Structural and Evolutionary Constraints of Organophosphate Resistance in Dipteran Carboxylesterases
Frkic, R.; Giang, A.; Liu, J.-W.; Esmaeily, M.; Carr, P. D.; Fraser, N. J.; Hopkins, D.; Oakeshott, J. G.; Batterham, P.; Mabbitt, P. D.; Jackson, C. J.
Show abstract
Enzymatic detoxification of organophosphate (OP) insecticides can confer resistance in some insects, yet the precise molecular basis of this trait, and how it has evolved, remains poorly understood. In certain dipteran species, a G[->]D mutation in the oxyanion hole of -carboxylesterases (CBEs) enhances OP hydrolysis, yet this adaptation is not widespread despite the presence of orthologous CBEs in other insect species that are also exposed to OPs. The extent, and molecular basis, of evolutionary contingency and epistasis in this catalytic OP resistance has not been explored, and how further mutations might optimize OP detoxification in the future is not clear. Here, we systematically compare OP hydrolysis and analyse structures of CBE orthologs across several dipteran species, revealing that the success of the G137D mutation is sequence context-dependent. We employed laboratory-directed evolution to enhance OP turnover over 1000-fold vs. the wild-type enzyme and tested these variants in transgenic Drosophila melanogaster, demonstrating that improved catalytic rates do not directly translate to increased resistance. By highlighting the trade-off between organophosphate affinity and turnover, this work further clarifies the complex evolutionary trajectories determining why a particular resistance mechanism may evolve in some species but not others. SignificanceThis study reveals the intricate evolutionary path to insecticide resistance in insects, highlighting why a potent resistance mutation is effective in some species but not others. We show that the mutations success is contingent on the enzymes pre-existing structural features, highlighting the strong intramolecular epistasis. Using laboratory evolution, we enhanced the enzymes detoxification activity over 1000-fold, yet discovered this did not translate to increased resistance in transgenic flies. This surprising result demonstrates that effective real-world resistance requires a delicate balance between an enzymes ability to bind an insecticide (affinity) and its speed at breaking it down (turnover), providing crucial insights into the constraints governing molecular adaptation.
Matching journals
The top 2 journals account for 50% of the predicted probability mass.
Similar papers in this journal
- Structural basis for divergent and convergent evolution of catalytic machineries in plant aromatic amino acid decarboxylase proteins 96%
- A combinatorially complete epistatic fitness landscape in an enzyme active site 95%
- Definition of a saxitoxin (STX) binding code enables discovery and characterization of the Anuran saxiphilin family 95%
Similar papers in this journal
- Fragment binding to the Nsp3 macrodomain of SARS-CoV-2 identified through crystallographic screening and computational docking 95%
- Structural insights into TRAP association with ribosome-Sec61 complex, and translocon inhibition by a CADA derivative 95%
- A bacterial tungsten-containing aldehyde oxidoreductase forms an enzymatic decorated protein nanowire 94%
Similar papers in this journal
- An integrated approach unravels a crucial structural property for the function of the insect steroidogenic Halloween protein Noppera-bo 96%
- The structure of the monobactam-producing thioesterase domain of SulM forms a unique complex with the upstream carrier protein domain 95%
- On the function of TRAP substrate-binding proteins: conformational variation of the sialic acid binding protein SiaP 94%
"Similar papers" are the closest papers from that journal in the model's embedding space. They show what the match is built on, but the ranking comes mostly from a classifier over the whole training set, not from these examples alone.