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  3. Engineering bacterial symbionts of nematodes improves biocontrol potential of the western corn rootworm
 

Engineering bacterial symbionts of nematodes improves biocontrol potential of the western corn rootworm

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BORIS DOI
10.7892/boris.141467
Date of Publication
May 2020
Publication Type
Article
Division/Institute

Institut für Pflanzen...

Bioinformatik und com...

Institut für Infektio...

Institut für Infektio...

Author
Ruiz Machado, Ricardo Alberto
Institut für Pflanzenwissenschaften (IPS)
Thönen, Lisa Paulina
Institut für Pflanzenwissenschaften (IPS)
Marques Arce, Carla Cristina
Institut für Pflanzenwissenschaften (IPS)
Theepan, Vanitha
Prada Chaparro, Fausto
Institut für Pflanzenwissenschaften (IPS)
Wüthrich, Daniel
Bioinformatik und computerbasierte Biologie
Robert, Christelle Aurélie Maud
Institut für Pflanzenwissenschaften (IPS)
Vogiatzaki, Evangelia
Institut für Pflanzenwissenschaften (IPS)
Shi, Yi-Ming
Schären, Olivier Pascalorcid-logo
Institut für Infektionskrankheiten (IFIK)
Notter Dias, Matheusorcid-logo
Institut für Infektionskrankheiten (IFIK)
Bruggmann, Rémy
Bioinformatik und computerbasierte Biologie
Hapfelmeier, Siegfried Hektororcid-logo
Institut für Infektionskrankheiten, Forschung
Bode, Helge B.
Erb, Matthiasorcid-logo
Institut für Pflanzenwissenschaften (IPS)
Subject(s)

500 - Science::580 - ...

500 - Science::570 - ...

600 - Technology::610...

Series
Nature biotechnology
ISSN or ISBN (if monograph)
1087-0156
Publisher
Nature America
Language
English
Publisher DOI
10.1038/s41587-020-0419-1
PubMed ID
32066956
Description
The western corn rootworm (WCR) decimates maize crops worldwide. One potential way to control this pest is treatment with entomopathogenic nematodes (EPNs) that harbor bacterial symbionts that are pathogenic to insects. However, WCR larvae sequester benzoxazinoid secondary metabolites that are produced by maize and use them to increase their resistance to the nematodes and their symbionts. Here we report that experimental evolution and selection for bacterial symbionts that are resistant to benzoxazinoids improve the ability of a nematode–symbiont pair to kill WCR larvae. We isolated five Photorhabdus symbionts from different nematodes and increased their benzoxazinoid resistance through experimental evolution. Benzoxazinoid resistance evolved through multiple mechanisms, including a mutation in the aquaporin-like channel gene aqpZ. We reintroduced benzoxazinoid-resistant Photorhabdus strains into their original EPN hosts and identified one nematode–symbiont pair that was able to kill benzoxazinoid-sequestering WCR larvae more efficiently. Our results suggest that modification of bacterial symbionts might provide a generalizable strategy to improve biocontrol of agricultural pests.
Handle
https://boris-portal.unibe.ch/handle/20.500.12422/54574
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File(s)
FileFile TypeFormatSizeLicensePublisher/Copright statementContent
2020_NatBiotechnol.pdftextAdobe PDF3.99 MBpublished
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