4.5 Article

Exploring the permeation of fluoroquinolone metalloantibiotics across outer membrane porins by combining molecular dynamics simulations and a porin-mimetic in vitro model

Journal

BIOCHIMICA ET BIOPHYSICA ACTA-BIOMEMBRANES
Volume 1864, Issue 3, Pages -

Publisher

ELSEVIER
DOI: 10.1016/j.bbamem.2021.183838

Keywords

Ternary copper complexes of fluoroquinolones; Bacterial resistance; Antimicrobial drug uptake; Umbrella sampling; X-ray crystallography; Biophysics

Funding

  1. Associate Laboratory for Green Chemistry Unit -LAQV - FCT/MCTES -Portuguese Foundation for Science and Technology [UID/QUI/50,006/2019, UIDB/50006/2020]
  2. Medical Biochemistry and Biophysics Doctoral Programme (M2B-PhD) [PD/BD/114178/2016]
  3. FCT [PD/BD/114178/2016, CEECIND/01374/2018]
  4. Friends of HZI association
  5. Fundação para a Ciência e a Tecnologia [PD/BD/114178/2016] Funding Source: FCT

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The misuse and overuse of fluoroquinolones in recent years have led to alarming levels of antibiotic resistance. The development of ternary copper complexes with fluoroquinolones is a potential strategy to overcome resistant bacteria. However, the permeation of metalloantibiotics through OmpF, a common porin in Gram-negative bacteria, is less favorable than free fluoroquinolones. Permeability studies confirmed the lower rate of permeation for metalloantibiotics compared to free antibiotics, suggesting a porin-independent mechanism for their influx into bacterial cells.
The misuse and overuse of fluoroquinolones in recent years have triggered alarming levels of resistance to these antibiotics. Porin channels are crucial for the permeation of fluoroquinolones across the outer membrane of Gram-negative bacteria and modifications in porin expression are an important mechanism of bacterial resistance. One possible strategy to overcome this problem is the development of ternary copper complexes with fluoroquinolones. Compared to fluoroquinolones, these metalloantibiotics present a larger partition to the lipid bilayer and a more favorable permeation, by passive diffusion, across bacteriomimetic phospholipid-based model membranes. To rule out the porin-dependent pathway for the metalloantibiotics, we explored the permeation through OmpF (one of the most abundant porins present in the outer membrane of Gram-negative bacteria) using a multi-component approach. X-ray studies of OmpF porin crystals soaked with a ciprofloxacin ternary copper complex did not show a well-defined binding site for the compound. Molecular dynamics simulations showed that the translocation of the metalloantibiotic through this porin is less favorable than that of free fluoroquinolone, as it presented a much larger free energy barrier to cross the narrow constriction region of the pore. Lastly, permeability studies of different fluoroquinolones and their respective copper complexes using a porinmimetic in vitro model corroborated the lower rate of permeation for the metalloantibiotics relative to the free antibiotics. Our results support a porin-independent mechanism for the influx of the metalloantibiotics into the bacterial cell. This finding brings additional support to the potential application of these metalloantibiotics in the fight against resistant infections and as an alternative to fluoroquinolones.

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