Antimicrobial and biological effects of ipemphos and amphos on bacterial and yeast strains

A I Oztürk1, O Yilmaz, S Kirbağ

  • 1University of Harran, Faculty of Science, Chemistry Department, S. Urfa, Turkey.

Insights

Monophosphazenes like SM ipemphos and amphos show antimicrobial effects on bacteria and yeast. These compounds, along with antioxidants, also impact yeast cell lipid levels in vitro.

Area of Science:

  • Microbiology
  • Biochemistry

Background:

  • Monophosphazenes are a class of compounds with potential biological activities.
  • Understanding their antimicrobial and cellular effects is crucial for developing new therapeutic agents.

Purpose of the Study:

  • To investigate the antimicrobial properties of SM ipemphos and amphos against bacterial and yeast strains.
  • To evaluate the impact of these monophosphazenes on the lipid levels of Saccharomyces cerevisiae and Candida albicans.
  • To compare the effects of monophosphazenes with antioxidants (vitamin E, melatonin, fish oil) on yeast lipid metabolism.

Main Methods:

  • Antimicrobial susceptibility testing of bacterial and yeast strains against varying concentrations of SM ipemphos and amphos.
  • In vitro assessment of the effects of monophosphazenes and antioxidants on the lipid content of S. cerevisiae and C. albicans.
  • Statistical analysis of inhibition zones and lipid level changes.

Main Results:

  • SM demonstrated antimicrobial activity against bacterial and yeast strains at concentrations between 100-1500 µg, with increased inhibition zones at higher doses.
  • Ipemphos showed no antimicrobial effect in the 100-600 µg range, while amphos lacked antimicrobial activity against bacteria (100-300 µg) and yeast at tested concentrations.
  • Monophosphazenes influenced yeast cell growth in vitro. Both ipemphos and amphos decreased lipid levels in S. cerevisiae and C. albicans, with amphos showing the most significant reduction.
  • Antioxidants like vitamin E, melatonin, and fish oil also affected yeast lipid levels, with varying effects on S. cerevisiae and C. albicans.

Conclusions:

  • High concentrations of ipemphos and amphos exhibit antimicrobial effects, though amphos was ineffective against yeast.
  • Monophosphazenes promoted cell growth in vitro and reduced lipid levels in both C. albicans and S. cerevisiae.
  • Antioxidants significantly altered yeast lipid profiles, highlighting their complex interactions with cellular metabolism.

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