| Literature DB >> 25786066 |
Michael P Gotsbacher1, Peter Karuso2.
Abstract
Bioassay-guided fractionation of extracts from temperate Australian collections of the marine sponge Pseudoceratina purpurea resulted in the isolation and characterisation of two new and six known bromotyrosine-derived alkaloids with antibiotic activity. Surprisingly, a single specimen of the mollusc Tylodina corticalis, which was collected while feeding on P. purpurea, contained only a few of the compounds found in the sponge suggesting selective accumulation and chemical modification of sponge metabolites.Entities:
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Year: 2015 PMID: 25786066 PMCID: PMC4377990 DOI: 10.3390/md13031389
Source DB: PubMed Journal: Mar Drugs ISSN: 1660-3397 Impact factor: 5.118
Figure 1Low resolution-LCMS chromatograms (λmax 210 nm) of ethyl acetate partitions of P. purpurea (A) and T. corticalis (B); Panels (C) and (D) are expansions of the 19–21 min regions (λmax 280 nm).
Low and high resolution LC-MS data from extracts of P. purpurea and T. corticalis.
| RT (min) a | λmax (nm) | Br | HR | Molecular Formula [M + H]+ | Δppm | Compound c | ||
|---|---|---|---|---|---|---|---|---|
| 13.7–14.2 | 226, 286 | 2 | 489.9717, 491.9689, 493.9665 | C15H18Br2N5O4 | −0.306, −1.059, −1.413 | +++ | + | pseudoceratinin A ( |
| 14.67 | 232, 286 | 2 | 494.0030, 496.0004, 497.9983 | C15H22Br2N5O4 | −0.306, −0.859, −0.913 | + | + | purealidin L ( |
| 15.1–15.4 | 228, 285 | 2 | 503.9878, 505.9848, 507.9824 | C16H20Br2N5O4 | +0.144, −0.809, −1.163 | +++ | ++ | aerophobin 2 ( |
| 15.41 | 234, 276, 340 | 2 | 680.9950, 682.9920, 684.9897 | C24H23Br2N6O8 | +0.937, +0.183, −0.070 | + | ceratinadin B ( | |
| 18.48 | 209, 286 | 2 | 489.9722, 491.9692, 493.9668 | C15H18N5O4Br2 | +0.194, −0.759, −1.113 | + | purealidin M ( | |
| 19.00 | 209, 286 | 2 | 503.9878, 505.9857, 507.9835 | C16H20Br2N5O4 | + 0.144, +0.091, −0.063 | + | aerophobin 2 isomer | |
| 19.41 | 210 | 0 | 293.2335 | - | - | + | ++ | C18 fatty acid methyl ester? |
| 19.3–19.8 | 223, 280 | 4 | 713.8461, 715.8431, 717.8400, 719.8376, 721.8355 | C21H24Br4N3O5 | + 1.502, +0.749, −0.305, −0.658, −0.711 | +++ | + | hexadellin A ( |
| 19.85 | 203, 280 | 4 | 741.8751, 743.8729, 745.8709, 747.8689, 749.8669 | C23H28Br4N3O5 | −0.598, −0.751, −0.705, −0.658, −0.611 | ~ | +++ | purealidin P ( |
| 20.08 | 210 | 0 | 293.2333 | - | - | ~ | ~ | C18 fatty acid methyl ester? |
| 20.13 | 203, 280 | 4 | 757.8720, 759.8688, 761.8660, 763.8634, 765.8616 | C23H28Br4N3O6 | +1.388, +0.234, −0.519, −1.073, −0.826 | +++ | purealidin T ( | |
| 20.30 | impure | 3 | 633.9558, 635.9530, 637.9503, 639.9482 | C22H27Br3N3O4 | +1.179, +0.426, −0.227, −0.281 | + | aplysamine 7 ( | |
| 20.47–20.53 | 222, 280 | 3 | 647.9707, 649.9673, 651.9644, 653.9627 | C23H29Br3N3O4 | +0.429, −0.924, −1.777, −1.431 | +++ | + | aplysamine 2 ( |
| 20.90 | 234, 279 | 3 | 663.9649, 665.9630, 667.9609, 669.9587 | C23H29Br3N3O5 | −0.285, −0.139, −0.192, −0.345 | ++ | purpuramine J ( | |
| 20.98 | 3 | 619.9397, 621.9368, 623.9340, 625.9320 | C21H25Br3N3O4 | + 0.729, −0.124, −0.877, −0.831 | ++ | 16-debromo-aplysamine 4 ( | ||
| 22.25 | 4 | 879.8942, 881.8915, 883.8894, 885.8871, 887.8850 | C27H30Br4N7O7 | + 0.727, +0.073, +0.020, −0.233, −0.287 | ++ | purealine ( | ||
| 24.27 | 240, 308, 363 | 2 | 404.9809, 406.9787, 408.9765 | C14H19Br2N2O2 | + 0.120, −0.033, −0.186 | + | new unknown |
a Retention times from LR LCMS trace (Figure 1); b number of bromine atoms from LR-MS molecular ion isotopic pattern; c +++; major metabolite, ++; medium abundance metabolite, +; minor metabolite; - no molecular formula was found and ~; trace metabolite; d tentative assignment based on HR-MS and UV (see Figure 2 and Figure 7); Grey indicates similarities between P. purpurea and T. corticalis. Italic indicates low accuracy for UV spectrum due to low sample concentration. Bold indicates new compounds.
Figure 2Bromotyrosine-alkaloids isolated from the marine sponge P. purpurea.
Figure 7Bromotyrosine derivatives tentatively identified from the ethyl acetate extracts of P. purpurea and T. corticalis based on UV and HR-MS analysis. The boxed structures are possible isomeric forms present. Stereochemistry shown as reported in the literature.
NMR (DMSO-d6, 600 MHz) data for new bromotyrosine compound (1).
| Position | δC | Type | δH, m ( | COSY (H no.) | 1H-13C HMBC (C no.) |
|---|---|---|---|---|---|
| 1 | 73.5 | CH | 3.90 d (7.7) | 9 | 3, 4, 5, 6 |
| 2 | 120.9 | C | - | ||
| 3 | 147.6 | C | - | ||
| 4 | 113.1 | C | - | ||
| 5 | 131.2 | CH | 6.54 s | 1 | 2, 3, 4, 6 (w) a, 10 |
| 6 | 90.1 | C | - | ||
| 8 | 59.7 | CH3 | 3.63 s | 3 | |
| 9 | - | OH | 6.36 d (7.7) | 1 | 1 (w), 4 (w), 6 (w) |
| 10 | 39.0 | CH2 | 3.59 d (3.6), 3.15 d (3.6) | 10 | 1, 5, 6, 11 |
| 11 | 154.5 | C | - | ||
| 14 | 158.9 | C | - | ||
| 16 | - | NH | 8.51 t (5.8) | 17 | 14 |
| 17 | 38.2 | CH2 | 3.13 m | 18 | 18, 19 |
| 18 | 28.1 | CH2 | 1.73 m | 17, 19 | 17, 19 |
| 19 | 21.6 | CH2 | 2.51 m | 18 | 18 (w), 20, 24 |
| 20 | 122.4 | C | - | ||
| 21 | - | NH | 11.93 bs | 23 | 20 (w) |
| 22 | 146.6 | C | - | ||
| 23 | - | NH | 12.15 bs | 21 | - |
| 24 | 117.8 | C | - | ||
| 25 | - | NH2 | 7.28 bs | ||
| 1′ | - | NH | 11.76 d (6.4) | 2′ | 3′, 5′ |
| 2′ | 124.2 | CH | 7.64 d (6.4) | 1′ | 4′, 10′ |
| 3′ | 139.9 | C | - | ||
| 4′ | 173.2 | C | - | ||
| 5′ | 112.6 | C | - | ||
| 6′ | 149.6 | C | - | ||
| 7′ | 103.2 | C | - | ||
| 8′ | 113.7 | CH | 6.83 s | 24, 6′, 9′, 10′ | |
| 9′ | 137.4 | C | - | ||
| 10′ | 128.9 | C | - | ||
| 11′ | - | OH | 8.93 bs | ||
| 12′ | - | OH | 14.3 bs | 5′, 6′ (w) | |
| 13′ | - | OH | 10.25 bs | 10′ |
a (w) denotes a weak correlation.
Figure 3Structure and selected COSY (black) and HMBC (red) correlations of new bromotyrosine compound 1.
Figure 4Selected HMBC correlations of 1: (a) from H-19 (δ 2.51) to C-20 (δ 122.4) and C-24 (δ 117.8) of the imidazole moiety. H-19 lies under the large DMSO peak (2.49 ppm). (b) from H-8′ (δ 6.83) 3J couplings to C-24 (δ 117.8) of the imidazole moiety, and to C-6′ (δ 149.6), C-10′ (δ 128.9) and a 2J coupling to C-9′ (δ 137.4) of the uranidine moiety.
NMR (DMSO-d6, 600 MHz) data for new bromotyrosine aplysamine 8 (2).
| Position | δC | Type | δH, m (
| COSY (H no.) | 1H-13C HMBC (C no.) | ROESY (H no.) |
|---|---|---|---|---|---|---|
| 1 | 136.3 | C | - | |||
| 2 | 132.9 | CH | 7.44 s | 7 | 3, 4 | 7 |
| 3 | 117.1 | C | - | |||
| 4 | 151.8 | C | - | |||
| 6 | 60.4 | CH3 | 3.75 s | 4 | ||
| 7 | 27.9 | CH2 | 3.76 s | 2 | 1, 2, 8, 11 | 2 |
| 8 | 151.0 | C | - | |||
| 10 | - | OH | 12.02 s | 8 (w) a | ||
| 11 | 163.0 | C | - | |||
| 13 | - | NH | 8.12 t (6.0) | 14 | 14 | 7, 14, 16, 15 (w) |
| 14 | 36.2 | CH2 | 3.38 m | 13, 15 | 11, 15, 16 | 15, 16 |
| 15 | 29.6 | CH2 | 1.96 m | 14, 16 | 14, 16 | 13 (w), 14, 16 |
| 16 | 71.3 | CH2 | 3.88 t (6.4) | 15 | 14, 15 | 14, 15 |
| 18 | 151.3 | C | - | |||
| 19 | 117.6 | C | - | |||
| 20 | 133.2 | CH | 7.55 s | 18, 19, 22 | 22, 23 | |
| 21 | 136.8 | C | - | |||
| 22 | 31.5 | CH2 | 2.81 t (7.4) | 20, 21, 23 | 20, 23 | |
| 23 | 39.4 | CH2 | 3.05 m | 22, 24 | 21(w) | 20, 22, 24 |
| 24 | - | NH3 | 7.81 bs | 23 | - | 23 |
a (w) denotes a weak correlation.
Figure 5Structure and selected 2D-NMR correlations of new bromotyrosine compound (2). (Colours: red (HMBC), green (ROESY), black (COSY)).
Figure 6Selected HMBC correlations found in the unknown bromotyrosine (2; DMSO-d6, 600 MHz). A weak correlation between H-16 (δ 3.88) and C-18 (δ 151.3) indicates the link of substructures B and C.