Independent evolution of ancestral and novel defenses in a genus of toxic plants (, Brassicaceae).

Pavan Kumar, Georg Jander, Lukas A Mueller, J Chris Pires, Caroline Müller, Francisco Perfectti, José-María Gómez, Georg Petschenka, Matthias Erb, Tobias Züst, Cynthia K Holland, Thomas York, Mahdieh Mirzaei, Hong An, Makenzie E Mabry, Adrian F Powell, Susan R Strickler

Journal: eLife 2021;9():e51712

PMID: 32252891

Abstract

Phytochemical diversity is thought to result from coevolutionary cycles as specialization in herbivores imposes diversifying selection on plant chemical defenses. Plants in the speciose genus (Brassicaceae) produce both ancestral glucosinolates and evolutionarily novel cardenolides as defenses. Here we test macroevolutionary hypotheses on co-expression, co-regulation, and diversification of these potentially redundant defenses across this genus. We sequenced and assembled the genome of and foliar transcriptomes of 47 additional species to construct a phylogeny from 9868 orthologous genes, revealing several geographic clades but also high levels of gene discordance. Concentrations, inducibility, and diversity of the two defenses varied independently among species, with no evidence for trade-offs. Closely related, geographically co-occurring species shared similar cardenolide traits, but not glucosinolate traits, likely as a result of specific selective pressures acting on each defense. Ancestral and novel chemical defenses in thus appear to provide complementary rather than redundant functions.

© 2020, Züst et al.

Address: Institute of Plant Sciences, University of Bern, Bern, Switzerland.; Boyce Thompson Institute, Ithaca, United States.; Division of Biological Sciences, University of Missouri, Columbia, United States.; Institut für Insektenbiotechnologie, Justus-Liebig-Universität Giessen, Giessen, Germany.; Department of Functional and Evolutionary Ecology, Estación Experimental de Zonas Áridas (EEZA-CSIC), Almería, Spain.; Research Unit Modeling Nature, Department of Genetics, University of Granada, Granada, Spain.; Department of Chemical Ecology, Bielefeld University, Bielefeld, Germany.
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