Synthesis and Preliminary Evaluation of the Antimicrobial Activity of Selected 3-Benzofurancarboxylic Acid Derivatives
Abstract
:1. Introduction
2. Results and Discussion
2.1. Chemistry
2.2. NMR spectra
2.3. X-Ray structure analysis
O1-C2 | 1.354(2) |
O1-C8 | 1.371(2) |
C5-O15 | 1.346(2) |
C5-C6 | 1.429(3) |
C6-C16 | 1.463(3) |
C2-O1-C8 | 107.1(1) |
C3-C11-O13 | 110.4(2) |
C6-C16-O17 | 123.3(2) |
C9-C3-C2-C10 | -178.5(2) |
C3-C9-C4-Cl1 | -0.1(3) |
C7-C6-C5-O15 | -177.3(2) |
C6-C16-C18-Cl2 | 81.9(2) |
C6-C16-C18-Cl3 | -157.7(2) |
D-H···A | D-H | H···A | D···A | <( D-H···A) |
O15-H15···O17 | 0.82 | 1.86 | 2.580(2) | 146 |
C10-H10A···O15i | 0.96 | 2.82 | 3.758(3) | 165 |
C14-H14A···O17ii | 0.96 | 2.66 | 3.470(3) | 142 |
O12···Cl1 | 3.018(2) | |||
O1···Cl1i | 2.995(1) | |||
C2···O12iii | 3.122(3) | |||
Cl3···O15iii | 3.457(2) | |||
C16···O15iii | 3.238(3) |
2.4. Antimicrobial activity
Growth inhibition zones in mm (MIC values) | |||||
---|---|---|---|---|---|
Compound strain | III | IV | VI | Ciprofloxacin | Fluconazole |
S. aureus NCTC 4163 | 12 (200) | 12 (50) | 12 (100) | 26 (0.5) | nt |
S. aureus ATCC 25923 | 12 (200) | 13 (50) | 12 (200) | 26 (0.5) | nt |
S. aureus ATCC 6538 | 12 (200) | 14 (50) | 12 (100) | 28 (0.5) | nt |
S. aureus ATCC 29213 | 12 (200) | 13 (50) | 12 (100) | 22 (0.5) | nt |
S. epidermidis ATCC 12228 | 12 (100) | 14 (50) | 13 (100) | 30 (0.5) | nt |
B. subtilis ATCC 6633 | 12 (100) | 13 (50) | 13 (100) | 40 (<0.125) | nt |
B. cereus ATCC 11778 | 12 (100) | 15 (50) | 12 (100) | 20 (1) | nt |
E. hirae ATCC 10541 | - (> 400) | - (200) | - (400) | - (4) | nt |
M. luteus ATCC 9341 | 12 (400) | 15 (100) | 12 (200) | 22 (2) | nt |
M. luteus ATCC 10240 | 12 (100) | 15 (50) | 12 (100) | 24 (1) | nt |
E. coli ATCC 10538 | na | na | na | 34 (<0.125) | nt |
E. coli ATCC 25922 | na | na | na | 35 (<0.125) | nt |
E. coli NCTC 8196 | na | na | na | 35 (<0.125) | nt |
P. vulgaris NCTC 4635 | na | na | na | 36 (<0.125) | nt |
P. aeruginosa ATCC 15442 | na | na | na | 25 (0.5) | nt |
P. aeruginosa NCTC 6749 | na | na | na | 26 (0.5) | nt |
P. aeruginosa ATCC 27853 | na | na | na | 23 (1) | nt |
B. bronchiseptica ATCC 4617 | na | na | na | 31 (1) | nt |
C. albicans ATCC 10231 | 12 (100) | na | 13 (100) | nt | 22 (1) |
C. albicans ATCC 90028 | 12 (100) | na | 12 (100) | nt | 32 (1) |
C. parapsilosis ATCC 22019 | 13 (100) | na | 14 (100) | nt | 22 (2) |
3. Experimental
3.1. General
3.2 General procedure for synthesis of bromo derivatives of esters I and II
3.3. General procedure for synthesis of chloro derivatives of esters I and II
3.4. Crystallography
Compound | VI |
Empirical formula | C13H9O5Cl3 |
Formula weight | 351.55 |
T (K) | 293(2) |
Wavelength (Å) | 0.71073 |
Crystal system, space group | monoclinic, P 21/c |
Unit cell dimensions | |
a (Å) | 13.0544(3) |
b (Å) | 15.7053(3) |
c (Å) | 7.0108(2) |
β (o) | 104.897(3) |
Volume (Å3) | 1389.07(6) |
Z, Dx(Mg/m3) | 4, 1.681 |
μ (mm-1) | 0.677 |
F(000) | 712 |
θ range for data collection (o) | 2.07 – 25.00 |
hkl range | -15 ≤ h ( 15 |
-18 ( k ( 18 | |
-8 ( l ( 8 | |
Reflections: | |
collected | 13369 |
unique (Rint) | 2409(0.019) |
observed (I > 2((I)) | 2003 |
Data / restraints / parameters | 2409 / 0 / 191 |
Absorption correction | multi-scan |
Goodness-of-fit on F2 | 1.055 |
R(F) (I > 2σ(I)) | 0.0293 |
wR(F2) (all data) | 0.0895 |
Max/min. Δρ (e/ Å 3) | 0.315 / -0.237 |
3.5. Microbiology
4. Conclusions
- Sample Availability: Samples of the compounds are available from the authors.
References
- Kodama, I.; Kamiya, K.; Toyama, J. Amiodarone: Ionic and cellular mechanisms of action of the most promising class III agent. Am. J. Cardiol. 1999, 84, 20R–28R. [Google Scholar]
- Cui, B.; Chai, H.; Reutrakul, V.; Farnsworth, N.R.; Cordell, G.A.; Pezzutto, J.M.; Kinghorn, A.D. Novel cytotoxic 1H-cyclopenta[b]-benzofuran lingnans from Aglaia elliptica. Tetrahedron 1997, 53, 17625–17632. [Google Scholar] [CrossRef]
- Lee, S.K.; Cui, B.; Mehta, R.R.; Kinghorn, A.D.; Pezzutto, J.M. Cytostatic mechanism and antitumor potential of novel 1H-cyclopenta[b]benzofuran lignans isolated from Aglaia elliptica. Chem. Biol. Interact. 1998, 115, 215–228. [Google Scholar] [CrossRef]
- Hwang, B.Y.; Su, B.N.; Chai, H.; Mi, Q.; Kardono, L.B.; Afriastini, J.J.; Riswan, S.; Santarsiero, B.D.; Mesecar, A.D.; Wild, R.; Fairchild, C.R.; Vite, G.D.; Rose, W.C.; Farnsworth, N.R.; Cordell, G.A.; Pezzutto, J.M.; Swanson, S.M.; Kinghorn, A.D. Silvestrol and episilvestrol, potential anticancer rocaglate derivatives from Aglaia silvestris. J. Org. Chem. 2004, 69, 3350–3358. [Google Scholar]
- Hattori, M.; Hada, S.; Watahiki, A.; Ihara, H.; Shu, Y.Z.; Kakiuchi, N.; Mizuno, T.; Namba, T. Studies on dental caries prevention by traditional medicines. X. Antibacterial action of phenolic components from mace against Streptococcus mutans. Chem. Pharm. Bull. (Tokyo) 1986, 34, 3885–3893. [Google Scholar] [CrossRef]
- Erber, S.; Ringshandl, R.; von Angerer, E. 2-Phenylbenzo[b]furans: relationship between structure, estrogen receptor affinity and cytostatic activity against mammary tumor cells. Anticancer Drug Des. 1991, 6, 417–426. [Google Scholar]
- Hayakawa, I.; Shioya, R.; Agatsuma, T.; Furukawa, H.; Naruto, S.; Sugano, Y. 4-Hydroxy-3-methyl-6-phenylbenzofuran-2-carboxylic acid ethyl ester derivatives as potent anti-tumor agents. Bioorg. Med. Chem. Lett. 2004, 14, 455–458. [Google Scholar]
- Courchesne, W.E. Characterization of novel, broad-based fungicidal activity for antiarrhythmic drug amiodarone. J. Pharmacol. Exp. Ther. 2002, 300, 195–199. [Google Scholar] [CrossRef]
- Courchesne, W.E.; Ozturk, S. Amiodarone induces a caffeine-inhibited, MID1-dependent rise in free cytoplasmic calcium in Saccharomyces cerevisiae. Mol. Microbiol. 2003, 47, 223–234. [Google Scholar] [CrossRef]
- Nattel, S.; Singh, B.N. Evolution, mechanisms, and classifications of antiarrhythmic drugs: Focus on class III actions. Am. J. Cardiol. 1999, 84, 11R–19R. [Google Scholar] [CrossRef]
- Gill, J.; Heel, R.C.; Fitton, A. Amiodarone. An overview of its pharmacological properties, and review of its therapeutic use in cardiac arrhythmias. Drugs 1992, 43, 69–110. [Google Scholar] [CrossRef]
- Pizzichini, M.; Aleo, M.F.; Marcolongo, R.; Marinello, E. The mechanism of benziodarone activity. Quad Sclavo Diagn 1982, 18, 203–208. [Google Scholar]
- Heel, R.C.; Brogden, R.N.; Speight, T.M.; Avery, G.S. Benzbromarone: A review of its pharmacological properties and therapeutic use in gout and hyperuricaemia. Drugs 1977, 14, 349–366. [Google Scholar]
- Masbernard, A.; Giudicelli, C.P. ‘Ten years' experience with benzbromarone in the management of gout and hyperuricaemia. S. Afr. Med. J. 1981, 59, 701–706. [Google Scholar]
- Repolles, M.J.; Pubill, C.F.; Cabeza, L.L.; Carbo, B.M.; Cerda, R.J.A.; Negrie, R.C. Benzofuran, dihydrobenzofuran, dihydrobenzopyran and benzopyran derivatives as antidepressant agents. Spanish Patent ES2131020 A1, 1999.
- Graves, A.P.; Brenk, R.; Shoichet, B.K. Decoys for docking. J. Med. Chem. 2005, 48, 3714–3728. [Google Scholar] [CrossRef]
- Matsuda, S.; Ishii, M.; Kitajiri, N.; Yahara, I.; Harada, H.; Yonetani, Y. Antihypertensive property of a novel uricosuric diuretic, S-8666, in rats. Drug Dev. Res. 1989, 17, 207–217. [Google Scholar] [CrossRef]
- Zawadowski, T.; Kossakowski, J.; Rechowicz, P. Synthesis of 2-methyl-5-hydroxy-6-acetylbenzofuran-3-carboxylic acid and its derivatives. Roczniki ChemiiAnn. Soc. Chim. Polonorum. 1977, 51, 159–162. [Google Scholar]
- Kossakowski, J.; Ostrowska, K.; Hejchman, E.; Wolska, I. Synthesis and structural characterization of derivatives of 2- and 3-benzo[b]furan carboxylic acids with potential cytotoxic activity. Il Farmaco 2005, 60, 519–527. [Google Scholar] [CrossRef]
- Kossakowski, J.; Ostrowska, K. Synthesis of new derivatives of 2,3-dihydro-7-benzo[b]furanol with potential pharmacological activity. Acta Pol. Pharm. 2006, 63, 271–275. [Google Scholar]
- Kossakowski, J.; Ostrowska, K.; Struga, M.; Stefańska, J. Synthesis of new derivatives of 2,2-dimethyl-2,3-dihydro-7-benzo[b]furanol with potential antimicrobial activity. Med. Chem. Res. 2009, 18, 555–565. [Google Scholar] [CrossRef]
- Courchesne, W.E.; Hejchman, E.; Maciejewska, D.; Kossakowski, J.; Ostrowska, K. Antifungal compounds. US Pat. Appl. 20090270496 (A1), 29 October 2009. [Google Scholar]
- Macrae, C.F.; Edgington, P.R.; McCabe, P.; Pidcock, E.; Shields, G.P.; Taylor, R.; Towler, M.; van de Streek, J. Mercury: Visualization and analysis of crystal structures. J. Appl. Cryst. 2006, 39, 453–457. [Google Scholar] [CrossRef]
- Bachechi, F.; Coiro, V.M.; Delfini, M.; Settimj, G. Structure of 2-acetyl-3-aminobenzofuran. Acta Cryst. 1988, C44, 1449–1451. [Google Scholar]
- Gould, R.O.; Guest, M.F.; Joswig, J.O.; Palmer, M.H.; Parsons, S. Ethyl 3-Hydroxybenzo(b)furan-2-carboxylate. Acta Cryst. 1998, C54, 1951–1954. [Google Scholar]
- Thiruvalluvar, A.; Silvarani, S.; Vadivelu, A.; Sithik, Ali K.; Venkataraman, V.R. 2-Acetylbenzo[b]furan. Acta Cryst. 2003, E59, o395. [Google Scholar]
- CrysAlisCCD, CCD data collection GUI, version 1.171.32.5; Oxford Diffraction Poland, 2007
- CrysAlisRED, CCD data reduction GUI, version 1.171.32.5; Oxford Diffraction Poland, 2007
- Sheldrick, G.M. Phase annealing in SXELXL90: Direct methods for larger structures. Acta Crystallogr. 1990, A46, 467–473. [Google Scholar]
- Sheldrick G.M. SHELXL97, Program for the Refinement of Crystal Structures; University of Göttingen: Göttingen, Germany, 1997. [Google Scholar]
- Clinical and Laboratory Standards Institute, Performance Standards for Antimicrobial Disc Susceptibility Tests; Approved Standard M2-A9; Clinical and Laboratory Standards Institute: Wayne, PA, USA, 2006.
- Clinical and Laboratory Standards Institute, Methods for Dilution Antimicrobial Susceptibility Tests for Bacteria That Grow Aerobically; Approved Standard M7-A7; Clinical and Laboratory Standards Institute: Wayne, PA, USA, 2006.
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Kossakowski, J.; Krawiecka, M.; Kuran, B.; Stefańska, J.; Wolska, I. Synthesis and Preliminary Evaluation of the Antimicrobial Activity of Selected 3-Benzofurancarboxylic Acid Derivatives. Molecules 2010, 15, 4737-4749. https://doi.org/10.3390/molecules15074737
Kossakowski J, Krawiecka M, Kuran B, Stefańska J, Wolska I. Synthesis and Preliminary Evaluation of the Antimicrobial Activity of Selected 3-Benzofurancarboxylic Acid Derivatives. Molecules. 2010; 15(7):4737-4749. https://doi.org/10.3390/molecules15074737
Chicago/Turabian StyleKossakowski, Jerzy, Mariola Krawiecka, Bożena Kuran, Joanna Stefańska, and Irena Wolska. 2010. "Synthesis and Preliminary Evaluation of the Antimicrobial Activity of Selected 3-Benzofurancarboxylic Acid Derivatives" Molecules 15, no. 7: 4737-4749. https://doi.org/10.3390/molecules15074737