| Literature DB >> 24523750 |
Shima Hajmohamad Ebrahim Ketabforoosh1, Mohsen Amini2, Mohsen Vosooghi1, Abbas Shafiee1, Ebrahim Azizi3, Farzad Kobarfard1.
Abstract
Caffeic acid phenethyl ester (CAPE) suppresses the growth of transformed cells such as human breast cancer cells, hepatocarcinoma , myeloid leukemia, colorectal cancer cells, fibrosarcoma, glioma and melanoma. A group of heterocyclic esters of caffeic acid was synthesized using Mitsunobu reaction and the esters were subjected to further structural modification by electrooxidation of the catechol ring of caffeic acid esters in the presence of sodium benzenesulfinate and sodium toluensulfinate as nucleophiles. Both heterocyclic esters of caffeic acid and their arylsulfonyl derivatives were evaluated for their cytotoxic activity against HeLa, SK-OV-3, and HT-29 cancer cell lines. HeLa cells showed the highest sensitivity to the compounds and heterocyclic esters with no substituent on catechol ring showed better activity compared to their substituted counterparts. QSAR studies reemphasized the importance of molecular shape of the compounds for their cytotoxic activity.Entities:
Keywords: Caffeic acid; Cytotoxic activity; Electrooxidation; Mitsunobu
Year: 2013 PMID: 24523750 PMCID: PMC3920708
Source DB: PubMed Journal: Iran J Pharm Res ISSN: 1726-6882 Impact factor: 1.696
Figure 1Structure of Caffeic acid phenethyl ester
Figure 2Oxidation of catechol ring
Figure 3Synthesis of caffeic acid esters (2-6) using Mitsunobu reaction
Figure 4Electroxidation of CA esters (1-6) and reaction with sodium benzenesulfinate or sodium toluene-4-sulfinate
Figure 5Comparative cyclic voltammograms of 0.25 mM compound 2 without (a), with (b) 0.25 mM sodium toluene-4-sulfinate and 0.25 mM sodium toluene-4-sulfinate (c) at a glassy-carbon electrode (S = π mm2) in aqueous solution (H2O:AN, 80:20), containing acetate buffer (pH =7, c = 0.2 M). Scan rate: 50 mV/s
The yields and mp for Mitsunobu reaction of caffeic acid with alcohols 2a-e
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| b | 10% | 138.5-140 |
| c | 25% | 167-169 |
| d | 15% | 70-72 |
| e | 18% | 154-157 |
| f | 20% | 200-203 |
Cytotoxic activity (IC50, μm) of compounds 1-6, 1b-6b and 1c-6c
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Correlation coefficient (R2) matrix for some of descriptors used for HeLa
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| ASP | 1 | 0.234 |
| GATS3e | 1 |
Correlation coefficient (R2) matrix for some of descriptors used for Ht-29
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|---|---|---|
| GATS1e | 1 | 0.248 |
| GATS3v | 1 |
Figure 7Plots of cross-validated predicted values of activity by MLR against the experimental values for different cell lines: (A) HeLa and (B) HT-29
Data of the selected descriptors used in this study and predicted values of pIC50 (HeLa).
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|---|---|---|---|
| 1 | 0.600 | 1.802 | 4.056 |
| 1b | 0.239 | 1.784 | 3.904 |
| 1c | 0.238 | 1.788 | 3.904 |
| 2 | 0.628 | 1.971 | 4.090 |
| 2b | 0.274 | 1.891 | 3.932 |
| 2c | 0.308 | 1.902 | 3.947 |
| 3 | 0.662 | 1.817 | 4.084 |
| 3b | 0.224 | 1.791 | 3.898 |
| 3c | 0.279 | 1.805 | 3.923 |
| 4 | 0.659 | 1.799 | 4.080 |
| 4b | 0.227 | 1.779 | 3.898 |
| 4c | 0.282 | 1.793 | 3.923 |
| 5 | 0.559 | 1.996 | 4.064 |
| 5b | 0.260 | 1.912 | 3.929 |
| 5c | 0.258 | 1.922 | 3.929 |
| 6 | 0.657 | 1.823 | 4.082 |
| 6b | 0.247 | 1.794 | 3.908 |
| 6c | 0.297 | 1.808 | 3.931 |
Data of the selected descriptors used in this study and predicted values of pIC50 (HT-29)
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| 1 | 1.746 | 2.221 | 4.521 |
| 1b | 1.381 | 2.244 | 4.376 |
| 1c | 1.390 | 2.146 | 4.387 |
| 2 | 1.773 | 2.274 | 4.528 |
| 2b | 1.400 | 2.283 | 4.380 |
| 2c | 1.412 | 2.180 | 4.393 |
| 3 | 1.803 | 2.446 | 4.525 |
| 3b | 1.427 | 2.394 | 4.382 |
| 3c | 1.441 | 2.293 | 4.396 |
| 4 | 1.803 | 2.506 | 4.521 |
| 4b | 1.427 | 2.431 | 4.379 |
| 4c | 1.441 | 2.332 | 4.392 |
| 5 | 1.780 | 2.099 | 4.545 |
| 5b | 1.416 | 2.169 | 4.396 |
| 5c | 1.427 | 2.060 | 4.409 |
| 6 | 1.803 | 2.255 | 4.541 |
| 6b | 1.427 | 2.276 | 4.391 |
| 6c | 1.441 | 2.166 | 4.406 |