Natural rubber reduces herbivory and alters the microbiome below ground

Author:

Böttner Laura123ORCID,Malacrinò Antonino24ORCID,Schulze Gronover Christian5ORCID,van Deenen Nicole1ORCID,Müller Boje5ORCID,Xu Shuqing23ORCID,Gershenzon Jonathan6ORCID,Prüfer Dirk15ORCID,Huber Meret13ORCID

Affiliation:

1. Institute of Plant Biology and Biotechnology University of Münster D‐48143 Münster Germany

2. Institute for Evolution and Biodiversity University of Münster D‐48149 Münster Germany

3. Institute of Organismic and Molecular Evolution Johannes Gutenberg University Mainz D‐55128 Mainz Germany

4. Department of Agriculture Università degli Studi Mediterranea di Reggio Calabria I‐89122 Reggio Calabria Italy

5. Fraunhofer Institute for Molecular Biology and Applied Ecology IME Schlossplatz 8 D‐48143 Münster Germany

6. Department of Biochemistry Max‐Planck Institute for Chemical Ecology D‐07745 Jena Germany

Abstract

Summary Laticifers are hypothesized to mediate both plant–herbivore and plant–microbe interactions. However, there is little evidence for this dual function. We investigated whether the major constituent of natural rubber, cis‐1,4‐polyisoprene, a phylogenetically widespread and economically important latex polymer, alters plant resistance and the root microbiome of the Russian dandelion (Taraxacum koksaghyz) under attack of a root herbivore, the larva of the May cockchafer (Melolontha melolontha). Rubber‐depleted transgenic plants lost more shoot and root biomass upon herbivory than normal rubber content near‐isogenic lines. Melolontha melolontha preferred to feed on artificial diet supplemented with rubber‐depleted rather than normal rubber content latex. Likewise, adding purified cis‐1,4‐polyisoprene in ecologically relevant concentrations to diet deterred larval feeding and reduced larval weight gain. Metagenomics and metabarcoding revealed that abolishing biosynthesis of natural rubber alters the structure but not the diversity of the rhizosphere and root microbiota (ecto‐ and endophytes) and that these changes depended on M. melolontha damage. However, the assumption that rubber reduces microbial colonization or pathogen load is contradicted by four lines of evidence. Taken together, our data demonstrate that natural rubber biosynthesis reduces herbivory and alters the plant microbiota, which highlights the role of plant‐specialized metabolites and secretory structures in shaping multitrophic interactions.

Funder

Deutsche Forschungsgemeinschaft

Schweizerischer Nationalfonds zur Förderung der Wissenschaftlichen Forschung

Publisher

Wiley

Subject

Plant Science,Physiology

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