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Updated: Jun 16, 2026

Isolation and Identification of Waterborne Antibiotic-Resistant Bacteria and Molecular Characterization of their Antibiotic Resistance Genes
Published on: March 3, 2023
Biophysical characterization and mutational analysis of the antibiotic resistance protein NimA from Deinococcus
Hanna-Kirsti S Leiros1, Bjørn Olav Brandsdal, Seán M McSweeney
1The Norwegian Structural Biology Centre (NorStruct), Department of Chemistry, University of Tromsø, N-9037 Tromsø, Norway. hanna-kirsti.leiros@chem.uit.no
Abstract:
Metronidazole (MTZ) is an antibiotic commonly used to treat anaerobic bacterial infections in humans and animals. Antibiotic resistance toward this class of 5-nitroimidazole (5-Ni) drug derivatives has been related to the Nim genes thought to encode a reductase. Here we report the biophysical characteristics of the NimA protein from Deinococcus radiodurans (DrNimA) binding to MTZ and three other 5-Ni drugs. The interaction energies of the protein and antibiotic are studied by isothermal titration calorimetry (ITC) and with free energy and linear interaction energy (LIE) calculations, where the latter method revealed that the antibiotic binding is mainly of hydrophobic character. ITC measurements further found that one DrNimA dimer has two antibiotic binding sites which were not affected by mutation of the reactive His71. The observed association constants (K(a)) were in the range of 5.1-4910(4)M(-1) and the enthalpy release upon binding to DrNimA for the four drugs studied was relatively low (approximately -1 kJ/mol) but still measurable. The drug binding is mainly entropy driven and along with the hydrophobic drug binding site found by crystallography, this possibly explains the low observed enthalpy values. The effect of the His71 mutation and the presence of MTZ were studied by differential scanning calorimetry (DSC). Native DrNimA is a yellow colored protein where the interaction from His71 to the cofactor is thought to be responsible for the coloring. Mutations of His71 to Ala, Ser, Leu or Asp all gave transparent, colorless protein solutions, and the two mutant crystal structures of DrNimA-H71A and DrNimA-H71S presented revealed no cofactor binding.
Insights
Researchers studied how the NimA protein binds to Metronidazole and similar drugs. Binding is primarily hydrophobic and entropy-driven, with two binding sites per protein dimer, revealing insights into antibiotic resistance mechanisms.
Area of Science:
- Microbiology
- Structural Biology
- Biophysics
Background:
- Antibiotic resistance to 5-nitroimidazole (5-Ni) drugs, like Metronidazole (MTZ), is a growing concern.
- The Nim genes are implicated in this resistance, potentially encoding a reductase enzyme.
- Understanding the biophysical interactions of these drugs with their target proteins is crucial.
Purpose of the Study:
- To characterize the biophysical properties of the NimA protein from Deinococcus radiodurans (DrNimA) when binding to MTZ and other 5-Ni drugs.
- To elucidate the nature of the interaction energies and binding sites.
- To investigate the role of His71 in protein function and cofactor binding.
Main Methods:
- Isothermal titration calorimetry (ITC) to study binding thermodynamics and kinetics.
- Free energy and linear interaction energy (LIE) calculations to determine interaction characteristics.
- Differential scanning calorimetry (DSC) to assess the effect of mutations.
- Crystallography to visualize protein-drug complexes and mutant structures.
Main Results:
- Antibiotic binding to DrNimA is predominantly hydrophobic and entropy-driven.
- Each DrNimA dimer possesses two antibiotic binding sites, unaffected by His71 mutation.
- Association constants ranged from 5.1 to 4910(4) M⁻¹, with low enthalpy release.
- Mutation of His71 resulted in colorless proteins and abolished cofactor binding.
Conclusions:
- DrNimA exhibits significant binding affinity for 5-Ni drugs, driven by hydrophobic interactions and entropy.
- The His71 residue is critical for cofactor binding and the protein's native color.
- These findings provide a biophysical basis for understanding 5-Ni drug interactions and potential resistance mechanisms.
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