| Literature DB >> 29401704 |
Monika Kalinowska1, Ewelina Bajko2, Marzena Matejczyk3, Piotr Kaczyński4, Bożena Łozowicka5, Włodzimierz Lewandowski6.
Abstract
Lithium, sodium, potassium, rubidium and caesium salts of 5-O-caffeoylquinic acid (chlorogenic acid, 5-CQA) were synthesized and described by FT-IR (infrared spectroscopy), FT-Raman (Raman spectroscopy), UV (UV absorption spectroscopy), ¹H (400.15 MHz), 13C (100.63 MHz) NMR (nuclear magnetic resonance spectroscopy). The quantum-chemical calculations at the B3LYP/6-311++G** level were done in order to obtain the optimal structures, IR spectra, NBO (natural bond orbital) atomic charges, HOMO (highest occupied molecular orbital) and LUMO (lowest unoccupied molecular orbital) orbitals and chemical reactivity parameters for 5-CQA and Li, Na and K 5-CQAs (chlorogenates). The DPPH (α, α-diphenyl-β-picrylhydrazyl) and FRAP (ferric reducing antioxidant power) assays were used for the preliminary estimation of the antioxidant properties of alkali metal chlorogenates and chlorogenic acid. In the DPPH assay the EC50 parameter were equal to 7.39 μM for 5-CQA and was in the range of 4.50-5.89 μM for salts. The FRAP values for two different concentrations (5 and 2.5 μM) of the studied compounds were respectively 114.22 and 72.53 μM Fe2+ for 5-CQA, whereas for salts they were 106.92-141.13 and 78.93-132.00 μM Fe2+. The 5-CQA and its alkali metal salts possess higher antioxidant properties than commonly applied antioxidants (BHA, BHT, l-ascorbic acid). The pro-oxidant action of these compounds on trolox oxidation was studied in the range of their concentration 0.05-0.35 μM. The lipophilicity (logkw) of chlorogenates and chlorogenic acid was determined by RP-HPLC (reverse phase-high performance liquid chromatography) using five different columns (C8, PHE (phenyl), CN (cyano), C18, IAM (immobilized artificial membrane)). The compounds were screened for their in vitro antibacterial activity against E. coli, Bacillus sp., Staphylococcus sp., Streptococcus pyogenes and antifungal activity against Candida sp. The 5-CQA possessed lower antibacterial (minimal inhibitory concentration, MIC = 7.06 mM) and antifungal (MIC = 14.11 mM) properties than its alkali metal salts (MIC values: 6.46-2.63 mM and 12.91-5.27mM, respectively). The synthesized chlorogenates possessed better antioxidant, lipophilic, antimicrobial as well as lower pro-oxidant properties than the ligand alone. Moreover, a systematic change of the activity of alkali metal salts along the series Li→Cs suggests that there are correlations between the studied biological properties. The type of metal cation in the carboxylate group of chlorogenate is crucial for the activity of studied compounds.Entities:
Keywords: antimicrobial; antioxidant; caffeoylquinic acid; chlorogenic acid; lipophilicity; spectroscopy
Mesh:
Substances:
Year: 2018 PMID: 29401704 PMCID: PMC5855685 DOI: 10.3390/ijms19020463
Source DB: PubMed Journal: Int J Mol Sci ISSN: 1422-0067 Impact factor: 5.923
The wavenumbers and intensities of the bands from the experimental and theoretical (in B3LYP/6-311++G** level) FT-IR (infrared) spectra of alkali metal chlorogenates and chlorogenic acid [2]; the symbols denote: ν—stretching, δ—deforming in plane and oop—out of plane bending vibrations; s—strong, m—medium, w—weak, v—very, sh—shoulders.
| Li 5-CQA | Na 5-CQA | K 5-CQA | Rb 5-CQA | Cs 5-CQA | 5-CQA | Assignments | ||||||||||||
|---|---|---|---|---|---|---|---|---|---|---|---|---|---|---|---|---|---|---|
| IR Calc. | Int. Calc. | IR Exp. | Int. Exp. | IR Calc. | Int. Calc. | Ir Exp. | Int. Exp. | IR Calc. | Int. Calc. | IR Exp. | Int. Exp. | IR Exp. | Int. Exp. | IR Exp. | Int. Exp. | IR Exp. | Int. Exp. | |
| 1725 | s | ν(C=O)COOH | ||||||||||||||||
| 1761 | 209.4 | 1687 | S | 1761 | 209.8 | 1694 | s | 1761 | 207.1 | 1692 | s | 1690 | s | 1685 | s | 1687 | vs | ν(C=O)ester group |
| 1679 | 204.9 | 1637 | Sh | 1680 | 197.7 | 1636 | s | 1681 | 194.9 | 1634 | sh | 1628 | sh | 1626 | sh | 1640 | s | ν(C=C) + ν(CC)ar |
| 1641 | 354.6 | 1642 | 327.5 | 1642 | 310.9 | 1602 | m | ν(CC)ar + ν(C=C) | ||||||||||
| 1633 | 55.7 | 1633 | 55.6 | 1633 | 55.8 | 1613 | m | ν(CC)ar | ||||||||||
| 1581 | 333.4 | 1603 | vs | 1602 | 360.2 | 1598 | vs | 1613 | 326.4 | 1599 | vs | 1596 | vs | 1598 | vs | - | νas(COO−) | |
| 1559 | 134.3 | 1518 | m | 1558 | 134.3 | 1528 | m | 1558 | 135.2 | 1522 | w | 1522 | m | 1522 | w | 1530 | m | ν(CC)ar |
| 1462 | 81.9 | 1446 | m | 1460 | 84.8 | 1450 | w | 1465 | 79.8 | 1447 | w | 1447 | m | 1447 | w | 1443 | m | δ(C3-H3) + δ(O2-H8) |
| 1443 | 237.1 | 1385 | sh | 1423 | 132.3 | 1390 | sh | 1421 | 116.4 | 1395 | m | 1395 | m | 1395 | m | - | νs(COO−) | |
| 1415 | 4.7 | 1378 | m | 1414 | 8.0 | 1384 | m | 1412 | 28.9 | 1375 | m | 1375 | m | 1375 | m | 1382 | w | δ(C-H)quin + δ(O1-H1)quin |
| 1304 | 142.8 | 1273 | vs | 1303 | 296.4 | 1281 | vs | 1303 | 326.9 | 1268 | vs | 1266 | vs | 1268 | vs | 1289 | vs | ν(C4’-O2’) + δ(C-H)ar |
| 1208 | 80.5 | 1184 | s | 1207 | 93.5 | 1178 | s | 1207 | 105.5 | 1181 | m | 1181 | m | 1118 | m | 1190 | m | ν(C1’-C7’) + δ(C-H)ar + ν(C3’-O1’) + δ(O2’-H4’) |
| 1144 | 667.7 | 1119 | m | 1143 | 618.7 | 1119 | m | 1145 | 600.1 | 1119 | m | 1119 | m | 1120 | m | 1114 | s | (C8’-H8’) + δ(O3-H9) + δ(C-H)quin + δ(O1-H1)quin |
| 1101 | 44.3 | 1083 | w | 1099 | 48.2 | 1081 | m | 1101 | 51.5 | 1083 | w | 1083 | w | 1083 | w | 1086 | m | ν(C5-C6) + ν(C4-O3) |
| 1055 | 16.5 | 1059 | vw | 1054 | 12.0 | 1059 | w | 1055 | 12.6 | 1055 | vw | 1057 | sh | ν(C3-C3) + ν(C5-O4’) + δ(C-H)quin | ||||
| 1035 | 79.2 | 1041 | w | 1030 | 131.9 | 1037 | w | 1029 | 133.5 | 1037 | w | 1038 | w | 1037 | w | 1038 | sh | ν(C5-O4’) + δ(C-H)quin |
| 1019 | 28.5 | 1018 | 29.4 | 997 | vw | 1020 | 29.6 | 1000 | w | oop(C7’-H7’) + oop(C8’-H8’) | ||||||||
| 973 | 48.3 | 976 | w | 972 | 49 | 969 | w | 973 | 50.6 | 974 | w | 976 | w | 976 | w | 977 | m | ν(C1-O1) + δ(C-H)quin + δ(C-H)ar |
| 893 | 5.6 | 853 | w | 890 | 4.9 | 854 | w | 894 | 6.5 | 851 | vw | 851 | vw | 853 | w | 854 | w | oop(C8’-H8’) + oop(C7’-H7’) + oop(C2’-H2’) |
| 819 | 18.4 | 812 | w | 812 | 14.9 | 808 | w | 827 | 1.5 | 810 | w | 812 | w | 813 | w | 819 | s | δ(C-H)quin + δ(COO−) |
| 790 | 24.3 | 769 | w | 790 | 23.6 | 772 | vw | 790 | 22.4 | 783 | w | 769 | vw | 768 | vw | δ(C4’-C3’) | ||
| 764 | 13.8 | 613 | w | 766 | 14.2 | 615 | w | 766 | 15.4 | oop(COO−) | ||||||||
| 672 | 199.4 | 668 | vw | 670 | 4.1 | 668 | wv | 672 | 4.8 | 668 | vw | 668 | vw | 668 | vw | 670 | vw | δ(C-C)quin |
| 631 | 174.8 | 623 | 63.6 | 603 | vw | 623 | 63.9 | 603 | vw | 605 | vw | 606 | vw | 603 | m | δ(C-C)quin + oop(O5-H7) | ||
| 580 | 18.0 | 571 | w | 581 | 14.8 | 565 | vw | 581 | 13.0 | 569 | vw | 571 | vw | 569 | vw | 564 | w | δ(C-C)ar |
The chemical shifts from of 1H and 13C NMR (nuclear magnetic resonance) spectra of chlorogenic acid (5-CQA, 5-O-caffeoylquinic acid) and alkali metal chlorogenates (5-CQAs), δ [ppm].
| Proton No. | 5-CQA [ | 5-CQAs | Carbon No. | 5-CQA | 5-CQAs | ||||||||
|---|---|---|---|---|---|---|---|---|---|---|---|---|---|
| Li | Na | K | Rb | Cs | Li | Na | K | Rb | Cs | ||||
| H2eq | 1.80 | 1.68 | 1.73 | 1.72 | 1.61 | 1.60 | C1 | 73.6 | 75.8 | 75.2 | 75.2 | 75.2 | 75.2 |
| H2ax | 2.03 | 1.99 | 1.99 | 1.98 | 1.98 | 1.97 | C2 | 37.3 | 39.5 | 39.5 | 39.5 | 39.5 | 39.5 |
| H3 | 3.94 | 3.92 | 3.91 | 3.90 | 3.88 | 3.88 | C3 | 68.2 | 71.4 | 71.4 | 71.5 | 71.6 | 71.6 |
| H4 | 3.58 | 3.48 | 3.49 | 3.48 | 3.47 | 3.48 | C4 | 70.5 | 71.5 | 71.6 | 71.6 | 71.7 | 71.6 |
| H5 | 5.08 | 5.17 | 5.17 | 5.17 | 5.16 | 5.16 | C5 | 71.0 | 73.2 | 73.3 | 73.4 | 73.5 | 73.5 |
| H6eq | 1.96 | 1.81 | 1.81 | 1.81 | 1.90 | 1.81 | C6 | 36.4 | 38.0 | 38.1 | 38.2 | 38.2 | 38.2 |
| H6ax | 2.01 | 1.85 | 1.87 | 1.87 | 1.94 | 1.94 | C7 | 175.0 | 176.5 | 176.7 | 176.5 | 176.2 | 176.0 |
| H7 | 12.41 | C1′ | 125.7 | 125.4 | 125.5 | 125.4 | 124.4 | 124.5 | |||||
| H2′ | 7.04 | 7.06 | 7.07 | 7.08 | 7.01 | 7.02 | C2′ | 114.9 | 114.5 | 114.7 | 114.7 | 114.0 | 114.1 |
| H3′ | 9.13 | C3′ | 145.6 | 145.8 | 145.8 | 145.9 | 146.3 | 146.2 | |||||
| H4′ | 9.56 | C4′ | 148.4 | 148.8 | 148.5 | 148.8 | 150.2 | 150.0 | |||||
| H5′ | 6.77 | 6.75 | 6.75 | 6.72 | 6.69 | 6.70 | C5′ | 115.9 | 115.9 | 115.8 | 115.9 | 115.6 | 115.6 |
| H6′ | 6.98 | 6.97 | 6.97 | 6.96 | 6.93 | 6.93 | C6′ | 121.5 | 121.2 | 121.2 | 121.2 | 121.5 | 121.4 |
| H7′ | 7.43 | 7.46 | 7.44 | 7.44 | 7.44 | 7.44 | C7′ | 145.0 | 144.7 | 144.6 | 144.7 | 144.9 | 144.9 |
| H8′ | 6.16 | 6.22 | 6.22 | 6.22 | 6.21 | 6.22 | C8′ | 114.4 | 114.5 | 114.6 | 114.5 | 113.7 | 114.1 |
Figure 1The calculated in B3LYP/6-311++G** level structure of chlorogenic acid with atom numbering.
MIC (minimal inhibitory concentration) values (mM) of tested compounds against selected microorganisms.
| Compounds | |||||
|---|---|---|---|---|---|
| 5-CQA | 7.06 (2.5 mg/mL) | ˃7.06 (2.5 mg/mL) | ˃7.06 (2.5 mg/mL) | ˃7.06 (2.5 mg/mL) | ˃14.11 (5 mg/mL) |
| Li 5-CQA | 6.46 | ˃6.46 | ˃6.46 | ˃6.46 | ˃12.91 |
| Na 5-CQA | 6.20 | ˃6.20 | ˃6.20 | ˃6.20 | ˃12.40 |
| K 5-CQA | 5.96 | 5.96 | 2.98 | ˃5.96 | 5.96 |
| Rb 5-CQA | 2.63 | 5.27 | 5.27 | 2.63 | 5.27 |
| Cs 5-CQA | 4.79 | ˃4.79 | ˃4.79 | ˃4.79 | ˃9.58 |
| Kanamycin (positive control) | 0.21 | 0.21 | 0.21 | 0.21 | 0.41 |
| Ampicillin (positive control) | 0.43 | 0.57 | 0.57 | 0.57 | 0.57 |
Antioxidant properties of the chlorogenic acid, chlorogenates, trolox, l-ascorbic acid and BHT expressed as the ability to scavenge 50% of the free radical DPPH· (α, α-diphenyl-β-picrylhydrazyl) (EC50) and FRAP (ferric reducing antioxidant power) values (at concentrations 5 and 2.5 μM).
| Compound | DPPH | FRAP Values | |
|---|---|---|---|
| EC50 [µM] | Ccompound [µM] | C Fe2+ [µM] | |
| 5-CQA | 7.39 ± 0.71 | 5 | 114.22 ± 8.09 |
| Li 5-CQA | 5.28 ± 0.375 | 5 | 106.92 ± 1.28 |
| Na 5-CQA | 4.50 ± 0.36 | 5 | 141.13 ± 5.78 |
| K 5-CQA | 5.32 ± 0.49 | 5 | 132.00 ± 6.07 |
| Rb 5-CQA | 5.40 ± 0.68 | 5 | 123.16 ± 9.56 |
| Cs 5-CQA | 5.89 ± 1.57 | 5 | 117. 00 ± 6.22 |
| Trolox | 8.25 ± 0.75 | 5 | 70.85 ± 3.57 |
| 10.87 ± 0.53 | 5 | 81.70 ± 4.23 | |
| BHT | 52.80 ± 2.83 | 5 | 69.66 ± 5.54 |
Figure 2DPPH (α, α-diphenyl-β-picrylhydrazyl) radical scavenging activity (%) of chlorogenic acid, chlorogenates, trolox and ascorbic acid.
Figure 3The effect of different concentrations (0.05–0.35 μM) of chlorogenic acid and its alkali metal salts on the oxidation of trolox.
Figure 4Comparison of the effect of the studied compounds at the concentration range 0.05–0.35 μM on the oxidation of trolox.
Figure 5Comparison of the effect of the studied compounds at the concentration 0.25 and 0.35 μM on the oxidation rate of trolox.
Lipophilicity parameters determined by chromatographic methods (the logarithm of the retention factor, logk) and octanol/water partition coefficients logP obtained for chlorogenic acid and chlorogenates.
| Compound | log | logP | |||||
|---|---|---|---|---|---|---|---|
| C18 | C8 | CN | IAM | PHE | |||
| 5-CQA | 3.88 | 1.11 | 2.09 | 0.74 | 1.45 | Exp. | 0.6 [ |
| Calc. | −0.45 [ | ||||||
| Li 5-CQA | 1.84 | 0.21 | 0.84 | 1.24 | 1.23 | ||
| Na 5-CQA | 2.24 | 1.11 | 1.35 | 1.84 | 1.43 | ||
| K 5-CQA | 2.36 | 1.24 | 1.84 | 1.91 | 1.84 | ||
| Rb 5-CQA | 3.21 | 1.84 | 2.23 | 2.84 | 2.24 | ||
| Cs 5-CQA | 3.74 | 2.13 | 2.64 | 3.84 | 2.64 | ||
Calculated (in B3LYP/6-311++G** level) electronic parameters for 5-CQA and Li, Na and K 5-CQA.
| Parameters | 5-CQA | Li 5-CQA | Na 5-CQA | K 5-CQA | ||||
|---|---|---|---|---|---|---|---|---|
| Gas | MeOH | Gas | MeOH | Gas | MeOH | Gas | MeOH | |
| LUMO (hartree) | −0.2036 | −0.0812 | −0.0743 | −0.0799 | −0.0719 | −0.0797 | −0.0687 | −0.0796 |
| HOMO (hartree) | −0.3021 | −0.2269 | −0.2248 | −0.2264 | −0.2222 | −0.2263 | −0.2206 | −0.2262 |
| LUMO (eV) | −5.5389 | −2.2093 | −2.0226 | −2.1747 | −1.9554 | −2.1685 | −1.8697 | −2.1647 |
| HOMO (eV) | −8.2208 | −6.1743 | −6.1158 | −6.1607 | −6.0450 | −6.1579 | −6.0037 | −6.1555 |
| Energy gap (eV) | 2.6820 | 3.9650 | 4.0931 | 3.9859 | 4.0896 | 3.9895 | 4.1340 | 3.9908 |
| Ionisation potential (eV) | 8.2208 | 6.1743 | 6.1158 | 6.1607 | 6.0450 | 6.1579 | 6.0037 | 6.1555 |
| Electron affinity (eV) | 5.5389 | 2.2093 | 2.0226 | 2.1747 | 1.9554 | 2.1685 | 1.8697 | 2.1647 |
| Electronegativity (eV) | 6.8799 | 4.1918 | 4.0692 | 4.1677 | 4.0002 | 4.1632 | 3.9367 | 4.1601 |
| Electronic chemical potential (eV) | −6.8799 | −4.1918 | −4.0692 | −4.1677 | −4.0002 | −4.1632 | −3.9367 | −4.1601 |
| Chemical hardness (eV) | 1.3410 | 1.9825 | 2.0466 | 1.9930 | 2.0448 | 1.9947 | 2.0670 | 1.9954 |
| Chemical softness (eV) | 0.3729 | 0.2522 | 0.2443 | 0.2509 | 0.2445 | 0.2507 | 0.2419 | 0.2506 |
| Electrophilicity index (eV) | 17.6485 | 4.4316 | 4.0454 | 4.3578 | 3.9128 | 4.3445 | 3.7488 | 4.3365 |
| Total energy (a.u.) | −1297.950 | −1297.985 | −1304.95 | −1305.029 | −1459.7200 | −1459.795 | −1897.370 | −1897.433 |
| Dipole moment (Debay) | 6.1992 | 8.6622 | 9.0114 | 13.4233 | 11.7279 | 15.4030 | 14.0710 | 17.1000 |
Figure 6The HOMO (highest occupied molecular orbital) and LUMO (lowest unoccupied molecular orbital) orbitals calculated in gas phase 5-CQA and Li 5-CQA.