| Literature DB >> 26329590 |
Hao Wen1, Yan Li2, Xingzhong Liu3, Wencai Ye1, Xinsheng Yao4, Yongsheng Che5.
Abstract
Fusagerins A-F (1-6), six new alkaloids including a unique one with the rare a-(N-formyl)carboxamide moiety (1), a hydantoin (imidazolidin-2,4-dione) derivative (2), and four fungerin analogues (3-6), were isolated from the crude extract of the fungus Fusarium sp., together with the known compound fungerin (7). Compound 2 was isolated as a racemate and further separated into two enantiomers on a chiral HPLC column. The structures of 1-6 were determined mainly by NMR experiments, and the absolute configuration of 1 and 2 was assigned by electronic circular dichroism (ECD) calculations. Compound 7 showed antibacterial activity against Staphylococcus aureus and Streptococcus pneumoniae, and weak cytotoxicity against the T24 cells.Entities:
Keywords: Alkaloids; Configuration determination; Fusarium sp.; Structure elucidation
Year: 2015 PMID: 26329590 PMCID: PMC4567992 DOI: 10.1007/s13659-015-0067-1
Source DB: PubMed Journal: Nat Prod Bioprospect ISSN: 2192-2209
Fig. 1Structures of metabolites 1–7 isolated from Fusarium sp.
NMR data for 1 (600 MHz, acetone-d 6)
| Position |
|
| HMBCb |
|---|---|---|---|
| 1 | 166.8, qC | ||
| 2 | 5.95, d (15.9) | 121.2, CH | 1, 3, 4 |
| 3 | 7.20, d (15.9) | 148.3, CH | 1, 2, 4, 8, 9 |
| 4 | 64.0, qC | ||
| 5 | 7.64, br s | ||
| 6 | 8.19, s | 160.9, CH | 4 |
| 7 | 7.34, br s | ||
| 8 | 170.6, qC | ||
| 9a | 2.67, dd (14.5, 7.3) | 35.2, CH2 | 3, 4, 8, 10, 11 |
| 9b | 2.99, dd (14.5, 7.3) | ||
| 10 | 5.04, t, (7.3) | 118.1, CH | 9, 12, 13 |
| 11 | 136.6, qC | ||
| 12 | 1.69, s | 26.1, CH3 | 10, 11, 13 |
| 13 | 1.62, s | 18.1, CH3 | 10, 11, 12 |
| 14 | 2.75, d (4.6) | 26.7, CH3 | 8 |
| 15 | 3.71, s | 51.7, CH3 | 1 |
aRecorded at 150 MHz
bHMBC correlations, optimized for 8 Hz, are stated from proton(s) to the indicated carbons
Fig. 2The experimental CD spectrum of 1 (solid) and the calculated ECD spectra (dash) of two enantiomers 4R-1 and 4S-1
NMR data for 2 (600 MHz, acetone-d 6)
| Position |
|
| HMBCb |
|---|---|---|---|
| 1 | 166.3, qC | ||
| 2 | 6.13, d (15.8) | 122.4, CH | 1, 3, 4 |
| 3 | 6.97, d (15.8) | 145.8, CH | 1, 2, 4, 8, 9 |
| 4 | 66.8, qC | ||
| 5 | 7.57, br s | 8 | |
| 6 | 156.6, qC | ||
| 7 | |||
| 8 | 173.5, qC | ||
| 9a | 2.53, dd (14.5, 7.3) | 36.1, CH2 | 3, 4, 8, 10, 11 |
| 9b | 2.70, dd (14.5, 7.3) | ||
| 10 | 5.05, t (7.3) | 116.5, CH | 4, 9, 12, 13 |
| 11 | 138.2, qC | ||
| 12 | 1.68, s | 26.0, CH3 | 4, 9, 10, 11, 13 |
| 13 | 1.63, s | 18.2, CH3 | 4, 9, 10, 11, 12 |
| 14 | 2.89, s | 24.6, CH3 | 6, 8 |
| 15 | 3.72, s | 52.0, CH3 | 1, 2 |
aRecorded at 150 MHz
bHMBC correlations, optimized for 8 Hz, are stated from proton(s) to the indicated carbons
Fig. 3The HPLC chromatogram of 2 using a Kromasil 5-CelluCoat RP column (4.6 × 250 mm, 5 μm) eluted with CH3CN/H2O (30:70, v/v; flow rate 0.5 mL/min; UV detection at 210 nm)
Fig. 4The experimental CD spectrum of 2 (solid) and the calculated ECD spectra (dash) of two enantiomers, 2a (4S-2) and 2b (4R-2)
NMR data for 3–6
| Position |
|
|
|
| ||||
|---|---|---|---|---|---|---|---|---|
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| 1 | 168.3, qC | 168.8, qC | 168.4, qC | 168.2, qC | ||||
| 2 | 6.52, d (15.3) | 115.1, CH | 5.74, d (12.1) | 118.2, CH | 6.62, d (15.5) | 115.9, CH | 6.23, d (15.2) | 114.0, CH |
| 3 | 7.64, d (15.3) | 136.7, CH | 6.68, d (12.1) | 129.5, CH | 7.59, d (15.5) | 135.1, CH | 7.47, d (15.2) | 135.3, CH |
| 4 | 135.8, qC | 135.9, qC | 135.7, qC | 133.0, qC | ||||
| 6 | 7.56, s | 140.6, CH | 7.43, s | 138.9, CH | 7.47, s | 139.2, CH | 7.61, s | 139.1, CH |
| 8 | 133.4, qC | 130.8, qC | 131.8, qC | 134.1, qC | ||||
| 9 | 6.66, d (16.2) | 112.3, CH | 6.57, d (16.1) | 112.8, CH | 6.44, d (16.6) | 114.8, CH | 3.43, d (7.0) | 21.6, CH2 |
| 10 | 6.28, d (16.2) | 146.2, CH | 6.16, d (16.1) | 144.8, CH | 6.14, d (16.6) | 140.9, CH | 5.05, t (7.0) | 120.0, CH |
| 11 | 70.9, qC | 70.8, qC | 82.1, qC | 133.0, qC | ||||
| 12 | 1.40, s | 30.3, CH3 | 1.37, s | 30.4, CH3 | 1.52, s | 24.4, CH3 | 1.68, s | 25.3, CH3 |
| 13 | 1.40, s | 30.3, CH3 | 1.37, s | 30.4, CH3 | 1.52, s | 24.4, CH3 | 1.73, s | 17.7, CH3 |
| 14 | 3.70, s | 32.7, CH3 | 3.65, s | 32.3, CH3 | 3.65, s | 32.6, CH3 | 3.53, s | 31.2, CH3 |
| 15 | 3.70, s | 51.4, CH3 | 3.63, s | 51.1, CH3 | 3.80, s | 51.5, CH3 | ||
| OH-1 | 12.07, s | |||||||
| OH-11g | 4.89, s | 4.79, s | ||||||
| OOH-11a | 10.41, br s | |||||||
aRecorded at 500 MHz in acetone-d 6
bRecorded at 125 MHz in acetone-d 6
cRecorded at 500 MHz in CDCl3
dRecorded at 125 MHz in CDCl3
eRecorded at 400 MHz in DMSO-d 6
fRecorded at 100 MHz in DMSO-d 6
gRecorded at 100 MHz in DMSO-d 6
Scheme 1Hypothetical biosynthetic pathways for compounds 1–6