Synthesis, physicochemical characterization and antibacterial activity of novel (benzoylamino)methyl derivatives of quinolones

Publikation: Beitrag in FachzeitschriftArtikelForschungPeer-Review

Autoren

  • P. Breznica-Selmani
  • K. Mladenovska
  • G. Dräger
  • B. Mikhova
  • N. Panovski
  • A. Kaftandzieva
  • Z. Kavrakovski
  • A. Hoxha
  • N. Sheqerxhiu
  • M. J. Pavlova
  • E. Popovski

Organisationseinheiten

Externe Organisationen

  • Ss. Cyril and Methodius University
  • Universität Prishtina Hasan Prishtina
  • Macedonian Academy of Sciences and Arts
  • Bulgarian Academy of Sciences (BAS)
  • Trepharm
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Details

OriginalspracheEnglisch
Seiten (von - bis)179-197
Seitenumfang19
FachzeitschriftMacedonian Journal of Chemistry and Chemical Engineering
Jahrgang35
Ausgabenummer2
PublikationsstatusVeröffentlicht - 2016

Abstract

Herein we report the synthesis of different derivatives of (fluoro)quinolones norfloxacin, ciprofloxacin and pipemidic acid, by incorporating (benzoylamino)methyl on the free nitrogen of the pyperazinyl moiety. The compounds were structurally characterized by 1D and 2D NMR, FTIR and high-resolution mass spectroscopy. In addition, their physicochemical properties were a matter of interest to be correlated with their structure and antimicrobial activity in vitro. Their antimicrobial activities were screened against Gram-positive, Gram-negative bacteria and C. albicans. Higher distribution coefficients and consequently lower water solubility were determined for all synthesized compounds than the ones of the corresponding leading compounds. Inconsequential correlations between the lipophilicity of the compounds and MIC were observed, suggesting that passive diffusion is not the only mechanism for their penetration into bacterial cells. Further studies are needed to determine how substitutions in the (fluoro)quinolone moiety affect the primary target(s), substrate behavior in respect to bacterial transporters and overall bioavailability.

ASJC Scopus Sachgebiete

Zitieren

Synthesis, physicochemical characterization and antibacterial activity of novel (benzoylamino)methyl derivatives of quinolones. / Breznica-Selmani, P.; Mladenovska, K.; Dräger, G. et al.
in: Macedonian Journal of Chemistry and Chemical Engineering, Jahrgang 35, Nr. 2, 2016, S. 179-197.

Publikation: Beitrag in FachzeitschriftArtikelForschungPeer-Review

Breznica-Selmani, P, Mladenovska, K, Dräger, G, Mikhova, B, Panovski, N, Kaftandzieva, A, Kavrakovski, Z, Hoxha, A, Sheqerxhiu, N, Pavlova, MJ & Popovski, E 2016, 'Synthesis, physicochemical characterization and antibacterial activity of novel (benzoylamino)methyl derivatives of quinolones', Macedonian Journal of Chemistry and Chemical Engineering, Jg. 35, Nr. 2, S. 179-197. https://doi.org/10.20450/mjcce.2016.919
Breznica-Selmani, P., Mladenovska, K., Dräger, G., Mikhova, B., Panovski, N., Kaftandzieva, A., Kavrakovski, Z., Hoxha, A., Sheqerxhiu, N., Pavlova, M. J., & Popovski, E. (2016). Synthesis, physicochemical characterization and antibacterial activity of novel (benzoylamino)methyl derivatives of quinolones. Macedonian Journal of Chemistry and Chemical Engineering, 35(2), 179-197. https://doi.org/10.20450/mjcce.2016.919
Breznica-Selmani P, Mladenovska K, Dräger G, Mikhova B, Panovski N, Kaftandzieva A et al. Synthesis, physicochemical characterization and antibacterial activity of novel (benzoylamino)methyl derivatives of quinolones. Macedonian Journal of Chemistry and Chemical Engineering. 2016;35(2):179-197. doi: 10.20450/mjcce.2016.919
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abstract = "Herein we report the synthesis of different derivatives of (fluoro)quinolones norfloxacin, ciprofloxacin and pipemidic acid, by incorporating (benzoylamino)methyl on the free nitrogen of the pyperazinyl moiety. The compounds were structurally characterized by 1D and 2D NMR, FTIR and high-resolution mass spectroscopy. In addition, their physicochemical properties were a matter of interest to be correlated with their structure and antimicrobial activity in vitro. Their antimicrobial activities were screened against Gram-positive, Gram-negative bacteria and C. albicans. Higher distribution coefficients and consequently lower water solubility were determined for all synthesized compounds than the ones of the corresponding leading compounds. Inconsequential correlations between the lipophilicity of the compounds and MIC were observed, suggesting that passive diffusion is not the only mechanism for their penetration into bacterial cells. Further studies are needed to determine how substitutions in the (fluoro)quinolone moiety affect the primary target(s), substrate behavior in respect to bacterial transporters and overall bioavailability.",
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AU - Breznica-Selmani, P.

AU - Mladenovska, K.

AU - Dräger, G.

AU - Mikhova, B.

AU - Panovski, N.

AU - Kaftandzieva, A.

AU - Kavrakovski, Z.

AU - Hoxha, A.

AU - Sheqerxhiu, N.

AU - Pavlova, M. J.

AU - Popovski, E.

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PY - 2016

Y1 - 2016

N2 - Herein we report the synthesis of different derivatives of (fluoro)quinolones norfloxacin, ciprofloxacin and pipemidic acid, by incorporating (benzoylamino)methyl on the free nitrogen of the pyperazinyl moiety. The compounds were structurally characterized by 1D and 2D NMR, FTIR and high-resolution mass spectroscopy. In addition, their physicochemical properties were a matter of interest to be correlated with their structure and antimicrobial activity in vitro. Their antimicrobial activities were screened against Gram-positive, Gram-negative bacteria and C. albicans. Higher distribution coefficients and consequently lower water solubility were determined for all synthesized compounds than the ones of the corresponding leading compounds. Inconsequential correlations between the lipophilicity of the compounds and MIC were observed, suggesting that passive diffusion is not the only mechanism for their penetration into bacterial cells. Further studies are needed to determine how substitutions in the (fluoro)quinolone moiety affect the primary target(s), substrate behavior in respect to bacterial transporters and overall bioavailability.

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JO - Macedonian Journal of Chemistry and Chemical Engineering

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