| Literature DB >> 31167439 |
Xueping Ge1, Chunxiao Sun2, Yanyan Feng3, Lingzhi Wang4, Jixing Peng5, Qian Che6, Qianqun Gu7, Tianjiao Zhu8,9, Dehai Li10,11, Guojian Zhang12,13.
Abstract
Five new anthraquinone derivatives, auxarthrols D-H (1-5), along with two known analogues (6-7), were obtained from the culture of the marine-derived fungus Sporendonema casei. Their structures, including absolute configurations, were established on the basis of NMR, HRESIMS, and circular dichroism (CD) spectroscopic techniques. Among them, compound 4 represents the second isolated anthraquinone derivative with a chlorine atom, which, with compound 6, are the first reported anthraquinone derivatives with anticoagulant activity. Compounds 1 and 3 showed cytotoxic activities with IC50 values from 4.5 μM to 22.9 μM, while compounds 1, 3-4, and 6-7 showed promising antibacterial activities with MIC values from 12.5 μM to 200 μM. In addition, compound 7 was discovered to display potential antitubercular activity for the first time.Entities:
Keywords: Sporendonema casei; anthraquinone derivatives; antibacterial activities; cytotoxic activities; marine-derived fungus
Mesh:
Substances:
Year: 2019 PMID: 31167439 PMCID: PMC6627905 DOI: 10.3390/md17060334
Source DB: PubMed Journal: Mar Drugs ISSN: 1660-3397 Impact factor: 5.118
Figure 1Structures of 1–7.
1H NMR data of compounds 1–5 (500 MHz, TMS, δ ppm, J in Hz).
| No. | 1 a | 2 a | 2 b | 3 a | 4 a | 5 a |
|---|---|---|---|---|---|---|
| 1 | 1.86, m | 1.92, d (14.6); | 1.92, d (14.6); | 1.82, d (14.2); | 2.24, d (14.8); | 2.35, dd (15.5); |
| 3 | 3.61, dd (5.7, 3.1) | 3.57, d (3.0) | 3.57, m | 3.46, t (3.0) | 3.61, d (3.6) | 3.46, d (3.7) |
| 4 | 4.22, dd (4.5, 3.1) | 4.43, d (3.0) | 4.43, t (3.5) | 4.39, dd (3.0, 9.7) | 4.69, d (3.6) | 4.57, d (3.7) |
| 6 | 6.79, d (2.4) | 6.35, d (2.5) | 6.35, d (2.5) | 6.34, d (2.4) | 6.82, d (2.5) | 6.42, d (2.4) |
| 8 | 6.83, d (2.4) | 6.64, d (2.5) | 6.64, m | 6.67, d (2.4) | 6.96, d (2.5) | 6.67, dd (2.4, 1.2) |
| 9 | 4.73, s | 4.73, d (9.5) | 4.52, d (8.7) | 4.83, d (1.2) | ||
| 1a | 3.36, (6.0, 1.5) | |||||
| 4a | 2.87, d (9.7) | |||||
| 11 | 3.87, s | 3.80, s | 3.80, s | 3.81, s | 3.88, s | 3.82, s |
| 12 | 1.14, s | 1.20, s | 1.20, s | 1.19, s | 1.27, s | 1.21, s |
| OH-2 | 4.28, s | 5.69, s | 5.69, s | 5.44, s | 6.24, s | |
| OH-3 | 4.43, d (5.7) | 5.50, d (5.3) | 4.81, d (3.0) | 4.91, s | ||
| OH-4 | 5.01, d (4.5) | 4.52, d (3.5) | 4.57, d (3.0) | 4.96, s | ||
| OH-4a | 6.46, m | 5.56, s | 5.57, s | |||
| OH-5 | 12.44, s | 11.97, s | 11.97, s | 12.37, s | 11.15, s | 12.19, s |
| OH-1a | 5.29, s | 5.29, s | 4.91, s | 6.97, s | ||
| OH-9 | 5.30, d (9.5) | 5.46, d (8.7) |
a in DMSO; b in CDCl3.
13C NMR data of compounds 1–7 (125 MHz, DMSO, TMS, δ ppm).
| No. | 1 | 2 | 3 | 4 | 5 |
|---|---|---|---|---|---|
| 1 | 34.2, CH2 | 34.3, CH2 | 38.7, CH2 | 30.7, CH2 | 42.4, CH2 |
| 2 | 72.3, C | 73.5, C | 73.2, C | 73.6, C | 70.3, C |
| 3 | 73.7, CH | 76.9, CH | 75.2, CH | 75.7, CH | 72.9, CH |
| 4 | 71.3, CH | 64.6, CH | 66.1, CH | 63.5, CH | 65.2, CH |
| 5 | 166.1, C | 164.8, C | 163.8, C | 163.6, C | 164.9, C |
| 6 | 106.1, CH | 99.7, CH | 99.5, CH | 107.2, CH | 100.1, CH |
| 7 | 166.3, C | 166.4, C | 166.3, C | 165.7, C | 166.8, C |
| 8 | 105.0, CH | 106.2, CH | 105.8, CH | 106.4, CH | 106.6, CH |
| 9 | 197.3, C | 70.0, CH | 73.9, CH | 190.6, C | 68.6, CH |
| 10 | 200.1, C | 202.4, C | 206.0, C | 194.4, C | 196.6, C |
| 1a | 48.0, CH | 79.3, C | 78.5, C | 80.5, C | 64.8, C |
| 4a | 78.2, C | 78.1, C | 53.3, CH | 72.1, C | 63.3, C |
| 9a | 137.6, C | 148.4, C | 149.0, C | 134.5, C | 145.9, C |
| 10a | 110.1, C | 108.6, C | 110.8, C | 110.0, C | 107.1, C |
| 11 | 56.7, CH3 | 56.1, CH3 | 56.1, CH3 | 56.7, CH3 | 56.2, CH3 |
| 12 | 23.1, CH3 | 27.6, CH3 | 27.8, CH3 | 27.6, CH3 | 26.1, CH3 |
Figure 2Key HMBC and 1H-1H COSY correlations of 1–5.
Figure 3Key NOE correlations of 1–5.
Figure 4Comparison of the calculated and experimental ECD spectra of 1–2, auxarthrols D–E.
Figure 5Comparison of the calculated and experimental ECD spectra of 3–4, auxarthrols F–G.
Figure 6Comparison of the calculated and experimental ECD spectra of 5, auxarthrol H.
Cytotoxic effect of 1 and 3 against eleven human cancer cell lines.
| Comp. | IC50 (μM) | ||||||||||
|---|---|---|---|---|---|---|---|---|---|---|---|
| HL-60 | Hela | HCT-116 | MGC-803 | HO8910 | MDA-MB-231 | SH-SY5Y | PC-3 | BEL-7402 | K562 | L-02 | |
|
| 7.5 | >50.0 | 14.5 | 21.8 | >50.0 | 19.1 | 22.9 | 21.9 | 16.6 | >50.0 | >50.0 |
|
| 4.5 | 10.7 | 7.8 | 17.7 | 18.7 | 10.1 | 17.2 | 20.0 | 21.3 | 16.5 | 22.2 |
| Dox a | 0.1 | 0.6 | 0.2 | 0.2 | 0.4 | 0.2 | 0.1 | 1.0 | 0.4 | 0.3 | 0.4 |
a Dox stands for doxorubicin hydrochloride, which was used as a positive control.
Antimicrobial effect of 1–7 on seven microorganisms.
| Comp. | MIC (μM) | ||||||
|---|---|---|---|---|---|---|---|
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| 1 | 25.0 | 50.0 | 100 | >200 | 50.0 | 100 | 50.0 |
| 2 | >200 | >200 | >200 | >200 | >200 | >200 | >200 |
| 3 | 200 | 200 | 200 | >200 | >200 | >200 | 200 |
| 4 | 50.0 | 25.0 | 25.0 | 200 | 100 | >200 | 100 |
| 5 | >200 | >200 | >200 | >200 | >200 | >200 | >200 |
| 6 | 25.0 | 50.0 | 25.0 | >200 | 25.0 | >200 | 25.0 |
| 7 | 25.0 | 100 | 25.0 | >200 | 25.0 | >200 | 12.5 |
| Positive Control | 3.12 a | 1.56 a | 0.781 a | 1.56 b | 0.781 a | 0.391 a | 1.56 a |
a Ciprofloxacin used as a positive control for bacteria; b Nystatin used as a positive control for Candida albicans.
Anticoagulant activity of 1–7.
| Comp. | 1 | 2 | 3 | 4 | 5 | 6 | 7 | Argatroban b |
|---|---|---|---|---|---|---|---|---|
| Inhibition ratio a | 12.5 | 19.9 | 14.4 | 47.8 | 27.3 | 51.5 | 19.3 | 65.0 |
a Data are expressed as inhibition ratio values (%); b Argatroban was used as a positive control.
Antitubercular activity of 1–7 against AlRa.
| Comp. | 1 | 2 | 3 | 4 | 5 | 6 | 7 | Rifampin b |
|---|---|---|---|---|---|---|---|---|
| MIC a | >20.0 | >20.0 | >20.0 | >20.0 | >20.0 | >20.0 | 20.0 | 1.0 |
a Data are expressed as MIC values (μg/mL); b Rifampin was used as a positive control.