| Literature DB >> 30978906 |
Takeshi Yamada1, Asumi Tanaka2, Tatsuo Nehira3, Takumi Nishii4, Takashi Kikuchi5.
Abstract
In order to find out the seeds of antitumor agents, we focused on potential bioactive materials from marine-derived microorganisms. Marine products include a number of compounds with unique structures, some of which may exhibit unusual bioactivities. As a part of this study, we studied metabolites of a strain of Alternaria sp. OUPS-117D-1 originally derived from the sea urchin Anthocidaris crassispina, and isolated five new decalin derivatives, altercrasins A-E (1-5). The absolute stereostructure of altercrasins A (1) had been decided by chemical transformation and the modified Mosher's method. In this study, four decalin derivatives, altercrasins B-E (2-5) were purified by silica gel chromatography, and reversed phase high-performance liquid chromatography (RP HPLC), and their structures were elucidated on the basis of 1D and 2D nuclear magnetic resonance (NMR) spectroscopic analyses. The absolute configuration of them were deduced by the comparison with 1 in the NMR chemical shifts, NOESY correlations, and electronic circular dichroism (ECD) spectral analyses. As a result, we found out that compound pairs of 1/2 and 4/5 were respective stereoisomers. In addition, their cytotoxic activities using murine P388 leukemia, human HL-60 leukemia, and murine L1210 leukemia cell lines showed that 4 and 5 exhibit potent cytotoxicity, in especially, the activity of 4 was equal to that of 5-fluorouracil.Entities:
Keywords: Alternaria sp.; Anthocidaris crassispina; altercrasins; cytotoxicity; decalin derivatives
Mesh:
Substances:
Year: 2019 PMID: 30978906 PMCID: PMC6521173 DOI: 10.3390/md17040218
Source DB: PubMed Journal: Mar Drugs ISSN: 1660-3397 Impact factor: 5.118
Figure 1Structures of altercrasins A–E (1–5).
NMR spectral data for 1–3 in acetone-d6.
| Position | 1 | 2 | 3 | ||||||||||||
|---|---|---|---|---|---|---|---|---|---|---|---|---|---|---|---|
| 1H | 13C | 1H | 13C | 1H | 13C | ||||||||||
| 1a | 1.55 | dq | 13.2, 3.6 | 25.9 | (t) | 1.52 | dq | 13.2, 3.6 | 25.9 | (t) | 1.80 | dq | 12.6, 3.6 | 26.0 | (t) |
| 1b | 1.12 | qd | 13.2, 3.6 | 1.13 | qd | 13.2, 3.6 | 1.20 | qd | 12.6, 3.6 | ||||||
| 2a | 0.91 | m | 36.0 | (t) | 0.90 | m | 36.0 | (t) | 0.87 | qd | 12.6, 3.6 | 36.2 | (t) | ||
| 2b | 1.74 | ddt | 12.6, 5.4, 3.6 | 1.75 | ddt | 12.6, 5.4, 3.6 | 1.74 | ddt | 12.6, 5.4, 3.6 | ||||||
| 3 | 1.48 | m | 33.5 | (d) | 1.49 | m | 33.5 | (d) | 1.49 | m | 33.7 | (d) | |||
| 4a | 0.82 | q | 12.6 | 42.6 | (t) | 0.83 | q | 12 | 42.7 | (t) | 0.79 | q | 12.6 | 43.0 | (t) |
| 4b | 1.87 | ddd | 12.6, 5.8, 3.5 | 1.88 | ddd | 12.0, 5.4, 3.5 | 1.87 | ddd | 12.6, 5.4, 3.6 | ||||||
| 5 | 1.92 | br t | 12.6 | 37.4 | (d) | 1.93 | m | 37.5 | (d) | 1.95 | br t | 12.6 | 37.5 | (d) | |
| 6 | 5.55 | d | 10.2 | 133.2 | (d) | 5.54 | d | 10.2 | 132.9 | (d) | 5.57 | d | 9.6 | 133.1 | (d) |
| 7 | 5.70 | ddd | 10.2, 5.0, 2.2 | 125.3 | (d) | 5.69 | ddd | 10.2, 4.8, 2.4 | 125.7 | (d) | 5.97 | ddd | 9.6, 4.8, 3.0 | 126.1 | (d) |
| 8 | 2.65 | ddt | 11.8, 5.0, 1.8 | 49.9 | (d) | 2.74 | ddt | 12.0, 4.8, 1.8 | 49.7 | (d) | 3.34 | ddt | 12.6, 4.8, 0.9 | 45.3 | (d) |
| 9 | 52.9 | (s) | 52.9 | (s) | 53.4 | (s) | |||||||||
| 10 | 1.49 | m | 38.7 | (d) | 1.40 | td | 13.2, 3.0 | 39.0 | (d) | 1.35 | td | 12.6, 3.6 | 40.4 | (d) | |
| 11 | 211.6 | (s) | 211.7 | (s) | 211.3 | (s) | |||||||||
| 12 | 74.0 | (s) | 74.2 | (s) | 74.7 | (s) | |||||||||
| 13 | 3.16 | dd | 11.8, 9.0 | 52.8 | (d) | 3.01 | dd | 12.0, 9.0 | 52.5 | (d) | 2.83 | ddd | 12.6, 5.4, 2.4 | 45.5 | (d) |
| 14 | 5.62 | ddd | 15.5, 9.0, 1.8 | 124.3 | (d) | 5.82 | ddd | 15.0, 9.0, 1.8 | 125.5 | (d) | 6.42 | ddq | 8.8, 5.4, 2.4 | 133.6 | (d) |
| 15 | 5.73 | dd | 15.5, 5.5 | 141.9 | (d) | 5.59 | ddd | 15.0, 5.4, 0.6 | 140.8 | (d) | 5.83 | ddq | 8.8, 5.4, 2.4 | 134.3 | (d) |
| 16 | 4.21 | m | 67.8 | (d) | 4.17 | m | 68.0 | (d) | 2.48 | m | 43.7 | (d) | |||
| 17 | 1.16 | d | 6.6 | 24.2 | (q) | 1.14 | d | 6.6 | 23.9 | (q) | 1.20 | d | 7.2 | 15.3 | (q) |
| 18 | 207.1 | (s) | 207.8 | (s) | 81.2 | (s) | |||||||||
| 19 | 3.66 | d | 6.8 | 70.4 | (d) | 3.93 | d | 4.2 | 69.7 | (d) | 173.3 | (d) | |||
| 20 | 3.99 | m | 67.9 | (d) | 3.98 | m | 67.4 | (d) | |||||||
| 21 | 1.25 | d | 6.0 | 20.4 | (q) | 1.27 | d | 6.0 | 20.7 | (q) | |||||
| 22 | 170.7 | (s) | 170.2 | (s) | 177.5 | (s) | |||||||||
| 23 | 0.91 | d | 6.6 | 22.6 | (q) | 0.92 | d | 6.6 | 22.6 | (q) | 0.89 | d | 6.6 | 22.8 | (q) |
| 24 | 0.99 | s | 16.0 | (q) | 0.99 | s | 16.1 | (q) | 1.05 | s | 17.3 | (q) | |||
| 16-OH | 3.79 | d | 5.0 | 3.47 | br s | ||||||||||
| 20-OH | 4.17 | d | 6.0 | 4.02 | br s | ||||||||||
| NH | 8.01 | br s | 8.02 | br s | |||||||||||
Figure 2Typical 2D NMR correlations in 2.
Figure 3Experimental ECD spectra of 1, 2, and 3.
Figure 4Typical 2D NMR correlations in 3.
Figure 5Key NOESY correlations in 3.
Figure 6Four plausible structures of 3.
NMR spectral data for 4 and 5 in acetone-d6.
| Position | 4 | 5 | ||||||||
|---|---|---|---|---|---|---|---|---|---|---|
| 1H | 13C | 1H | 13C | |||||||
| 1α | 1.67 | m | 27.6 | (t) | 1.91 | dq | 12.6, 3.6 | 28.0 | (t) | |
| 1β | 1.20 | qd | 12.6, 3.6 | 1.20 | qd | 12.6, 3.6 | ||||
| 2α | 0.85 | qd | 12.6, 3.6 | 36.1 | (t) | 0.90 | m | 36.2 | (t) | |
| 2β | 1.72 | m | 1.73 | ddt | 11.4, 5.4, 3.6 | |||||
| 3 | 1.49 | m | 33.5 | (d) | 1.49 | m | 33.5 | (d) | ||
| 4α | 0.79 | q | 12.6 | 42.6 | (t) | 0.80 | q | 12 | 42.9 | (t) |
| 4β | 1.85 | ddd | 12.6, 5.4, 3.6 | 1.87 | ddd | 12.0, 5.8, 3.5 | ||||
| 5 | 2.08 | m | 39.1 | (d) | 2.09 | m | 38.6 | (d) | ||
| 6 | 5.48 | d | 10.2 | 133.3 | (d) | 5.49 | d | 10.2 | 133.5 | (d) |
| 7 | 6.04 | dd | 10.2, 3.0 | 127.7 | (d) | 6.07 | dd | 10.2, 3.0 | 127.4 | (d) |
| 8 | 141.5 | (s) | 140.1 | (s) | ||||||
| 9 | 50.7 | (s) | 50.6 | (s) | ||||||
| 10 | 1.70 | m | 44.7 | (d) | 1.37 | td | 12.6, 3.6 | 45.3 | (d) | |
| 11 | 208.4 | (s) | 205.2 | (s) | ||||||
| 12 | 70.5 | (s) | 72.7 | (s) | ||||||
| 13 | 3.71 | d | 9.6 | 43.6 | (d) | 3.96 | d | 9 | 41.5 | (d) |
| 14 | 5.52 | d | 1.8 | 124.6 | (d) | 5.70 | d | 1.8 | 126.9 | (d) |
| 15 | 5.37 | ddq | 16.8, 9.6, 1.8 | 128.4 | (d) | 5.37 | ddq | 16.8, 9.0, 1.8 | 129.4 | (d) |
| 16 | 5.57 | dq | 16.8, 6.6 | 131.0 | (d) | 5.62 | dq | 16.8, 6.6 | 129.9 | (d) |
| 17 | 1.62 | d | 6.6 | 18.0 | (q) | 1.59 | d | 6.6 | 17.9 | (q) |
| 18 | 208.4 | (s) | 204.7 | (s) | ||||||
| 19 | 3.49 | d | 7.2 | 69.9 | (d) | 3.81 | d | 4.8 | 68.9 | (d) |
| 20 | 3.99 | m | 68.1 | (d) | 3.90 | m | 67.0 | (d) | ||
| 21 | 1.28 | d | 6.6 | 20.2 | (q) | 1.29 | d | 6.0 | 20.8 | (q) |
| 22 | 168.1 | (s) | 170.7 | (s) | ||||||
| 23 | 0.89 | d | 6.6 | 22.6 | (q) | 0.89 | d | 6.6 | 22.6 | (q) |
| 24 | 1.12 | s | 17.4 | (q) | 1.12 | s | 16.6 | (q) | ||
| 20-OH | 4.06 | br s | 4.02 | d | 6.0 | |||||
| NH | 7.88 | br s | 7.86 | br s | ||||||
Figure 7Typical 2D NMR correlations in 4.
Figure 8Experimental ECD spectra of 4 and 5.
Cytotoxicity assay against P388 and HL-60 and L1210 cell lines.
| Compounds | Cell line P388 | Cell line HL-60 | Cell line L1210 |
|---|---|---|---|
| IC50 (μM) | IC50 (μM) | IC50 (μM) | |
|
| 36.2 | 21.5 | 22.1 |
|
| 20.0 | 12.1 | 8.0 |
|
| 61.2 | 41.6 | 27.1 |
|
| 9.7 | 6.1 | 8.4 |
|
| 15.5 | 6.2 | 10.3 |
| 5-Fluorouracil | 7.2 | 4.5 | 1.1 |
DMSO was used as vehicle. Positive control.