterization of Nine Norway Spruce TPS Genes and Evolution of Gymnosperm Terpene Synthases of the TPS-d Subfamily
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Open Access
- 1 August 2004
- journal article
- Published by Oxford University Press (OUP) in Plant Physiology
- Vol. 135 (4) , 1908-1927
- https://doi.org/10.1104/pp.104.042028
Abstract
Constitutive and induced terpenoids are important defense compounds for many plants against potential herbivores and pathogens. In Norway spruce (Picea abies L. Karst), treatment with methyl jasmonate induces complex chemical and biochemical terpenoid defense responses associated with traumatic resin duct development in stems and volatile terpenoid emissions in needles. The cloning of (+)-3-carene synthase was the first step in characterizing this system at the molecular genetic level. Here we report the isolation and functional characterization of nine additional terpene synthase (TPS) cDNAs from Norway spruce. These cDNAs encode four monoterpene synthases, myrcene synthase, (−)-limonene synthase, (−)-α/β-pinene synthase, and (−)-linalool synthase; three sesquiterpene synthases, longifolene synthase, E,E-α-farnesene synthase, and E-α-bisabolene synthase; and two diterpene synthases, isopimara-7,15-diene synthase and levopimaradiene/abietadiene synthase, each with a unique product profile. To our knowledge, genes encoding isopimara-7,15-diene synthase and longifolene synthase have not been previously described, and this linalool synthase is the first described from a gymnosperm. These functionally diverse TPS account for much of the structural diversity of constitutive and methyl jasmonate-induced terpenoids in foliage, xylem, bark, and volatile emissions from needles of Norway spruce. Phylogenetic analyses based on the inclusion of these TPS into the TPS-d subfamily revealed that functional specialization of conifer TPS occurred before speciation of Pinaceae. Furthermore, based on TPS enclaves created by distinct branching patterns, the TPS-d subfamily is divided into three groups according to sequence similarities and functional assessment. Similarities of TPS evolution in angiosperms and modeling of TPS protein structures are discussed.Keywords
This publication has 63 references indexed in Scilit:
- Biosynthesis and Emission of Terpenoid Volatiles from Arabidopsis FlowersPlant Cell, 2003
- PLANT RESPONSES TO INSECT HERBIVORY: The Emerging Molecular AnalysisAnnual Review of Plant Biology, 2002
- DEFENSIVE RESIN BIOSYNTHESIS IN CONIFERSAnnual Review of Plant Biology, 2001
- Resin-based defenses in conifersTrends in Plant Science, 1999
- Monoterpene BiosynthesisPublished by Elsevier ,1999
- Sesquiterpene Synthases from Grand Fir (Abies grandis)Journal of Biological Chemistry, 1998
- Molecular phylogeny of extant gymnosperms and seed plant evolution: analysis of nuclear 18S rRNA sequencesMolecular Biology and Evolution, 1997
- SWISS‐MODEL and the Swiss‐Pdb Viewer: An environment for comparative protein modelingElectrophoresis, 1997
- Tree View: An application to display phylogenetic trees on personal computersBioinformatics, 1996
- The rapid generation of mutation data matrices from protein sequencesBioinformatics, 1992