| Literature DB >> 28468259 |
Zhuang Han1,2, Yong-Xin Li3, Ling-Li Liu4, Liang Lu5, Xian-Rong Guo6, Xi-Xiang Zhang7, Xiao-Yong Zhang8, Shu-Hua Qi9, Ying Xu10,11, Pei-Yuan Qian10.
Abstract
Eleven new depsides-thielavins W-Z (1-4) and thielavins Z₁-Z₇ (5-11)-and also four known thielavins-A, H, J, and K (12-15)-were isolated from the ethyl acetate extract of a marine-derived fungal strain Thielavia sp UST030930-004. All of these compounds were evaluated for antifouling activity against cyprids of the barnacle Balanus (=Amphibalanus) amphitrite. The results showed that compounds 1-3 and 6-13 were active, with EC50 values ranging from 2.95 ± 0.59 to 69.19 ± 9.51 μM, respectively. The inhibitive effect of compounds 1-3 and 7 was reversible. This is the first description of the antifouling activity of thielavins against barnacle cyprids.Entities:
Keywords: Balanus (=Amphibalanus) amphitrite; Marine-derived fungus; Thielavia sp.; antifouling; thielavins
Mesh:
Substances:
Year: 2017 PMID: 28468259 PMCID: PMC5450534 DOI: 10.3390/md15050128
Source DB: PubMed Journal: Mar Drugs ISSN: 1660-3397 Impact factor: 5.118
Figure 1Structures of compounds 1–15.
The 1H (500 MHz) and 13C-NMR (125 MHz) NMR data for compounds 1–4 (δ in ppm, DMSO-d6).
| Position | 1 | 2 | 3 | 4 | ||||
|---|---|---|---|---|---|---|---|---|
| 1 | 138.7 | 139.0 | 142.1 | 138.7 | ||||
| 2 | 165.4 | 164.8 | 161.2 | 165.1 | ||||
| 3 | 114.2 | 114.3 | 6.36 d 2.0 | 107.0 | 114.4 | |||
| 4 | 149.5 | 150.8 | 151.5 | 149.8 | ||||
| 5 | 6.18 s | 110.3 | 6.21 s | 111.2 | 6.29 d 2.0 | 111.3 | 6.41 s | 111.3 |
| 6 | 114.7 | 115.5 | 117.5 | 115.3 | ||||
| 1′ | 131.8 | 132.2 | 132.4 | 135.5 | ||||
| 2′ | 150.7 | 153.2 | 153.2 | 154.5 | ||||
| 3′ | 116.5 | 121.8 | 121.6 | 7.01 s | 104.2 | |||
| 4′ | 149.1 | 149.5 | 148.9 | 149.9 | ||||
| 5′ | 120.8 | 125.8 | 125.6 | 121.2 | ||||
| 6′ | 121.6 | 126.2 | 126.4 | 121.7 | ||||
| 1″ | 141.0 | 141.0 | 139.5 | 139.3 | ||||
| 2″ | 161.4 | 161.4 | 162.7 | 162.2 | ||||
| 3″ | 6.26 s | 100.6 | 6.27 s | 100.6 | 108.7 | 114.4 | ||
| 4″ | 160.8 | 160.6 | 160.6 | 160.9 | ||||
| 5″ | 6.26 s | 110.3 | 6.27 s | 110.2 | 6.44 s | 111.3 | 6.14 s | 111.3 |
| 6″ | 107.6 | 107.2 | 102.8 | 103.5 | ||||
| 1-C=O | 172.0 * | 172.5 * | 170.7 * | 171.9 * | ||||
| 2-OMe | ||||||||
| 3-Me | 1.99 s | 9.4 | 1.99 s | 9.0 | 1.98 s | 8.1 | ||
| 5-Me | ||||||||
| 6-Me | 2.52 s | 23.1 | 2.40 s | 23.0 | 2.56 s | 24.1 | 2.55 s | 23.8 |
| 1′-C=O | 167.1 * | 166.9 * | 169.3 * | 169.7 * | ||||
| 2′-OMe | 3.78 s | 62.0 | 3.79 s | 62.0 | 3.82 s | 56.3 | ||
| 3′-Me | 2.06 s | 10.2 | 2.13 s | 10.0 | 2.08 s | 9.9 | ||
| 5′-Me | 2.06 s | 12.5 | 2.12 s | 12.7 | 2.06 s | 12.6 | 2.03 s | 12.0 |
| 6′-Me | 2.29 s | 16.7 | 2.31 s | 16.6 | 2.29 s | 16.5 | 2.32 s | 16.8 |
| 1″-C=O | 166.7 * | 165.9 * | 165.9 * | 165.7 * | ||||
| 3″-Me | 1.99 s | 8.1 | 1.96 s | 9.1 | ||||
| 5″-Me | ||||||||
| 6″-Me | 2.40 s | 21.8 | 2.54 s | 21.8 | 2.55 s | 21.8 | 2.52 s | 23.1 |
NMR assignments marked by an asterisk (*) are interchangeable.
Figure 2(a) Key HMBC and NOESY correlations; (b) ESIMS in-source fragmentation of compound 1; (c) Key HMBC and NOESY correlations; (d) ESIMS in-source fragmentation of compound 11.
The 1H (500 MHz) and 13C-NMR (125 MHz) NMR data for compounds 5–8 (δ in ppm, DMSO-d6).
| Position | 5 | 6 | 7 | 8 | ||||
|---|---|---|---|---|---|---|---|---|
| 1 | 139.1 | 139.1 | 138.9 | 138.9 | ||||
| 2 | 156.2 | 156.7 | 162.0 | 165.2 | ||||
| 3 | 115.4 | 115.4 | 116.5 | 114.2 | ||||
| 4 | 151.0 | 150.7 | 151.7 | 149.5 | ||||
| 5 | 6.40 s | 113.2 | 118.6 | 6.64 s | 115.8 | 6.16 s | 109.8 | |
| 6 | 114.1 | 120.4 | 112.1 | 115.8 | ||||
| 1′ | 134.3 | 134.8 | 132.0 | 134.0 | ||||
| 2′ | 156.2 | 156.2 | 150.7 | 156.1 | ||||
| 3′ | 122.0 | 122.2 | 116.5 | 122.0 | ||||
| 4′ | 150.6 | 149.3 | 148.8 | 150.8 | ||||
| 5′ | 7.10 s | 120.1 | 7.12 s | 120.4 | 120.7 | 7.00 s | 119.9 | |
| 6′ | 125.7 | 125.4 | 121.7 | 126.0 | ||||
| 1″ | 139.1 | 139.1 | 139.5 | 140.4 | ||||
| 2″ | 162.0 | 162.0 | 162.7 | 160.0 | ||||
| 3″ | 108.6 | 108.6 | 108.6 | 6.25 d 2.0 | 100.7 | |||
| 4″ | 160.9 | 160.9 | 161.0 | 161.1 | ||||
| 5″ | 6.40 s | 111.1 | 6.41 s | 111.0 | 6.42 s | 111.2 | 6.24 d 2.0 | 109.9 |
| 6″ | 103.6 | 103.7 | 102.8 | 108.3 | ||||
| 1-C=O | 172.7 * | 171.5 * | 173.0 * | 171.7 * | ||||
| 2-OMe | ||||||||
| 3-Me | 2.03 s | 9.1 | 2.08 s | 9.9 | ||||
| 5-Me | 2.10 s | 12.6 | 2.10 s | 9.2 | 1.97 s | 9.3 | ||
| 6-Me | 2.52 s | 23.6 | 2.40 s | 17.4 | ||||
| 1′-C=O | 169.4 * | 169.4 * | 2.50 s | 22.9 | 2.53 s | 23.1 | ||
| 2′-OMe | 3.82 s | 61.9 | 3.79 s | 61.9 | 169.5 * | 167 * | ||
| 3′-Me | 2.11 s | 9.6 | 2.13 s | 9.6 | 3.81 s | 62.0 | ||
| 5′-Me | 2.02 s | 10.1 | 2.14 s | 9.6 | ||||
| 6′-Me | 2.4 s | 18.7 | 2.40 s | 19.2 | 2.01 s | 12.4 | ||
| 1″-C=O | 165.1 * | 165.0 * | 2.30 s | 16.7 | 2.39 s | 18.6 | ||
| 3″-Me | 1.98 s | 8.1 | 1.98 s | 8.1 | 166.4 * | 165.4 * | ||
| 5″-Me | 1.98 s | 8.0 | ||||||
| 6″-Me | 2.52 s | 23.0 | 2.53 s | 23.6 | ||||
NMR assignments marked by an asterisk (*) are interchangeable.
The 1H (500 MHz) and 13C-NMR (125 MHz) NMR data for compounds 9–11 (δ in ppm, DMSO-d6).
| Position | 9 | 10 | 11 | |||
|---|---|---|---|---|---|---|
| 1 | 136.8 | 138.3 | 132.1 | |||
| 2 | 161.3 | 160.0 | 150.7 | |||
| 3 | 113.3 | 116.5 | 116.0 | |||
| 4 | 148.6 | 151.8 | 148.5 | |||
| 5 | 115.5 | 120.6 | 120.1 | |||
| 6 | 117.5 | 115.7 | 121.4 | |||
| 1′ | 134.5 | 134.1 | 139.4 | |||
| 2′ | 156.6 | 155.0 | 162.6 | |||
| 3′ | 122.2 | 122.7 | 108.6 | |||
| 4′ | 150.9 | 150.3 | 161.0 | |||
| 5′ | 7.01 s | 120.2 | 126.4 | 6.40 s | 111.0 | |
| 6′ | 125.7 | 127.5 | 102.7 | |||
| 1″ | 140.3 | 136.2 | ||||
| 2″ | 161.1 | * 160.8 | ||||
| 3″ | 6.23 s | 100.5 | 112.8 | |||
| 4″ | 161.2 | * 157.9 | ||||
| 5″ | 6.23 s | 109.9 | 107.2 | |||
| 6″ | 108.3 | 116.2 | ||||
| 1-C=O | 171.8 * | UD | 168.7 * | |||
| 1-COOMe | 3.83 s | 51.9 | ||||
| 2-OMe | ||||||
| 3-Me | 2.01 s | 9.8 | 2.62 s | 9.6 | 1.96 s | 9.7 |
| 5-Me | 2.04 s | 12.5 | 2.42 s | 12.6 | 1.96 s | 12.3 |
| 6-Me | 2.58 s | 17.4 | 2.84 s | 17.8 | 2.13 s | 16.6 |
| 1′-C=O | 167.1 * | UD | 168.9 | |||
| 2′-OMe | 3.78 s | 62.0 | 3.90 s | 61.9 | ||
| 3′-Me | 2.16 s | 9.7 | 2.36 s | 9.7 | 1.97 s | 7.8 |
| 5′-Me | 2.21 s | 12.6 | ||||
| 6′-Me | 2.40 s | 19.1 | 2.44 s | 16.7 | 2.54 s | 24.0 |
| 1″-C=O | 165.8 * | UD | ||||
| 3″-Me | 2.57 s | 9.2 | ||||
| 5″-Me | ||||||
| 6″-Me | 2.39 s | 21.4 | 2.94 s | 19.4 | ||
NMR assignments marked by an asterisk (*) are interchangeable. UD: undetected. 13C-NMR signals were not observed due to a limited amount of compound 10.
Physicochemical properties of new thielavins.
| 1 | 2 | 3 | 4 | |
|---|---|---|---|---|
| Molecular Formula | C27H27O10 | C28H29O10 | C28H29O10 | C28H29O10 |
| HRESIMS (pos) Obsd. ( | 511.1604 | 525.1727 | 525.1765 | 525.1757 |
| Cald. ( | 511.1599 | 525.1755 | 525.1755 | 525.1755 |
| ISCID ( | 493.2 | 507.2 | 507.1 | |
| 361.1 | 375.2 | 361.1 | 361.1 | |
| 329.1 | 343.1 | 357.1 | 343.1 | |
| 179.1 | 193.1 | 193.1 | 179.1 | |
| 151.0 | 151.0 | 165.1 | 165.1 | |
| UV | 218.1 | 218.1 | 218.1 | 218.1 |
| 267.8 | 267.8 | 276.1 | 276.1 | |
| 304.2 | 306.5 | 304.7 | 306.5 | |
| Molecular Formula | C28H29O10 | C29H31O10 | C28H29O10 | C27H27O10 |
| HRESIMS (pos) Obsd. ( | 525.1747 | 539.1916 | 525.1758 | 511.1564 |
| Cald. ( | 525.1755 | 539.1912 | 525.1755 | 511.1599 |
| ISCID ( | 507.2 | 479.1 | ||
| 361.1 | 375.2 | 361.1 | 361.1 | |
| 343.1 | 343.1 | 343.1 | 329.1 | |
| 179.1 | 179.1 | 179.1 | 179.1 | |
| 165.1 | 165.1 | 165.1 | 151.0 | |
| UV | 218.1 | 218.1 | 214.6 | 218.1 |
| 276.1 | 276.8 | 276.1 | 267.8 | |
| 306.9 | 305.2 | 309.1 | 305.2 | |
| Molecular Formula | C28H29O10 | C30H32ClO10 | C20H23O7 | |
| HRESIMS (pos) Obsd. ( | 525.1778 | 587.1719/589.1646 | 375.1464 | |
| Cald. ( | 525.1755 | 587.1679 | 375.1438 | |
| ISCID ( | 389.1 | |||
| 375.2 | 391.1/393.1 | |||
| 329.1 | 199.0/201.0 | 211.1 | ||
| 179.1 | 193.1 | 179.1 | ||
| 151.0 | 165.1 | |||
| UV | 213.4 | 215.8 | 215.8 | |
| 267.8 | 276.1 | 276.1 | ||
| 307.0 | 307.0 | 308.9 |
Anti-larval settlement activity of compounds from the fungus Thielavia sp. UST030930-004 against Balanus amphitrite. EC50 means the settlement of 50% of the larval population was inhibited, compared with the negative control. Data presented are the mean ± SE of three independent experiments performed in triplicate. Butenolide was served as the positive control.
| Compounds | EC50 (μM) | Compounds | EC50 (μM) |
|---|---|---|---|
| 2.95 ± 0.59 | 25.86 ± 1.56 | ||
| 3.13 ± 1.37 | 17.86 ± 3.14 | ||
| 5.78 ± 0.60 | 3.20 ± 0.83 | ||
| 69.19 ± 9.51 | 54.99 ± 5.23 | ||
| 4.23 ± 1.30 | 12.64 ± 6.20 | ||
| 50.50 ± 7.35 | Butenolide | 4.62 ± 1.30 |
Figure 3(a) EC50 of thielavin compounds against cyprids of Balanus amphitrite; Butenolide served as a positive control. (b) Recovery of Balanus amphitrite cyprid settlement in filtered seawater after a 24 h treatment with 10 μM of the thielavins we identified. The results were observed 48 h after being removed to filtered seawater. Values are presented as means ± SE of triplicate experiments. Asterisks indicate significant differences from control using Tukey’s test (* p < 0.05, ** p < 0.01, oneway ANOVA).
| R1 | R2 | R3 | R4 | R5 | R6 | R7 | |
|---|---|---|---|---|---|---|---|
| H | H | Me | Me | Me | H | H | |
| H | H | Me | Me | Me | H | Me | |
| Me | H | Me | Me | H | H | Me | |
| Me | H | H | Me | Me | H | Me | |
| Me | H | Me | H | Me | H | Me | |
| Me | H | Me | H | Me | Me | Me | |
| Me | H | Me | Me | Me | H | H | |
| H | H | Me | H | Me | H | Me | |
| H | H | Me | H | Me | Me | Me | |
| Me | Cl | Me | Me | Me | Me | Me | |
| Me | H | Me | Me | Me | Me | H | |
| H | H | Me | Me | Me | Me | H | |
| Me | H | Me | Me | Me | H | Me | |
| Me | H | Me | Me | Me | Me | Me |