| Literature DB >> 25551780 |
Rodney Lacret1, Daniel Oves-Costales2, Cristina Gómez3, Caridad Díaz4, Mercedes de la Cruz5, Ignacio Pérez-Victoria6, Francisca Vicente7, Olga Genilloud8, Fernando Reyes9.
Abstract
A bioassay guided fractionation of the ethyl acetate extract from culture broths of the strain Streptomyces zhaozhouensis CA-185989 led to the isolation of three new polycyclic tetramic acid macrolactams (1-3) and four known compounds. All the new compounds were structurally related to the known Streptomyces metabolite ikarugamycin (4). Their structural elucidation was accomplished using a combination of electrospray-time of flight mass spectrometry (ESI-TOF MS) and 1D and 2D NMR analyses. Compounds 1-3 showed antifungal activity against Aspergillus fumigatus, Candida albicans and antibacterial activity against methicillin-resistant Staphylococcus aureus (MRSA).Entities:
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Year: 2014 PMID: 25551780 PMCID: PMC4306928 DOI: 10.3390/md13010128
Source DB: PubMed Journal: Mar Drugs ISSN: 1660-3397 Impact factor: 5.118
Figure 1Neighbor-joining tree built with MEGA 6.06 based on nearly-complete 16S rRNA gene sequences of CA-185989 and the closest type strains of the genus Streptomyces. Micromonospora auratinigra TT1-11(T) was employed as an out-group. The numbers at the nodes indicate bootstrap support (%) based on NJ analysis of 1000 replicates; only values higher that 50% are shown. The scale bar indicates 0.01 substitutions per site.
Figure 2Chromatographic UV trace (210 nm) from the LC-UV-MS analysis of aqueous crude extract (ACE) where compounds 1–4 were detected.
Figure 3Compounds isolated from culture broths of of Streptomyces zhaozhouensis.
1H and 13C NMR (500 and 125 MHz in CDCl3) data for compounds 1, 2 and 3.
| Position | Isoikarugamycin (1) | 28- | 30-Oxo-28- | ||||
|---|---|---|---|---|---|---|---|
| δ H, Mult., ( | δ C, Mult. | δ H, Mult., ( | δ C, Mult. | δ H, Mult., ( | δ C, Mult. | ||
| 1 | 196.7, C | 195.3, C | 195.2, C | ||||
| 2 | 3.95, br s | 61.4, CH | 3.72, d (3.5) | 66.2, CH | 3.71, d (4.0) | 66.3, CH | |
| 3 | 1.92, m2.02, m | 27.0, CH2 | 1.79, d (15.3) 2.14 m | 25.0, CH2 | 1.79, d (15.8) 2.13 m | 24.9, CH2 | |
| 4 | 1.10, m1.67, m | 22.3, CH2 | 1.13, m 1.47, m | 20.6, CH2 | 1.10, m 1.47 m | 20.6, CH2 | |
| 5 | 2.85, br s; 3.46 br s | 38.4, CH2 | 2.64, dd (10.0, 10.0) 3.69, br s | 38.9, CH2 | 2.64, m 3.64, m | 38.7, CH2 | |
| 6-NH | 5.83, br s | 5.93, br s | 5.78, br s | ||||
| 7 | 171.5, C | 166.6, C | 166.5, C | ||||
| 8 | 2.92, dd (14.8, 9.4) 3.05, d (14.6) | 41.3, CH2 | 5.83, dd (11.3, 1.3) | 123.7, CH | 5.82, d (11.3) | 123.8, CH | |
| 9 | 5.49, dd (14.8, 9.4) | 127.7, CH | 6.08, ddd (11.3, 11.3, 2.5) | 141.5, CH | 6.06, dd (10.9, 10.9) | 141.2, CH | |
| 10 | 5.34, dd (14.8, 9.4) | 133.9, CH | 2.39, dd (11.3, 2.5) 3.43, m | 25.4, CH2 | 2.35, m 3.47, m | 25.2, CH2 | |
| 11 | 1.88, dd (9.4, 9.4) | 56.1, CH | 1.57, m | 48.2, CH | 1.55, dd (11.5, 11.5) | 48.2, CH | |
| 12 | 2.30, m | 47.9, CH | 2.50, m | 42.8, CH | 2.51 m | 42.5, CH | |
| 13 | 5.55, d (10.0) | 128.4, CH | 5.68, dd (10.0, 2.0) | 128.0, CH | 5.68, dd (10.0, 2.0) | 128.6, CH | |
| 14 | 5.88, d (10.0) | 130.9, CH | 5.94, d (10.0) | 131.6, CH | 5.74, d (10.0) | 130.0, CH | |
| 15 | 1.54, m | 47.0, CH | 1.57, m | 46.9, CH | 2.37, m | 43.0, CH | |
| 16 | 1.35, m | 46.9, CH | 1.37, m | 47.2, CH | 2.68, m | 58.8, CH | |
| 17 | 2.26, m | 33.0, CH | 2.26, ddd (7.4, 7.4, 7.4) | 33.0, CH | 2.62, m | 33.7, CH | |
| 18 | 0.69, ddd (12.0, 12.0, 6.8) 2.11, m | 38.4, CH2 | 0.69, ddd (12.0, 12.0, 6.8) 2.08, m | 38.4, CH2 | 0.82, m 2.15, m | 38.9, CH2 | |
| 19 | 1.13, m | 48.7, CH | 1.16, m | 48.8, CH | 1.20, m | 47.7, CH | |
| 20 | 2.10, m | 42.3, CH | 2.08, m | 41.7, CH | 2.13, m | 41.0, CH | |
| 21 | 1.37, m 2.30, m | 37.1, CH2 | 1.24, m 2.16, m | 36.7, CH2 | 1.23, m 2.15, m | 36.5, CH2 | |
| 22 | 2.55, m | 50.6, CH | 2.49, m | 49.5, CH | 2.51, m | 49.3, CH | |
| 23 | 6.84, dd (15.7, 9.0) | 152.6, CH | 6.75, dd (15.5, 10.3) | 153.2, CH | 6.72, dd (15.4, 10.2) | 151.7, CH | |
| 24 | 7.04, d (15.7) | 123.2, CH | 7.12, d (15.5) | 122.2, CH | 7.12, d (15.5) | 122.4, CH | |
| 25 | 174.7, C | 172.9, C | 172.9, C | ||||
| 26 | 100.0, C | 100.7, C | 100.8, C | ||||
| 27 | 175.5, C | 173.4, C | 173.4, C | ||||
| 28-NR1 | 2.93, s | 26.3, CH3 | 2.93,s | 26.3, CH3 | |||
| 29 | 0.88, d (7.2) | 17.7, CH3 | 0.87, d (7.2) | 17.7, CH3 | 0.85, d (7.0) | 18.8, CH3 | |
| 30 | 1.35, m 1.46, m | 21.6, CH2 | 1.35, m 1.46, m | 21.6, CH2 | 210.2, C | ||
| 31 | 0.93, t (7.2) | 13.2, CH3 | 0.93, t (7.2) | 13.4, CH3 | 2.16, s | 31.4, CH3 | |
Figure 4Key COSY and HMBC correlations observed in the spectra of compounds 1–3.
Figure 5Molecular model of compound 1 showing the key observed NOESY correlations. The protons in β orientation (relative to the fused tricycle pseudoplane according to the 2D structure scketches) displaying mutual correlation are connected by green lines while red lines are employed for those in α orientation.
Figure 6Proposed biosynthetic scheme for compound 1.
Antibacterial and antifungal activities of compounds 1–7.
| Compound | MIC, μg/mL | |||
|---|---|---|---|---|
| MRSA MB5393 | ||||
| isoikarugamycin ( | 2–4 | 2–4 | 4–8 | >64 |
| 28- | 1–2 | 4 | 4–8 | >64 |
| 30-oxo-28- | 32–64 | >64 | >64 | >64 |
| Ikarugamycin ( | 2–4 | 4 | 4–8 | >64 |
| MKN-003B ( | >64 | >64 | >64 | >64 |
| 1 | >64 | >64 | >64 | >64 |
| Phenylethanoic acid ( | >64 | >64 | >64 | >64 |