| Literature DB >> 28587270 |
Jungwoo Kim1, Daniel Shin2, Seong-Hwan Kim3, Wanki Park4, Yoonho Shin5, Won Kyung Kim6, Sang Kook Lee7, Ki-Bong Oh8, Jongheon Shin9, Dong-Chan Oh10.
Abstract
Chemical investigation of a halophilic actinomycete strain belonging to the genus Nocardiopsis inhabiting a hypersaline saltern led to the discovery of new 18-membered macrolides with nitrile functionality, borrelidins C-E (1-3), along with a previously reported borrelidin (4). The planar structures of borrelidins C-E, which are new members of the rare borrelidin class of antibiotics, were elucidated by NMR, mass, IR, and UV spectroscopic analyses. The configurations of borrelidines C-E were determined by the interpretation of ROESY NMR spectra, J-based configuration analysis, a modified Mosher's method, and CD spectroscopic analysis. Borrelidins C and D displayed inhibitory activity, particularly against the Gram-negative pathogen Salmonella enterica, and moderate cytotoxicity against the SNU638 and K562 carcinoma cell lines.Entities:
Keywords: Salmonella enterica; antibacterial; borrelidin; halophilic actinomycetes; saltern
Mesh:
Substances:
Year: 2017 PMID: 28587270 PMCID: PMC5484116 DOI: 10.3390/md15060166
Source DB: PubMed Journal: Mar Drugs ISSN: 1660-3397 Impact factor: 5.118
Figure 1The structures of borrelidins C–E (1–3) and borrelidin (4).
NMR data for 1–3 in pyridine-d5.
| C/H | 1 | 2 | 3 | ||||||
|---|---|---|---|---|---|---|---|---|---|
| Mult ( | Mult ( | Mult ( | |||||||
| 1 | – | – | 172.4 s | – | – | 172.7 s | – | – | 172.7 s |
| 2 | 2.79 | m | 39.3 t | 2.82 | m | 41.1 t | 2.92 | m | 41.3 t |
| 2.76 | m | 2.80 | m | 2.79 | m | ||||
| 3 | 4.37 | m | 70.8 d | 4.34 | m | 71.2 d | 4.44 | m | 69.8 d |
| 4 | 1.98 | m | 36.5 d | 1.92 | m | 36.9 d | 1.96 | m | 36.8 d |
| 5 | 1.34 | m | 43.9 t | 1.26 | m | 44.9 t | 1.72 | m | 41.5 t |
| 0.95 | m | 0.94 | m | 1.66 | m | ||||
| 6 | 2.10 | m | 27.6 d | 2.00 | m | 27.9 d | 2.37 | m | 32.2 d |
| 7 | 1.07 | m | 48.1 t | 1.05 | m | 48.6 t | 3.26 | br d (9.5) | 81.5 d |
| 1.00 | m | 0.95 | m | ||||||
| 8 | 1.73 | m | 26.8 d | 1.72 | m | 27.1 d | 2.01 | m | 34.4 d |
| 9 | 1.41 | ddd (13.0, 13.0, 2.5) | 37.9 t | 1.38 | ddd (13.0, 13.0, 2.5) | 38.1 t | 1.37 | m | 36.3 t |
| 0.98 | m | 0.99 | m | 1.15 | m | ||||
| 10 | 2.28 | m | 35.6 d | 2.30 | m | 36.0 d | 2.36 | m | 36.1 d |
| 11 | 4.57 | d (9.5) | 72.2 d | 4.58 | d (9.5) | 72.6 d | 4.62 | d (9.5) | 72.7 d |
| 12 | – | – | 120.1 s | – | – | 120.6 s | – | – | 120.6 s |
| 13 | 6.83 | d (11.0) | 143.7 d | 6.76 | d (11.5) | 143.2 d | 6.83 | d (11.0) | 143.4 d |
| 14 | 6.66 | dd (14.0, 11.0) | 127.7 d | 6.68 | dd (14.0, 11.5) | 128.1 d | 6.71 | dd (14.0, 11.0) | 127.9 d |
| 15 | 6.33 | m | 139.1 d | 6.27 | ddd (14.0, 11.0, 4.0) | 139.5 d | 6.33 | ddd (14.0, 11.0, 4.0) | 139.9 d |
| 16 | 2.60 | m | 36.2 t | 2.57 | m | 36.6 t | 2.57 | m | 37.0 t |
| 2.57 | m | 2.49 | m | 2.5 | m | ||||
| 17 | 5.65 | m | 76.7 d | 5.37 | m | 76.8 d | 5.38 | m | 76.8 d |
| 18 | 3.22 | m | 44.7 d | 3.49 | m | 45.1 d | 3.09 | m | 46.8 d |
| 19 | 2.42 | m | 39.1 t | 2.26 | m | 40.8 t | 1.90 | m | 30.3 t |
| 1.80 | m | 1.60 | m | 1.27 | m | ||||
| 20 | 4.79 | m | 72.4 d | 4.59 | m | 73.3 d | 1.79 | m | 26.2 t |
| 1.62 | m | ||||||||
| 21 | 2.46 | m | 41.6 t | 2.38 | m | 40.8 t | 2.14 | m | 32.3 t |
| 2.41 | m | 2.20 | m | 1.98 | m | ||||
| 22 | 3.44 | ddd (8.5, 8.5, 8.5) | 48.3 d | 3.07 | ddd (8.0, 8.0, 8.0) | 49.7 d | 2.89 | ddd (7.5, 7.5, 7.5) | 50.8 d |
| 23 | – | – | 179.4 s | – | – | 181.9 s | – | – | 181.2 s |
| 24 | 0.85 | d (7.0) | 18.3 q | 0.89 | d (7.0) | 18.9 q | 0.92 | d (7.0) | 17.9 q |
| 25 | 0.97 | d (6.5) | 18.6 q | 0.92 | d (6.5) | 18.7 q | 1.18 | d (6.5) | 11.6 q |
| 26 | 0.91 | d (6.5) | 20.6 q | 0.90 | d (6.5) | 21.0 q | 1.31 | d (6.5) | 16.7 q |
| 27 | 1.28 | d (6.5) | 15.4 q | 1.30 | d (6.5) | 15.7 q | 1.37 | d (6.5) | 15.8 q |
| 28 | – | – | 118.3 s | – | – | 118.6 s | – | – | 118.6 s |
a 600 MHz; b 150 MHz.
Figure 2The key COSY and HMBC correlations of borrelidin C (1).
Figure 3Key ROESY correlations around the cyclopentane of borrelidins C-D (1–2).
Figure 4Δδ values in ppm of (a) 1a and 2b and (b) 2a and 2b in pyridine-d5.
Figure 5J-based configuration analysis for the configuration of borrelidin E (3) at C-7 and C-8. Two rotamers were selected with 3JH7H8 (9.0 Hz). (a) The rotamer satisfies the observed ROESY correlations; (b) The rotamer cannot satisfy the observed H-6/H3-26 ROESY correlation.
Antibacterial activities of the borrelidins (1–4) against pathogenic bacteria.
| MIC in µM | Gram-Positive | Gram-Negative | |||||
|---|---|---|---|---|---|---|---|
| Borrelidin C ( | >250 | 250 | >250 | >250 | >250 | 16 | >250 |
| Borrelidin D ( | >250 | >250 | >250 | >250 | >250 | 63 | >250 |
| Borrelidin E ( | 250 | >250 | >250 | >250 | >250 | 250 | >250 |
| Borrelidin ( | >260 | 33 | 65 | 16 | 65 | 0.51 | 260 |
| Ampicillin | 0.37 | 5.7 | 5.7 | 0.37 | >367 | 1.4 | 23 |
Cytotoxicities of the borrelidins (1–4) against cancer cell lines.
| IC50 in µM | A549 | HCT116 | SNU638 | SK-HEP1 | MDA-MB231 | K562 |
|---|---|---|---|---|---|---|
| Borrelidin C ( | 9.1 | 10 | 5.5 | 63 | 96 | 5.7 |
| Borrelidin D ( | 12 | 15 | 8.7 | 71 | 64 | 6.7 |
| Borrelidin E ( | >100 | >100 | >100 | >100 | >100 | >100 |
| Borrelidin ( | 0.8 | 0.8 | 0.8 | 0.8 | 0.8 | 0.8 |
| Etoposide | 0.68 | 14 | 0.57 | 8.7 | 5.4 | 1.5 |