| Literature DB >> 23884130 |
Jiri Kos1, Iveta Zadrazilova, Matus Pesko, Stanislava Keltosova, Jan Tengler, Tomas Gonec, Pavel Bobal, Tereza Kauerova, Michal Oravec, Peter Kollar, Alois Cizek, Katarina Kralova, Josef Jampilek.
Abstract
In this study, a series of twenty-two ring-substituted 3-hydroxy-N-phenylnaphthalene-2-carboxanilides were prepared and characterized. The compounds were tested for their activity related to inhibition of photosynthetic electron transport (PET) in spinach (Spinacia oleracea L.) chloroplasts. Primary in vitro screening of the synthesized compounds was also performed against four Staphylococcus strains and against two mycobacterial species. 3-Hydroxy-N-(2-methoxyphenyl)naphthalene-2-carboxamide showed high biological activity (MIC = 55.0 µmol/L) against S. aureus as well as methicillin-resistant strains. N-(2-Fluorophenyl)-3-hydroxynaphthalene-2-carboxamide showed higher activity (MIC = 28.4 µmol/L) against M. marinum than the standard isoniazid and 3-hydroxy-N-(4-nitrophenyl)naphthalene-2-carboxamide expressed higher activity (MIC = 13.0 µmol/L) against M. kansasii than the standard isoniazid. Cytotoxicity assay of effective antimicrobial compounds was performed using the human monocytic leukemia THP-1 cell line. The PET-inhibiting activity expressed by IC50 value of the most active compound 3-hydroxy-N-(3-nitrophenyl)naphthalene-2-carboxamide was 16.9 μmol/L. The structure-activity relationships of all compounds are discussed.Entities:
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Year: 2013 PMID: 23884130 PMCID: PMC6270455 DOI: 10.3390/molecules18077977
Source DB: PubMed Journal: Molecules ISSN: 1420-3049 Impact factor: 4.411
Scheme 1Synthesis of ring-substituted 3-hydroxynaphthalene-2-carboxanilides 1–8c.
Structure of ring-substituted 3-hydroxynaphthalene-2-carboxanilides 1–8c, experimentally determined values of lipophilicity log k, calculated values of log P and electronic Hammett’s σ parameters, IC50 [μmol/L] values related to PET inhibition in spinach chloroplasts in comparison with 3-(3,4-dichlorophenyl)-1,1-dimethylurea (DCMU) standard, in vitro anti-Staphylococcus activities [MIC (μmol/L)] in comparison with standards ampicillin (APC), in vitro antimycobacterial activity [MIC (μmol/L)] of compounds 1–8c compared to isoniazid (INH) standard and in vitro cytotoxicity assay (LD50) of selected compounds.
| Comp. | R | log
| log
| σ | [μmol/L] | |||||||
|---|---|---|---|---|---|---|---|---|---|---|---|---|
| PET IC50 | MIC | LD50 | ||||||||||
| SA | MRSA 63718 | MRSA 630 | MRSA 3202 | MM | MK | |||||||
| H | 0.6310 | 4.52 | 0 | >972 | >972 | >972 | >972 | 122 | 972 | – | ||
| 2-OCH3 | 0.6916 | 4.61 | −0.28 | 59.5 | 873 | 218 | >30 | |||||
| 3-OCH3 | 0.6971 | 4.56 | 0.12 | 53.4 | >873 | >873 | >873 | >873 | >873 | >30 | ||
| 4-OCH3 | 0.5951 | 4.37 | −0.27 | >873 | >873 | >873 | >873 | >873 | 873 | – | ||
| 2-CH3 | 0.6936 | 4.85 | −0.17 | >923 | >923 | >923 | 462 | 462 | 115 | – | ||
| 3-CH3 | 0.8831 | 4.85 | −0.07 | >923 | >923 | >923 | 462 | 923 | >30 | |||
| 4-CH3 | 0.8753 | 4.85 | −0.17 | >923 | >923 | 462 | 231 | >923 | 923 | – | ||
| 2-F | 0.7303 | 4.56 | 0.06 | >910 | >910 | 455 | 228 | >30 | ||||
| 3-F | 0.8296 | 4.69 | 0.34 | >910 | >910 | 455 | 228 | 114 | 114 | – | ||
| 4-F | 0.7317 | 4.70 | 0.06 | >910 | >910 | 455 | 228 | 910 | 114 | – | ||
| 2-Cl | 0.9509 | 5.02 | 0.22 | >860 | >860 | >860 | 215 | 860 | 860 | – | ||
| 3-Cl | 1.0796 | 5.25 | 0.37 | >860 | >860 | 430 | 215 | >860 | 860 | – | ||
| 4-Cl | 1.0687 | 5.24 | 0.23 | >860 | >860 | >860 | >860 | >860 | 430 | – | ||
| 2-Br | 0.9715 | 5.06 | 0.22 | 43.2 | >748 | >748 | >748 | >748 | >748 | 748 | – | |
| 3-Br | 1.1536 | 5.39 | 0.39 | >748 | >748 | >748 | 187 | >748 | 748 | – | ||
| 4-Br | 1.1459 | 5.28 | 0.23 | >748 | >748 | >748 | 187 | >748 | 374 | – | ||
| 2-CF3 | 0.8762 | 5.42 | 0.51 | 105.2 | >773 | >773 | >773 | 193 | 193 | 28.6 ± 0.5 | ||
| 3-CF3 | 1.2053 | 5.49 | 0.43 | >748 | >748 | 374 | 187 | >748 | 748 | – | ||
| 4-CF3 | 1.2835 | 5.33 | 0.51 | >748 | >748 | 374 | 187 | >748 | 187 | – | ||
| 2-NO2 | 0.8710 | 4.51 | 0.77 | 106.6 | >830 | >830 | 415 | 415 | 830 | 830 | – | |
| 3-NO2 | 0.8143 | 4.64 | 0.71 | >830 | >830 | >830 | >830 | >830 | 415 | 2.5 ± 0.9 | ||
| 4-NO2 | 0.9175 | 4.65 | 0.78 | 187.5 | >830 | >830 | >830 | >830 | >830 | <0.37 | ||
| – | – | – | 1.9 | – | – | – | – | – | – | – | ||
| – | – | – | 5.7 | >45.8 | >45.8 | >45.8 | – | – | – | |||
| – | – | – | – | 467 | 29.2 | – | ||||||
calculated using sw. ACD/Percepta ver. 2012; precipitation during experiment; SA = Staphylococcus aureus ATCC 29213; MRSA = clinical isolates of methicillin-resistant S. aureus 63718, SA 630 and SA 3202 (National Institute of Public Health, Prague, Czech Republic); MM = Mycobacterium marinum CAMP 5644, MK = M. kansasii DSM 44162.
Figure 1Comparison of experimentally found log k values with calculated log P of ortho-substituted (A) and meta- and para-substituted derivatives (B).
Figure 2Relationships between PET inhibition log (1/IC50) [mol/L] in spinach chloroplasts and lipophilicity expressed as log k (A) or N-substituent electronic Hammett's σ parameters (B) of selected studied compounds.
Figure 3Fluorescence emission spectra of chlorophyll a in untreated spinach chloroplasts in presence of compound 7a: 0, 0.195, 0.390, 0.780, 1.170 and 1.560 mmol/L (curves from top to bottom; λex = 436 nm) (A) and dependence of fluorescence intensity of chlorophyll a on concentration of compounds 2b (triangles) and 7a (circles) (B).