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  3. Genetic architecture of resistance to plant secondary metabolites in Photorhabdus entomopathogenic bacteria.
 

Genetic architecture of resistance to plant secondary metabolites in Photorhabdus entomopathogenic bacteria.

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BORIS DOI
10.48620/92274
Publisher DOI
10.1186/s12864-025-12067-x
PubMed ID
41168779
Description
Background
Entomopathogenic nematodes of the genus Heterorhabditis establish a symbiotic association with Photorhabdus bacteria. Together, they colonize and rapidly kill insects, making them important biological control agents against agricultural pests. Improving their biocontrol traits by engineering resistance to plant secondary metabolites (benzoxazinoids) in Photorhabdus symbiotic bacteria through experimental evolution has been shown to increase their lethality towards benzoxazinoid-defended larvae of the western corn rootworm, a serious crop pest of maize, and it is therefore a promising approach to develop more efficient biocontrol agents to manage this pest. To enhance our understanding of the genetic bases of benzoxazinoid resistance in Photorhabdus bacteria, we conducted an experimental evolution experiment with a phylogenetically diverse collection of Photorhabdus strains from different geographic origins. We cultured 27 different strains in medium containing 6-methoxy-2-benzoxazolinone (MBOA), a highly active benzoxazinoid breakdown product, for 35 24 h-cycles to select for benzoxazinoid-resistant strains. Then, we carried out genome-wide sequence comparisons to uncover the genetic alterations associated with benzoxazinoid resistance. Lastly, we evaluated the resistance of the newly isolated resistant Photorhabdus strains to eight additional bioactive compounds, including 2-benzoxazolinone (BOA), nicotine, caffeine, 6-chloroacetyl-2-benzoxazolinone (CABOA), digitoxin, fenitrothion, ampicillin, and kanamycin.Results
We found that benzoxazinoid resistance evolves rapidly in Photorhabdus in a strain-specific manner. Across the different Photorhabdus strains, a total of nineteen nonsynonymous point mutations, two stop codon gains, and one frameshift were associated with higher benzoxazinoid resistance. The different genetic alterations were polygenic and occurred in genes coding for the EnvZ/OmpR two-component regulatory system, the different subunits of the DNA-directed RNA polymerase, and the AcrABZ-TolC multidrug efflux pump. Apart from increasing MBOA resistance, the different mutations were also associated with cross-resistance to 2-benzoxazolinone (BOA), nicotine, caffeine, and 6-chloroacetyl-2-benzoxazolinone (CABOA) and with collateral sensitivity to fenitrothion, ampicillin, and kanamycin. Targeted mutagenesis will provide a deeper mechanistic understanding, including the relative contribution of the different mutation types.Conclusions
Our study reveals several genomic features that are associated with resistance to xenobiotics in this important group of biological control agents and enhances the availability of molecular tools to develop better biological control agents, which is essential for more sustainable and ecologically friendly agricultural practices.
Date of Publication
2025-10-30
Publication Type
Article
Subject(s)
500 Science > 580 Plants (Botany)
500 Science > 570 Life sciences; biology
Keyword(s)
Agricultural pests
•
Benzoxazinoid resistance
•
Biocontrol agents
•
Collateral sensitivity
•
Cross-resistance
•
Entomopathogenic nematodes
•
Experimental evolution
•
Sustainable agriculture
•
Targeted engineering
Language(s)
en
Contributor(s)
Boss, Anja
Toepfer, Stefan
Erb, Matthiasorcid-logo
Institute of Plant Sciences (IPS)
Machado, Ricardo A R
Additional Credits
Institute of Plant Sciences (IPS)
Series
BMC Genomics
Publisher
BioMed Central
ISSN
1471-2164
Access(Rights)
open.access
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