| Literature DB >> 35541261 |
Mengting Liu1, Qun Zhou1, Jianping Wang1, Junjun Liu1, Changxing Qi1, Yongji Lai2, Hucheng Zhu1, Yongbo Xue1, Zhengxi Hu1, Yonghui Zhang1.
Abstract
Chemical investigation of the coral-derived fungus Aspergillus terreus led to the discovery of ten butenolide derivatives (1-10), including four new ones (1-4). The new structures were characterized on the basis of comprehensive spectroscopic analysis, including 1D and 2D NMR and HRESIMS data. Compounds 1 and 2 were a pair of rare C-8'' epimers with vicinal diol motifs. The absolute configurations of 1-4 were determined via [Mo2(AcO)4] induced circular dichroism (ICD) spectra and comparison of their experimental ECD spectra. Importantly, the structures of reported aspernolides D and G, butyrolactone VI and 4',8''-diacetoxy butyrolactone VI have been correspondingly revised via a combined strategy of experimental validations, 13C NMR predictions by ACD/Labs software, and 13C NMR calculations. Herein we provide valuable referenced 13C NMR data (C-7'', C-8'', and C-9'') for the structure elucidations of butenolide derivatives with 1-(2-hydroxyphenyl)-3-methylbutane-2,3-diol, 2-(2,3-dihydrobenzofuran-2-yl)propan-2-ol, or 2,2-dimethylchroman-3-ol motifs. Additionally, all the isolates (1-10) were assessed for anti-inflammatory activity by measuring the amount of NO production in lipopolysaccharide (LPS)-induced RAW 264.7 mouse macrophages, and compound 10 showed an even stronger inhibitory effect than the postive control indomethacin, presenting it as a promising lead compound for the development of new anti-inflammatory agents. This journal is © The Royal Society of Chemistry.Entities:
Year: 2018 PMID: 35541261 PMCID: PMC9079733 DOI: 10.1039/c8ra01840e
Source DB: PubMed Journal: RSC Adv ISSN: 2046-2069 Impact factor: 4.036
Fig. 1Chemical structures of compounds 1–10.
1H and 13C NMR data for compounds 1–4 (δ in ppm and J in Hz)
| No. | 1 | 2 | 3 | 4 | ||||
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| 1 | — | 170.0 C | — | 170.1 C | — | 171.8 C | — | 170.0 C |
| 2 | — | 140.3 C | — | 140.4 C | — | 140.4 C | — | 142.1 C |
| 3 | — | 127.8 C | — | 127.5 C | — | 129.5 C | — | 128.6 C |
| 4 | — | 86.2 C | — | 86.2 C | — | 87.0 C | — | 86.9 C |
| 5 | 3.50 m | 38.7 CH2 | 3.51 d (4.2) | 38.6 CH2 | 3.44 d (9.1) | 39.7 CH2 | 3.42 d (1.6) | 39.4 CH2 |
| 6 | — | 170.0 C | — | 170.1 C | — | 171.8 C | — | 171.4 C |
| 6-OMe | 3.76 s | 53.8 CH3 | 3.78 s | 53.8 CH3 | 3.77 s | 53.8 CH3 | 3.76 s | 53.9 CH3 |
| 1′ | — | 130.2 C | — | 130.4 C | — | 125.2 C | — | 131.9 C |
| 2′ | 7.66 d (7.7) | 127.7 CH | 7.71 d (7.8) | 127.5 CH | 6.45 d (2.1) | 132.5 CH | 7.64 d (7.4) | 128.6 CH |
| 3′ | 7.40 dd (7.3, 7.7) | 129.1 CH | 7.42 dd (7.1, 7.8) | 129.2 CH | — | 128.4 C | 7.43 dd (7.3, 7.4) | 129.8 CH |
| 4′ | 7.35 dd (7.3, 7.3) | 129.2 CH | 7.33 dd (7.1, 7.1) | 129.1 CH | — | 155.1 C | 7.35 dd (7.3, 7.3) | 129.7 CH |
| 5′ | 7.40 dd (7.3, 7.7) | 129.1 CH | 7.42 dd (7.1, 7.8) | 129.2 CH | 6.48 d (8.1) | 115.1 CH | 7.43 dd (7.3, 7.4) | 129.8 CH |
| 6′ | 7.66 d (7.7) | 127.7 CH | 7.71 d (7.8) | 127.5 CH | 6.53 dd (2.1, 8.1) | 129.8 CH | 7.64 d (7.4) | 128.6 CH |
| 7′ | — | — | — | — | 3.08 br d (7.4) | 28.8 CH2 | — | — |
| 8′ | — | — | — | — | 5.09 m | 123.8 CH | — | — |
| 9′ | — | — | — | — | — | 132.8 C | — | — |
| 10′ | — | — | — | — | 1.67 s | 26.0 CH3 | — | — |
| 11′ | — | — | — | — | 1.59 s | 17.8 CH3 | — | — |
| 1′′ | — | 124.9 C | — | 124.7 C | — | 124.7 C | — | 125.4 C |
| 2′′ | 6.70 s | 133.1 CH | 6.35 s | 133.2 CH | 7.68 s | 125.6 CH | 6.41 d (2.1) | 132.6 CH |
| 3′′ | — | 126.2 C | — | 125.6 C | — | 129.5 C | — | 121.4 C |
| 4′′ | — | 154.5 C | — | 154.5 C | — | 161.6 C | — | 154.3 C |
| 5′′ | 6.52 d (8.1) | 116.5 CH | 6.62 d (8.2) | 116.5 CH | 6.83 d (8.5) | 110.1 CH | 6.38 d (8.3) | 117.4 CH |
| 6′′ | 6.29 d (8.1) | 130.1 CH | 6.64 d (8.2) | 130.7 CH | 7.43 d (8.5) | 128.7 CH | 6.45 dd (2.1, 8.3) | 130.2 CH |
| 7′′ | 2.43 br d (14.0); 2.69 dd (10.2, 14.0) | 33.7 CH2 | 2.33 br d (14.0); 2.61 dd (10.2, 14.0) | 33.9 CH2 | 3.23 m | 31.4 CH2 | 2.51 m | 23.2 CH2 |
| 8′′ | 3.48 m | 81.2 CH | 3.43 m | 80.9 CH | 4.66 dd (8.3, 9.5) | 91.0 CH | 1.67 t (6.8) | 33.7 CH2 |
| 9′′ | — | 74.0 C | — | 73.9 C | — | 72.5 C | — | 75.1 C |
| 10′′ | 1.14 s | 22.5 CH3 | 1.14 s | 23.0 CH3 | 1.28 s | 25.1 CH3 | 1.20 s | 27.0 CH3 |
| 11′′ | 1.21 s | 26.2 CH3 | 1.19 s | 26.3 CH3 | 1.25 s | 25.4 CH3 | 1.20 s | 27.1 CH3 |
Recorded at 400 MHz.
“m” means overlapped or multiplet with other signals.
Recorded at 100 MHz.
Recorded in CDCl3.
Recorded in methanol-d4.
Fig. 2Selected 1H–1H COSY (blue lines) and HMBC (red arrows) correlations of compounds 1–4.
Fig. 3Experimental ECD spectra of compounds 1–4 in MeOH.
Fig. 4[Mo2(OAc)4] induced ICD spectra of 1 and 2 in DMSO.
Comparison of chemical shifts of 1, 5, and 7 at C-7′′, C-8′′, and C-9′′, respectively, via experimental validations, 13C NMR predictions by ACD/Labs software, and 13C NMR calculations (δ in ppm, in CDCl3)
| Compd no. |
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| 1-(2-Hydroxyphenyl)-3-methylbutane-2,3-diol motif | 2-(2,3-Dihydrobenzofuran-2-yl)propan-2-ol motif | 2,2-Dimethylchroman-3-ol motif | |
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| 7′′ | 33.7 | 31.4 | 32.0 |
| 8′′ | 81.2 | 90.4 | 70.4 |
| 9′′ | 74.0 | 72.5 | 78.0 |
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| 7′′ | 32.0 | 30.1 | 30.8 |
| 8′′ | 79.1 | 88.8 | 69.9 |
| 9′′ | 73.5 | 71.9 | 77.5 |
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| 7′′ | 32.2 | 29.9 | 31.8 |
| 8′′ | 76.0 | 85.3 | 67.1 |
| 9′′ | 70.3 | 70.0 | 76.1 |
Fig. 5Structure revisions of aspernolides D and G, butyrolactone VI and 4′,8′′-diacetoxy butyrolactone VI.
Fig. 6Linear correlations between the calculated and experimental 13C NMR chemical shifts for aspernolide D (up) and 5 (down).
Fig. 7Linear correlations between the calculated and experimental 13C NMR chemical shifts for butyrolactone VI (up) and 7 (down).
Fig. 8Inhibitory effect of compounds 1–10 against NO production in LPS-stimulated RAW264.7 cells. The results are expressed as the mean ± SD from three independent experiments. *p < 0.05, **p < 0.01, ***p < 0.001 as compared to LPS group.