Recruitment of distinct UDP-glycosyltransferase families demonstrates dynamic evolution of chemical defense within Eucalyptus L'Hér

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The economic and ecologically important genus Eucalyptus is rich in structurally diverse specialized metabolites. While some specialized metabolite classes are highly prevalent across the genus, the cyanogenic glucoside prunasin is only produced by c. 3% of species. To investigate the evolutionary mechanisms behind prunasin biosynthesis in Eucalyptus, we compared de novo assembled transcriptomes, together with online resources between cyanogenic and acyanogenic species. Identified genes were characterized in vivo and in vitro. Pathway characterization of cyanogenic Eucalyptus camphora and Eucalyptus yarraensis showed for the first time that the final glucosylation step from mandelonitrile to prunasin is catalyzed by a novel UDP-glucosyltransferase UGT87. This step is typically catalyzed by a member of the UGT85 family, including in Eucalyptus cladocalyx. The upstream conversion of phenylalanine to mandelonitrile is catalyzed by three cytochrome P450 (CYP) enzymes from the CYP79, CYP706, and CYP71 families, as previously shown. Analysis of acyanogenic Eucalyptus species revealed the loss of different ortholog prunasin biosynthetic genes. The recruitment of UGTs from different families for prunasin biosynthesis in Eucalyptus demonstrates important pathway heterogeneities and unprecedented dynamic pathway evolution of chemical defense within a single genus. Overall, this study provides relevant insights into the tremendous adaptability of these long-lived trees.

OriginalsprogEngelsk
TidsskriftNew Phytologist
Vol/bind237
Udgave nummer3
Sider (fra-til)999-1013
ISSN0028-646X
DOI
StatusUdgivet - 2023

Bibliografisk note

Funding Information:
We thank David R. Nelson for naming the CYPome from and David Vernon for his generous support for wildlife and early career researchers. This work was supported by the VILLUM Center for Plant Plasticity (VKR023054) (BLM); the European Research Council Advanced Grant (ERC‐2012‐ADG_20120314) (BLM); VILLUM Young Investigator Grant (VKR013167) (EHJN), a Novo Nordisk Emerging Investigator Grant (0054890) (EHJN) and funding from the Danish Independent Research Council (6111‐00379B, 1051‐00083B, and 1131‐00002B) (EHJN). Eucalyptus grandis

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© 2022 The Authors. New Phytologist © 2022 New Phytologist Foundation.

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