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PubMed · 39733591

Revealing novel protein interaction partners of glyphosate in Escherichia coli.

Abstract

Despite all debates about its safe use, glyphosate remains the most widely applied active ingredient in herbicide products, with renewed approval in the European Union until 2033. Non-target organisms are commonly exposed to glyphosate as a matter of its mode of application, with its broader environmental and biological impacts remaining under investigation. Glyphosate displays structural similarity to phosphoenolpyruvate (PEP), thereby competitively inhibiting the 5-enolpyruvylshikimate-3-phosphate synthase (EPSPS), crucial for the synthesis of aromatic amino acids in plants, fungi, bacteria, and archaea. Most microbes, including the gut bacterium Escherichia coli (E. coli), possess a glyphosate-sensitive class I EPSPS, making them vulnerable to glyphosate's effects. Yet, little is known about glyphosate's interactions with other bacterial proteins or its broader modes of action at the proteome level. Here, we employed a quantitative proteomics and thermal proteome profiling (TPP) approach to identify novel protein binding partners of glyphosate in the E. coli proteome. Glyphosate exposure significantly altered amino acid synthesizing pathways. The abundance of shikimate pathway proteins was increased, suggesting a compensatory mechanism. Extracellular riboflavin concentrations were elevated upon glyphosate exposure, while intracellular levels remained stable. Beyond the target enzyme EPSPS, thermal proteome profiling indicated an effect of glyphosate on the thermal stability of certain proteins, including AroH and ProA, indicating interactions. Similar to the competitive binding between PEP and glyphosate at EPSPS, one reason for the interaction of AroH and ProA with the herbicide could be a high structural similarity between their substrates and glyphosate. Overall, glyphosate induced metabolic disturbances in E. coli, extending beyond its primary target, thereby providing new insights into glyphosate's broader impact on microbial systems.

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BibTeXRIS

Alix Sarah Aldehoff, Dominique Türkowsky, Patrick Lohmann, Masun Nabhan Homsi, Ulrike Rolle-Kampczyk, Elke Ueberham, Jörg Lehmann, Martin von Bergen, Nico Jehmlich, Sven-Bastiaan Haange. 2024-12-25. Revealing novel protein interaction partners of glyphosate in Escherichia coli.. https://doi.org/10.1016/j.envint.2024.109243

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Ectopic recombination: a novel mechanism of EPSPS gene amplification in glyphosate-resistant Chloris truncata.

Amplification of 5-enolpyruvylshikimate-3-P synthase (EPSPS) gene confers resistance to the herbicide glyphosate in the tetraploid Chloris truncata in Australia. To study the mechanism of amplification, the genomic organization of the EPSPS gene was investigated using fluorescence in situ hybridization (FISH) in one susceptible (Ct-S) and two resistant (Ct-R1 and Ct-R2) biotypes of C. truncata. FISH analysis revealed faint signals of the EPSPS gene on the telomeric regions of a single pair of homologous chromosomes in Ct-S plants. However, much brighter hybridization signals of the EPSPS gene were detected on three pairs of homologous chromosomes in Ct-R1 and on four pairs in the Ct-R2 plants. Thus, there was gene amplification on the native EPSPS locus as well as spread of EPSPS loci to additional chromosomes. All loci were detected in terminal regions which are hotspots of recombination. This local as well as ectopic EPSPS amplification to specific regions of chromosomes is a novel mechanism resistance to herbicides. We hypothesize that, during the bouquet stage of meiosis, telomeres come together forming a bouquet and this may provide an opportunity for ectopic recombination, supported by FISH analyses in interphase nuclei. Overall, the gene amplification appears to have occurred in two steps. First, there was tandem EPSPS amplification at the native locus, possibly via unequal recombination. Second, the amplified locus underwent ectopic recombination and spread to two additional chromosomes in Ct-R1 and three additional chromosomes in Ct-R2 plants.

Glyphosate