| Literature DB >> 26230704 |
Jan Vicente1,2, Allison K Stewart3, Ryan M van Wagoner4, Elizabeth Elliott5, Andrea J Bourdelais6, Jeffrey L C Wright7.
Abstract
During an investigation of new actinomycete species from Caribbean sponges for novel bioactive natural products, frigocyclinone (1), dimethyldehydrorabelomycin (3) and six new angucyclinone derivatives were isolated from Streptomyces sp. strain M7_15 associated with the sponge Scopalina ruetzleri. Of these, monacyclinones A-B (4-5) contain the core ring structure of dehydrorabelomycin (2) with the aminodeoxysugar found in frigocyclinone (1). Monacyclinone C (6) is a hydroxylated variant of frigocyclinone (1) and monacyclinone D (7) is a Baeyer Villiger derivative of (6) which also exists as the open chain hydrolysis product monacyclinone E (8). Monacyclinone F (9) contains two unique epoxide rings attached to the angucyclinone moiety and an additional aminodeoxysugar attached through an angular oxygen bond. All structures were confirmed through spectral analyses. Activity against rhabdomycosarcoma cancer cells (SJCRH30) after 48 h of treatment was observed with frigocyclinone (1; EC50 = 5.2 µM), monacyclinone C (6; 160 µM), monacyclinone E (8; 270 µM), and monacyclinone F (9; 0.73 µM). The strongest bioactivity against rhabdomycosarcoma cancer cells and gram-positive bacteria was exhibited by compound 9, suggesting that the extra aminodeoxysugar subunit is important for biological activity.Entities:
Keywords: Streptomyces; angucyclinone; antibiotic; anticancer
Mesh:
Substances:
Year: 2015 PMID: 26230704 PMCID: PMC4556999 DOI: 10.3390/md13084682
Source DB: PubMed Journal: Mar Drugs ISSN: 1660-3397 Impact factor: 5.118
Figure 1Key 1H–1H COSY and HMBC correlations of compounds 4–9.
Figure 2Monacyclinone derivatives isolated from Streptomyces sp. M7_15 including previously described frigocyclinone and dehydrorabelomycin.
13C and 1H NMR data for compounds 4, 5, 6, 7, 8 (in pyridine-d5).
| Position | Monacyclinone A (4) | Monacyclinone B (5) | Monacyclinone C (6) | Monacyclinone D (7) | Monacyclinone E (8) | |||||
|---|---|---|---|---|---|---|---|---|---|---|
| 13C | 1H (m, | 13C | 1H (m, | 13C | 1H (m, | 13C | 1H (m, | 13C | 1H (m, | |
| 1 | 156.7 | 164.8 | 196.9 | 172.9 | 175.7 | |||||
| 2 | 119.9 | 7.33 (s) | 116.0 | 8.22 (s) | 54.5 | 3.22 (m) | 45.3 | 3.23 (d, 17.0) | 46.9 | 3.02 (m) |
| 3.22 (m) | 3.21 (d, 17.0) | 3.02 (m) | ||||||||
| 3 | 142.6 | 141.5 | 71.9 | 90.7 | 72.4 | |||||
| 4 | 121.6 | 7.28 (s) | 121.0 | 7.43 (s) | 45.0 | 3.25 (m) | 40.3 | 3.21 (d, 17.0) | 41.0 | 2.52 (m) |
| 3.25 (m) | 3.81 (d, 17.0) | 3.47 (m) | ||||||||
| 4a | 120.3 | 124.2 | 153.6 | 139.4 | 136.7 | |||||
| 5 | 137.5 | 8.19 (d, 8.0) | 157.4 | 122.4 | 7.16 (s) | 130.5 | 7.53 (d, 8.0) | 140.7 | 8.06 (d, 8.0) | |
| 6 | 122.5 | 8.40 (d, 8.0) | 105.6 | 8.01 (s) | 164.5 | 120.8 | 8.01 (d, 8.0) | 118.9 | 7.90 (d, 8.0) | |
| 6a | 135.6 | 123.5 | 117.5 | 133.4 | 132.4 | |||||
| 7 | 188.1 | 189.9 | 193.1 | 189.6 | 188.9 | |||||
| 7a | 115.0 | 115.2 | 115.4 | 115.9 | 116.3 | |||||
| 8 | 158.7 | 158.9 | 158.8 | 159.2 | 160.0 | |||||
| 9 | 140.0 | 139.9 | 139.0 | 138.2 | 141.0 | |||||
| 10 | 134.1 | 8.03 (d, 8.0) | 134.0 | 8.05 (d, 8.0) | 134.5 | 8.03 (d, 8.0) | 133.7 | 8.09 (d, 8.0) | 134.0 | 8.13 (d, 8.0) |
| 11 | 121.4 | 7.91 (d, 8.0) | 121.3 | 7.97 (d, 8.0) | 119.5 | 7.82 (d, 8.0) | 119.0 | 8.05 (d, 8.0) | 119.6 | 8.00 (d, 8.0) |
| 11a | 134.6 | 135.1 | 135.3 | 133.4 | 132.6 | |||||
| 12 | 189.5 | 187.5 | 184.1 | 181.0 | 189.1 | |||||
| 12a | 134.3 | 132.2 | 130.6 | 116.7 | 116.3 | |||||
| 12b | 121.1 | 123.7 | 122.6 | 160.0 | 162.6 | |||||
| 13 | 21.5 | 2.39 (s) | 21.7 | 2.46 (s) | 30.1 | 1.56 (s) | 27.3 | 1.78 (s) | 27.8 | 1.69 (s) |
| 1′ | 65.2 | 5.26ax (d, 11.0) | 65.2 | 5.23ax (m) | 65.1 | 5.22ax (dd, 11.0,1.0) | 64.7 | 5.26ax (m) | 65.2 | 5.25ax (m) |
| 2′ | 32.5 | 1.44ax (m) | 32.5 | 1.44ax (m) | 32.1 | 1.36ax (m) | 31.9 | 1.39ax (m) | 32.2 | 1.42ax (m) |
| 2.39eq (m) | 2.30eq (m) | 2.34eq (m) | 2.33eq (m) | 2.33eq (m) | ||||||
| 3′ | 22.4 | 1.98ax (m) | 22.8 | 1.79ax (m) | 22.7 | 1.81ax (m) | 22.5 | 1.83ax (m) | 23.1 | 1.69ax (m) |
| 1.98eq (m) | 1.93eq (m) | 1.94eq (m) | 1.94eq (m) | 1.89eq (m) | ||||||
| 4′ | 64.7 | 2.82ax (br s) | 64.5 | 2.53ax (s) | 64.7 | 2.53ax (m) | 64.2 | 2.54ax (m) | 64.7 | 2.33ax (m) |
| 5′ | 71.2 | 4.72 (m) | 71.6 | 4.64 (m) | 71.9 | 4.61 (m) | 71.8 | 4.63 (m) | 72.0 | 4.61 (m) |
| 6′ | 12.4 | 1.52ax (d, 7.0) | 12.2 | 1.44ax (m) | 12.3 | 1.44ax (d, 7.0) | 12.0 | 1.46ax (d, 7.0) | 12.3 | 1.42ax (m) |
| 7′ | 42.8 | 2.52 (s) | 43.2 | 2.31 (s) | 43.0 | 2.34 (s) | 43.0 | 2.33 (s) | 43.3 | 2.19 (s) |
| 8′ | 42.8 | 2.52 (s) | 43.2 | 2.31 (s) | 43.0 | 2.34 (s) | 43.0 | 2.33 (s) | 43.3 | 2.19 (s) |
Figure 3ROESY correlations for the C-linked aminodeoxysugar of compounds 4–8 (A) ROESY correlations for the O-linked aminodeoxysugar of compound 9 (B).
13C and 1H NMR data for compound 9 (in pyridine-d5).
| Position | 13C | 1H (m,
| COSY | HMBC | ROESY | TOCSY |
|---|---|---|---|---|---|---|
| 1 | 204.4, C | |||||
| 2 | 50.6, C | 2.83 (dd, 18.0, 3.0) | 4, 12a, 4a, 1, 13, 3 | 4 | ||
| 3.34 (dd, 18.0, 3.0) | ||||||
| 3 | 75.9, C | |||||
| 4 | 49.8, CH2 | 2.12 (m) | 13, 5, 3, 2 | 2 | ||
| 2.93 (dd, 14.0, 3.0) | ||||||
| 4a | 82.8, C | |||||
| 5 | 36.7, CH2 | 2.83 (m) | 6 | 7a, 6, 12a, 4a, 1 | 6 | |
| 6 | 64.5, CH | 4.69 (m) | 5 | |||
| 6a | 58.5, C | |||||
| 7 | 198.0, C | |||||
| 7a | 118.4, C | |||||
| 8 | 159.2, C | |||||
| 9 | 140.7, C | |||||
| 10 | 135.3, CH | 8.14 (d, 8.0) | 11 | 1′, 7a, 11, 11a, 8 | 11 | |
| 11 | 120.5, CH | 8.03 (d, 8.0) | 10 | 7a, 9, 8, 12, 7 | 10 | |
| 11a | 133.1, C | |||||
| 12 | 192.7, C | |||||
| 12a | 71.3, C | |||||
| 12b | 80.5, C | |||||
| 13 | 25.7 CH3 | 1.33 (s) | 4, 3, 12b, 1 | 4, 5 | ||
| 1′ | 65.1, CH | 5.17ax (m) | 2′ | 3′, 2′, 10, 9, 8 | 6′, 3′ax | 2′, 3′, 4′, 1′ |
| 2′ | 32.4, CH2 | 1. 26ax (m) | 3′, 1′ | 3′, 1′, 9, 4′ | 4′ | 5′, 1′, 3′ |
| 2.22eq (m) | 3′eq | |||||
| 3′ | 23.2, CH2 | 1.70ax (m) | 4′, 2′ | 2′, 4′ | 1′, 6′ | 2′, 6′, 4′, 5′, 1′ |
| 1.85eq (m) | 2′eq, 5′ | |||||
| 4′ | 64.6, CH | 2.36ax (m) | 5′, 3′ | 6′, 5′ | 2′ax | 2′, 6′, 3′ |
| 5′ | 72.1, CH | 4.58 (m) | 6′, 4′ | 6′, 3′, 1′, 4′ | 3′eq | 6′, 3′, 4′ |
| 6′ | 12.3, CH3 | 1.44ax (m) | 5′ | 4′, 5′ | 1′, 3′ax | 3′, 5′ |
| 7′ | 43.5, CH3 | 2.25 (s) | 4′ | |||
| 8′ | 43.5, CH3 | 2.25 (s) | 4′ | |||
| 1′′ | 94.1, CH | 5.75ax (s) | 2′′ | 3′′, 5′′, 4a | 3′′ ax, 6′′ | 3′′, 4′′, 2′′ |
| 2′′ | 31.1, CH2 | 1.44ax (m) | 3′′, 1′′ | 4′′ | 4′′ | |
| 2.25eq (m) | 3′′eq | |||||
| 3′′ | 14.2, CH2 | 1.14eq (m) | 4′′, 2′′ | 5′′, 1′′, 4′′ | 1′′, 6′′ | 7′′, 4′′, 2′′, 5′′, 1′′ |
| 1.46ax (m) | 2′′eq, 5′′ | |||||
| 4′′ | 66.1, CH | 1.93ax (m) | 5′′, 3′′ | 6′′, 5′′, 3′′ | 2′′ ax | 6′′, 3′′, 2′′, 5′′, 1′′ |
| 5′′ | 68.3, CH | 3.65 (m) | 6′′, 4′′ | 3′′, 6′′, 4′′ | 3′′eq | 6′′, 3′′, 4′′, 2′′ |
| 6′′ | 19.1, CH3 | 0.75ax (d, 6.0) | 5′′ | 1′′, 5′′, 4′′ | 1′′, 3′′ax | 3′′, 4′′, 2′′, 5′′ |
| 7′′ | 41.1, CH3 | 2.05 (s) | 4′′ | |||
| 8′′ | 41.1, CH3 | 2.05 (s) | 4′′ |
Figure 4Neighbor-joining (NJ) tree of sponge and sediment associated actinomycetes based on partial sequence of 1400 base pairs of 16S rRNA genes. The tree was bootstrapped using 1000 replicates with the neighbor-joining algorithm. Scale bar = 0.01 nucleotide substitutions per site. Accession numbers of each sequence are indicated in parenthesis.
EC50 of frigocyclinone, dimethyldehydrorabelomycin, and all new monacyclinone derivatives after 24 h and 48 h intervals against rhabdomyosarcoma cancer cells. EC50s are reported as >10 μM if the highest dose of the compound failed to kill 50% of the cells in that treatment.
| Compound | EC50 24 h (µM) | EC50 48 h (µM) |
|---|---|---|
| Frigocyclinone (1) | >10 | 5.2 |
| Dimethyldehydrorabelomycin (3) | >10 | >10 |
| 4 | >10 | >10 |
| 5 | >10 | >10 |
| 6 | 1.1 × 102 | 1.6 × 102 |
| 7 | >10 | >10 |
| 8 | >10 | 2.7 × 102 |
| 9 | 6.1 × 10−1 | 7.3 × 10−1 |