| Literature DB >> 29099074 |
María J Ortega1, Juan J Pantoja2, Carolina de Los Reyes3, Eva Zubía4.
Abstract
The chemical study of the bryozoan Schizomavella mamillata has led to the isolation of six new 5-alkylresorcinol derivatives, schizols A-F (1-6), whose structures were established by spectrocospic means. Schizol A (1) exhibits a (E)-6-phenylnon-5-enyl moiety linked to the C-5 of a resorcinol ring, while in schizol B (2) the substituent at C-5 contains an unusual 1,2-dihydrocyclobutabenzene moiety. Schizols C (3) and D (4) have been characterized as the 1-sulfate derivatives of 1 and 2, respectively, and schizols E (5) and F (6) are the corresponding 1,3-disulfates. Schizol A (1) has been synthetized from 3,5-dimethoxybenzaldehyde through a sequence involving a Wittig reaction for the construction of the C-1',C-2' bond and a Julia-Kocienski olefination for the synthesis of the C-5',C-6' double bond. In the ABTS (2,2'-azinobis(3-ethylbenzothiazoline-6-sulphonic acid)) antioxidant assay, the natural compounds schizol A (1) and schizol B (2) showed higher radical scavenging activity than the Trolox standard.Entities:
Keywords: 1,2-dihydrocyclobutabenzene; Schizomavella; alkylresorcinols; antioxidant; bryozoans; olefination
Mesh:
Substances:
Year: 2017 PMID: 29099074 PMCID: PMC5706034 DOI: 10.3390/md15110344
Source DB: PubMed Journal: Mar Drugs ISSN: 1660-3397 Impact factor: 5.118
Figure 1Chemical structures of schizols A–F (1–6).
1H and 13C NMR data of schizol A (1) and schizol B (2) a,b.
| Position | 1 | 2 | ||
|---|---|---|---|---|
| δC, Type | δH, m ( | δC, Type | δH, m ( | |
| 1 | 159.3, C | 159.3, C | ||
| 2 | 101.0, CH | 6.07, t (2.2) | 101.0, CH | 6.08, t (2.2) |
| 3 | 159.3, C | 159.3, C | ||
| 4 | 107.9, CH | 6.13, d (2.1) | 108.0, CH | 6.14, d (2.2) |
| 5 | 146.2, C | 146.2, C | ||
| 6 | 107.9, CH | 6.13, d (2.1) | 108.0, CH | 6.14, d (2.2) |
| 1′ | 36.9, CH2 | 2.48, t (7.6) | 36.9, CH2 | 2.45, t (7.5) |
| 2′ | 32.1, CH2 | 1.64, m | 32.5, CH2 | 1.64, m |
| 3′ | 30.6, CH2 | 1.49, tt (7.7, 7.4) | 29.1, CH2 | 1.52, m |
| 4′ | 29.4, CH2 | 2.21, dt (7.4, 7.4) | 35.1, CH2 | 1.69, m |
| 5′ | 129.9, CH | 5.61, t (7.3) | 51.43, CH | 2.94, td (7.4, 2.1) |
| 6′ | 141.6, C | 51.37, CH | 2.95, td (7.4, 2.1) | |
| 7′ | 32.6, CH2 | 2.48, t (7.5) | 37.6, CH2 | 1.64, m |
| 8′ | 22.8, CH2 | 1.32, tq (7.5, 7.5) | 22.8, CH2 | 1.48, m |
| 9′ | 14.2, CH3 | 0.86, t (7.4) | 14.6, CH3 | 0.97, t (7.4) |
| 1′′ | 144.8, C | 148.99 c, C | ||
| 2′′ | 127.4, CH | 7.29, dd (8.2, 1.4) | 149.05 c, C | |
| 3′′ | 129.2, CH | 7.25, dd (8.0, 7.4) | 123.13 d, CH | 6.99, m |
| 4′′ | 127.5, CH | 7.17, tt (7.2, 1.5) | 127.9, CH | 7.11, m |
| 5′′ | 129.2, CH | 7.25, dd (8.0, 7.4) | 127.9, CH | 7.11, m |
| 6′′ | 127.4, CH | 7.29, dd (8.2, 1.4) | 123.07 d, CH | 7.02, m |
a 1H at 600 MHz, 13C at 150 MHz; b Assignments aided by COSY, HSQC, HMBC, and NOESY experiments; c,d Assignments marked with the same letter in the same column may be interchanged.
Figure 2Key COSY (bold bond) and HMBC (→) correlations observed for schizol A (1).
Figure 3Key COSY (bold bond) and HMBC (→) correlations observed for schizol B (2).
1H and 13C NMR data of schizol C (3) and schizol D (4) a,b.
| Position | 3 | 4 | ||
|---|---|---|---|---|
| δC, Type | δH, m ( | δC, Type | δH, m ( | |
| 1 | 154.7, C | 154.6, C | ||
| 2 | 107.1, CH | 6.60, dd (2.2, 2.2) | 107.1, CH | 6.60, dd (2.4, 2.0) |
| 3 | 159.0, C | 159.0, C | ||
| 4 | 112.9, CH2 | 6.45, br dd (1.8, 1.5) | 113.0, CH2 | 6.45, br dd (1.6, 1.6) |
| 5 | 145.8, C | 145.9, C | ||
| 6 | 113.6, CH | 6.64, br dd (1.8, 1.5) | 113.6, CH | 6.63, br dd (1.6, 1.6) |
| 1′ | 36.8, CH2 | 2.55, t (7.7) | 36.9, CH2 | 2.54, (t, 7.5) |
| 2′ | 32.1, CH2 | 1.66, m | 32.5, CH2 | 1.66, m |
| 3′ | 30.6, CH2 | 1.48, tt (7.7, 7.3) | 29.2, CH2 | 1.52, m |
| 4′ | 29.4, CH2 | 2.22, dt (7.3, 7.3) | 35.1, CH2 | 1.69, m |
| 5′ | 129.9, CH | 5.61, t (7.3) | 51.44, CH | 2.94, td (7.7, 2.0) |
| 6′ | 141.6, C | 51.37, CH | 2.95, td (7.7, 2.0) | |
| 7′ | 32.6, CH2 | 2.49, t (7.5) | 37.6, CH2 | 1.64, m |
| 8′ | 22.8, CH2 | 1.33, tq (7.7, 7.3) | 22.8, CH2 | 1.49, m |
| 9′ | 14.2, CH3 | 0.86, t (7.3) | 14.6, CH3 | 0.97, t (7.5) |
| 1′′ | 144.7, C | 149.01 c, C | ||
| 2′′ | 127.4, CH | 7.29, dd (8.1, 1.3) | 149.06 c, C | |
| 3′′ | 129.2, CH | 7.26, dd (8.1, 7.3) | 123.18 d, CH | 7.01, m |
| 4′′ | 127.4, CH | 7.16, tt (7.3, 1.3) | 127.95 e, CH | 7.10, m |
| 5′′ | 129.2, CH | 7.26, dd (8.1, 7.3) | 127.92 e, CH | 7.10, m |
| 6′′ | 127.4, CH | 7.29, dd (8.1, 1.3) | 123.07 d, CH | 7.01, m |
a 1H at 600 MHz, 13C at 150 MHz; b Assignments aided by COSY, HSQC, HMBC, and NOESY experiments; c–e Assignments marked with the same letter in the same column may be interchanged.
1H and 13C NMR data of schizol E (5) and schizol F (6) a,b.
| Position | 5 | 6 | ||
|---|---|---|---|---|
| δC, Type | δH, m ( | δC, Type | δH, m ( | |
| 1 | 154.2, C | 154.0, C | ||
| 2 | 113.3, CH | 7.04, m | 113.5, CH | 7.11, m |
| 3 | 154.2, C | 154.0, C | ||
| 4 | 118.8, CH | 7.04, m | 119.1, CH2 | 7.01, br s |
| 5 | 145.6, C | 145.8, C | ||
| 6 | 118.8, CH | 7.04, m | 119.1, CH | 7.01, br s |
| 1′ | 36.8, CH2 | 2.64, t (7.7) | 36.8, CH2 | 2.64, t (7.7) |
| 2′ | 32.1, CH2 | 1.70, m | 32.5, CH2 | 1.69, m |
| 3′ | 30.7, CH2 | 1.51, m | 29.3, CH2 | 1.54, m |
| 4′ | 29.4, CH2 | 2.24, dt (7.5, 7.3) | 35.1, CH2 | 1.71, m |
| 5′ | 129.9, CH | 5.62, t (7.3) | 51.44, CH | 2.95, br t (7.3) |
| 6′ | 141.6, C | 51.37, CH | 2.97, br t (7.3) | |
| 7′ | 32.6, CH2 | 2.50, t (7.7) | 37.6, CH2 | 1.65, m |
| 8′ | 22.8, CH2 | 1.32, m | 22.8, CH2 | 1.50, m |
| 9′ | 14.2, CH3 | 0.86, t (7.4) | 14.6, CH3 | 0.98, t (7.4) |
| 1′′ | 144.8, C | 149.0 c, C | ||
| 2′′ | 127.5, CH | 7.30, dd (8.1, 1.2) | 149.1 c, C | |
| 3′′ | 129.1, CH | 7.25, dd (8.1, 7.5) | 123.2 d, CH | 7.02, m |
| 4′′ | 127.4, CH | 7.16, m | 128.0 e, CH | 7.11, m |
| 5′′ | 129.1, CH | 7.25, dd (8.1, 7.5) | 127.9 e, CH | 7.11, m |
| 6′′ | 127.5, CH | 7.30, dd (8.1, 1.2) | 123.1 d, CH | 7.02, m |
a 1H at 600 MHz, 13C at 150 MHz; b Assignments aided by COSY, HSQC, HMBC, and NOESY experiments; c–e Assignments marked with the same letter in the same column may be interchanged.
Scheme 1Retrosynthetic analysis of schizol A (1).
Scheme 2Reagents and conditions: (a) LiHMDS, THF, 7, −78 °C, 2 h, 60%; (b) H2, Pd/C, AcOEt, 15 h, 96%; (c) PPh3, DEAD, HSPT, 0 °C, THF, 24 h, quant.; (d) (NH4)6Mo7·4H2O/H2O2, 30%, EtOH, 0 °C, 20 h, 97%; (e) LiHMDS, THF/HMPA (9:1), butyrophenone, −78 °C to rt, 24 h, 32%; (f) EtSNa, DMF, ∆, 24 h, 75%.
Scheme 3Reagents and conditions: (a) PPh3, CBr4, CH2Cl2, 0 °C to rt, 2 h, 84%; (b) PPh3/∆, overnight, 99%; (c) LiHMDS, THF, butyrophenone, −78 °C to rt, 2 h, 28%.
Antioxidant activities of compounds 1–4 in the ABTS assay a.
| Compound | Trolox | 1 | 2 | 3 | 4 |
|---|---|---|---|---|---|
| EC50 (μM ± SD, | 10.43 ± 0.06 | 6.24 ± 0.03 | 7.66 ± 0.24 | 30.25 ± 0.10 | 22.59 ± 0.53 |
a ABTS: 2,2′-azinobis(3-ethylbenzothiazoline-6-sulphonic acid).