Next Article in Journal
Effects of Formulation on the Palatability and Efficacy of In-Feed Praziquantel Medications for Marine Finfish Aquaculture
Next Article in Special Issue
Deep-Sea Natural Products from Extreme Environments: Cold Seeps and Hydrothermal Vents
Previous Article in Journal
Application of MS-Based Metabolomic Approaches in Analysis of Starfish and Sea Cucumber Bioactive Compounds
 
 
Font Type:
Arial Georgia Verdana
Font Size:
Aa Aa Aa
Line Spacing:
Column Width:
Background:
Article

Homo/Hetero-Dimers of Aromatic Bisabolane Sesquiterpenoids with Neuroprotective Activity from the Fungus Aspergillus versicolor A18 from South China Sea

1
School of Pharmaceutical Sciences, Sun Yat-sen University, Guangzhou 510006, China
2
East China Sea Fisheries Research Institute, Chinese Academy of Fishery Sciences, Shanghai 200090, China
*
Authors to whom correspondence should be addressed.
Submission received: 21 April 2022 / Revised: 9 May 2022 / Accepted: 11 May 2022 / Published: 13 May 2022
(This article belongs to the Special Issue Bioactive Compounds from the Deep-Sea-Derived Microorganisms)

Abstract

:
Chromatographic fractionation of the EtOH extracts of the marine-derived fungus Aspergillus versicolor A18 has led to the isolation of 11 homo/hetero-dimers of aromatic bisabolane sesquiterpenoids including eight diphenyl ether-coupled aromatic bisabolanes (1a/1b and 510) and three homodimers (24), together with their monomers including three aromatic bisabolanes (1113) and two diphenyl ethers (14 and 15). Their structures and absolute configurations were elucidated by extensive spectroscopic analysis including HRESIMS, 1D/2D NMR, calculated ECD, and the optical rotatory data. Among the four new compounds, (+/−)-asperbisabol A (1a/1b), asperbisabol B (2), and asperbisabol C (3), the enantiomers 1a and 1b represent an unprecedented skeleton of diphenyl ether-coupled aromatic bisabolane sesquiterpenoids with a spiroketal core moiety. The neuroprotective effects of selected compounds against sodium nitroprusside (SNP)-induced injury were evaluated in PC12 cells by the MTT assay. Five compounds (1a, 6, and 810) showed remarkable neuroprotective activities at 10 μM, being more active than the positive control edaravone.

1. Introduction

The genus Aspergillus is omnipresent among almost all ecosystems even the circumpolar maritime regions [1]. Previous investigations on Aspergillus genus indicated that it was rich in bioactive secondary metabolites with multifarious and intricate structures such as sesquiterpenoids [2,3], meroterpenoids [4,5], alkaloids [6,7], and polyketides [8]. Some of the natural products isolated from Aspergillus genus possessed cytotoxic, antimicrobial, acetylcholinesterase inhibitory, and PTP1B enzyme inhibitory activities [2,3,4,5,6,7,8], which have attracted great interest of natural chemists. Bisabolanes, a class of sesquiterpenoids possessing diverse skeletons including aromatic monomers and their home/hetero-dimers, are mainly distributed in plant kingdom, marine-derived animals, and fungi [9]. These bisabolane-type sesquiterpenoids have a broad spectrum of biological properties involving antibacterial, anti-inflammatory, cytotoxic, and antidiabetic activities [9].
Within the past decade, our group has reported a series of compounds with neuroprotective effects, such as polyhydroxypregnane glycosides from Cynanchum otophyllum [10], neolignans from Aristolochia fordiana [11], mulberry Diels-Alder-type adducts from Morus alba [12], and prenylated xanthones from Garcinia mangostana [13]. To obtain natural neuroprotective agents, we expanded the coverage of the sources of lead compounds through the in-depth study of marine-derived fungi.
In our ongoing research on novel neuroprotective metabolites from the fungus Aspergillus versicolor A18 from South China Sea, a pair of undescribed enantiomeric spiroketal diphenyl ether-coupled aromatic bisabolane sesquiterpenoids (1a/1b), two new aromatic bisabolane homodimers (2 and 3), as well as 12 known analogues (415) (Figure 1), were isolated from the rice media of the strain A18. It is noteworthy that compound 12 was first isolated as a natural product and its absolute configuration was also assigned. The structures of those compounds were determined by comprehensive spectroscopic data, and the absolute configurations were elucidated by ECD calculations or comparing the ECD spectra with those of correlative known analogues. The neuroprotective effects of selected compounds were evaluated. Herein, we report the isolation, structures elucidation, and neuroprotective activities of those compounds.

2. Results and Discussion

Asperbisabol A (1) was obtained as a colorless oil, whose molecular formula was assigned as C29H34O6 with 13 indices of hydrogen deficiency (IHDs) based on the HRESIMS ion at m/z 501.2254 [M + Na]+ (calcd. for C29H34O6Na 501.2248) and the 13C NMR data. The 1H NMR data (Table 1) showed signals for three hydroxyl groups [δH 3.52, 4.78, and 5.51 (each 1H, s)], three singlet methyls [δH 1.94, 2.10, and 2.23 (each 3H, s)], two doublet methyls [δH 0.91 (6H, d, J = 6.6 Hz)], two olefinic methines [δH 5.53 (1H, t, J = 7.0 Hz) and 6.10 (1H, s)], one 1,2,4-trisubstitutedphenyl [δH 6.62 (1H, d, J = 7.7 Hz), 6.64 (1H, s), and 6.93 (1H, d, J = 7.7 Hz)], and an 1,3,4,5-tetrasubstitutedphenyl [δH 6.26 (1H, s) and 6.33 (1H, s)]. The 13C NMR data of compound 1 (Table 1), in conjunction with DEPT and HSQC spectra, displayed the presence of 29 carbon resonances attributable to one conjugated ketocarbonyl carbon, nine sp2 quaternary carbons including four oxygenated ones, two oxygenated sp3 quaternary carbons, seven sp2 methine, one sp3 methine, four sp3 methylene, and five sp3 methyl. It was obvious from the comparison of the information with the data of the known diphenyl ether-coupled aromatic bisabolane sesquiterpenoid expansol D (7) [14] and from analysis of the 2D NMR data of 1 that asperbisabol A was a heterodimer comprising an aromatic bisabolane unit and a highly variable diphenyl ether moiety, parts a and b, as shown in Figure 2.
The aromatic bisabolane unit (part a) was defined by the analysis of 1H-1H COSY, HMBC, and NOESY correlations. The key HMBC correlations from H3-14 to C-1, C-7, and C-8, from H2-15 to C-3, C-4, and C-5, and from 2-OH to C-1, C-2, and C-3 easily allowed the partial structure (C-8–C-12/13) established by the 1H−1H COSY correlations of H-8/H2-9/H2-10/H-11/H3-12(H3-13), the 1,2,4-trisubstitutedphenyl ring, the olefinic carbon (C-7), the methyl (CH3-14), and the methylene (CH2-15) to form an aromatic bisabolane unit. In addition, the observed NOESY correlation of H-9β and H3-14 defined its Δ7 double bond was a trans-configuration (Figure 3).
The structure of highly variable diphenyl ether moiety (part b) was deduced by the interpretation of HMBC, 13C NMR, and IHDs data. The HMBC correlations from H3-14′ to C-8′, C-9′, and C-13′, from H-9′ to C-10′ and C-11′, and from H-13′ to C-11′ and C-12′ confirmed that the 1,3,4,5-tetrasubstitutedphenyl ring (ring A) was a 5-methylbenzene-1,2,3-triol unit. In the HMBC spectrum, the observed correlations from 4′-OH to C-3′, C-4′, and C-5′, from H3-7′ to C-1′, C-2′, and C-6′, from H-2′ to C-4′, and from H-6′to C-5′ constructed ring B featured with a α,β-unsaturated ketone. In view of 12 of the 13 IHDs accounted for by two phenyls, a six-membered ring, two double bonds, and a ketocarbonyl group, as well as the chemical shift of C-5′ (δC 118.9), C-11′ (δC 132.2), and C-12′ (δC 138.1), we deduced that a five-membered ring (ring C) connected rings A and B to build a spiroketal core moiety. Thus, part b of 1 was a spiroketal skeleton derived from a diphenyl ether. The HMBC correlations from H2-15 to C-3′, C-4′, and C-5′ and from 4′-OH to C-15 established that the aromatic bisabolane unit (part a) and highly variable diphenyl ether moiety (part b) were linked by the C-15–C-4′ bond. Finally, the planar structure of asperbisabol A (1) was elucidated.
In the NOESY spectrum of 1, the observed NOESY correlations of H-15β/H-6′β and 2-OH/10′-OH suggested that the relative configurations of C-4′ and C-5′ were defined as shown in Figure 3. The optical rotatory data of 1 was zero, which indicated that asperbisabol A (1) may be a racemate. Subsequent chiral resolution of 1 by semipreparative HPLC afforded the corresponding enantiomers 1a ( [ α ] D 20 = +37.00) and 1b ( [ α ] D 20 = −26.00). The absolute configurations of this pair of enantiomers were determined by comparison of their experimental ECD spectra with the calculated ECD spectra of (4′R,5′R)-1 and (4‘S,5′S)-1. As shown in Figure 4, the experimental ECD curves of 1a and 1b matched well with the calculated ECD spectra of (4′R,5′R)-1 and (4‘S,5′S)-1, respectively. Therefore, the absolute configurations of 1a (4′R,5′R) and 1b (4‘S,5′S) were unambiguously determined, and given their trivial names (+)-asperbisabol A and (−)-asperbisabol A, respectively.
Compound 2 was obtained as a colorless oil. The molecular formula of 2 was settled as C31H46O6 with 9 IHDs by the HRESIMS ion at m/z 537.3210 [M + Na]+ (calcd. for C31H46O6Na 537.3187). The 1H NMR data (Table 1) displayed the characteristic signals assigned to seven methyls (including one oxygenated), two 1,2,4-trisubstitutedphenyls, and two hydroxyl groups. The 13C NMR data (Table 1) in combination with DEPT and HSQC spectra confirmed seven sp2 quaternary carbons (including one carbonyl and two other oxygenated ones), two oxygenated sp3 quaternary carbons, six sp2 methines, two sp3 methines, seven sp3 methylenes (including an oxygenated), and seven sp3 methyls (including a methoxyl). The 1H NMR and 13C NMR data of 2 closely resembled those of peniciaculin B (4), except for the presence of an additional methoxyl (δH 3.13, δC 50.4). Key HMBC correlation from 7-OMe to C-7 confirmed the position of the methoyl group. The ECD spectrum of compound 2 was similar to that of 4 in terms of positive Cotton effect (CE) from 260 nm to 320 nm and negative CE around 210 nm (Figure S1) [3]. Therefore, the absolute configuration of 2 was also logically established as 7S,7′S and given the trivial name asperbisabol B.
Compound 3 was isolated as a colorless oil and assigned a positive HRESIMS ion at m/z 521.2689 [M + K]+ (calcd. for C30H42O5K 521.2664), which well matched a molecular formula of C30H42O5 with 10 IHDs. Through cumulative analysis of the 1H NMR and 13C NMR data of compounds 3 and 4, it made sense that 3 was a dehydration product of 4. This speculation was supported by the presence of a double bond (δH 5.56; δC 131.6 and 132.3) in 3 rather than an oxygenated sp3 quaternary carbon (δC 78.9) and a sp3 methylene (δH 1.80 and 1.89; δC 43.0) in 4. The HMBC correlations from H3-14 to C-1, C-7, and C-8 further confirmed the location of the double bond. The positive CE from 260 nm to 320 nm and negative CE around 210 nm (Figure S1) [3] unequivocally established the absolute configuration of 3 as 7′S and given the trivial name asperbisabol C.
In addition to the above four new homo/hetero-dimers of aromatic bisabolanes (1a, 1b, 2, and 3), 12 previously described compounds 415 were isolated. They were identified as peniciaculin B (4) [3], expansol E (5) [14], expansol C (6) [14], expansol D (7) [14], expansol A (8) [15], aspertenol A (9) [16], peniciaculin A (10) [3], (Z)-5-(hydroxymethyl)-2-(6′-methylhept-2′-en-2′-yl)phenol (11) [17], (R)-3-hydroxy-4-(2-hydroxy-6-methylheptan-2-yl)benzaldehyde (12) [18], aspergillusene E (13) [19], 3-(3-methoxy-5-methylphenoxy)-5-methylphenol (3-O-methyldiorcinol, 14) [20,21], and 3,3′-dihydroxy-5,5′-dimethyldiphenyl ether (diorcinol, 15) [20,21] by analyzing their NMR data and comparing with those reported in the correlative papers. Among them, 12 was first isolated as a natural product and its absolute configuration was assigned as R by the antipodal CE comparing with 24 (Figure S1).
The neuroprotective effects of 1a, 1b, and 214 against sodium nitrosprusside (SNP, 700 μM) induced injury were evaluated by the MTT assay in PC12 cells. The results of preliminary screening at a concentration of 10 μM (Figure 5A) showed that compounds 1a, 6, and 810 exhibited more neuroprotective activities than that of the positive control edaravone (Eda, a free radical scavenger). Furthermore, these five active compounds have potent effects in a concentration-dependent manner in the range of 2.5–10 μM (Figure 5B).

3. Materials and Methods

3.1. General Experimental Procedures

Optical rotations were measured on an Anton Paar MCP200 polarimeter (Graz, Austria). Circular dichroism spectra and UV spectra were obtained on an Applied Photophysics Chirascan spectrometer (Surrey, UK). HRESIMS were performed on a Shimadzu LCMS-IT-TOF spectrometer (Kyoto, Japan). NMR spectra were measured on Bruker Ascend TM 500 (Bremerhaven, Germany) and Bruker Avance III 400 (Zurich, Switzerland) spectrometer at 25 °C with TMS as the internal standard. Silica gel (100–200, 200–300 and 300–400 mesh, Qingdao Haiyang Chemical Co., Ltd., Qingdao, China), D101 macroporous resin (Donghong Chemical Co., Ltd., Changzhou, China), ODS reversed-phase silica gel (12 nm, S-50 μm, YMC Co., Ltd., Komatsu, Ishikawa, Japan), and Sephadex LH-20 gel (Amersham Biosciences, Shanghai, China) were used for column chromatography (CC). Semi-preparative HPLC was performed with a YMC-pack ODS-A column (10 × 250 mm, S-5 μm), a NanoChrom ChromCoreTM 5-120 C18 column (250 × 10 mm, 5 μm), or a Phenomenex Lux cellulose-2 chiral column (10 × 250 mm, 5 μm, 12 nm) under Shimadzu LC-20 AT equipped with a SPD-M20A PDA detector (Kyoto, Japan). Almost all chemical solvents were of analytical grade (Guangzhou Chemical Reagents Company, Ltd., Guangzhou, China) while acetonitrile (MeCN) was of HPLC grade (Grace Chemical Technology Co., Ltd., Qingdao, China).

3.2. Fungal Material

The fungal strain Aspergillus versicolor A18 was isolated from a surface water sample collected in South China Sea and identified as Aspergillus versicolor on the base of the ITS region (GenBank MT5827511) [22]. The voucher specimen is deposited in East China Sea Fisheries Research Institute.

3.3. Fermentation and Extraction

The strain A. versicolor A18 was cultured on PDA plates (PDA media 24.0 g, agar 18.0 g and sea salt 30.0 g in 1.0 L H2O) at 28 °C for 7 days. The seed medium (PDB media 24.0 g and sea salt 30.0 g in 1.0 L H2O) was inoculated with strain A. versicolor A18 and incubated at 28.0 °C for 3 days on a rotating shaker (180 rpm). For chemical investigations, a large-scale fermentation of A. versicolor A18 was incubated for 28 days at 28 °C in 1.5 L × 40 conical flasks (each flask contained 450.0 g rice and 300.0 mL H2O with 3% salinity). After incubating, every flask was ultrasonically extracted with 4 × 0.4 L 95% EtOH for 30 min. The combined extract was subjected to nanofiltration membrane (300 D) for desalination and concentration. Then total 30 L concentrated solution was evaporated under reduced pressure to yield a dark brown gum, which was redissolved in 2 L water and subsequently extracted three times with petroleum ether (PE, 3 L each time) and five times with EtOAc (3 L each time) to afford PE fraction and EtOAc fraction.

3.4. Isolation and Purification

The EtOAc fraction (62 g) was subjected to macroporous resin column (MeOH/H2O, 3/7→10/0, v/v) to afford four fractions (Frs. A–D). Compound 15 (8.7 mg) was purified by semipreparative HPLC (50% MeCN/H2O, YMC-pack ODS-A column, 3 mL/min, tR 13.8 min) from Fr. C. Fr. D (16 g) was further subjected to CC on silica gel using varying polarities of PE/EtOAc (1/0→0/1, v/v) to afford six subfractions (Frs. D1–D6).
Fr. D5 (1.0 g) was separated by Sephadex LH-20 CC (CH2Cl2/MeOH, 1/1, v/v) and followed by silica gel (CH2Cl2/MeOH, 300/1, v/v) CC to obtain several sub-fractions. From the sub-fraction Fr. D5C, compound 1 was purified by semipreparative HPLC (85% MeCN/H2O, C18 column, 3 mL/min, tR 12.1 min). Subsequently, the chiral resolution of 1 by semipreparative HPLC (60% MeCN/H2O, chiral column, 3 mL/min) yielded (−)-1 (3.9 mg, tR 13.1 min) and (+)-1 (2.8 mg, tR 13.9 min).
Fr. D4 (520 mg) was divided into three fractions (Frs. D4A–D4C) by Sephadex LH-20 (CH2Cl2/MeOH, 1/1, v/v), and Fr. D4C (117 mg) was further purified by CC on silica gel (PE/EtOAc, 10/1, v/v), ODS reversed-phase silica gel (MeOH/H2O, 5/5→3/7, v/v), and semipreparative HPLC (80% MeCN/H2O, YMC-pack ODS-A column, 3 mL/min) to obtain 6 (3.7 mg, tR 14.1 min) and 7 (6.2 mg, tR 15.6 min).
Fr. D3 (1.5 g) was separated by ODS reversed-phase silica gel (MeOH/H2O, 5/5→10/0, v/v) to give seven sub-fractions (Frs. D3A–D3G). Fr. D3C (45 mg) was chromatographed over semipreparative HPLC (65% MeCN/H2O, YMC-pack ODS-A column, 3 mL/min) to obtain 11 (1.1 mg, tR 12.4 min), 14 (3.1 mg, tR 13.2 min), and 12 (1.2 mg, tR 14.2 min). Fr. D3D (45 mg) was subjected to silica gel CC (PE/EtOAc, 20/1→10/1, v/v) and further purified by semipreparative HPLC (65% MeCN/H2O, YMC-pack ODS-A column, 3 mL/min) to give 13 (1.1 mg, tR 20.4 min). Compound 5 was obtained from Fr. D3E (234 mg) by silica gel CC (PE/acetone, 20/1, v/v) and semipreparative HPLC (70% MeCN/H2O, YMC-pack ODS-A column, 3 mL/min, 3.6 mg, tR 22.8 min). Fr. D3F (351 mg) was separated by Sephadex LH-20 (CH2Cl2/MeOH, 1/1, v/v) and silica gel CC was eluted with a gradient solvent system of PE/EtOAc (from 100:0 to 0:100) to yield five sub-fractions (Frs. D3F1–D3F5). Fr. D3F2 (69.1 mg) was further purified by semipreparative HPLC (78% MeCN/H2O, chiral column, 3 mL/min) to obtain 2 (4.8 mg, tR 16.7 min). Compound 3 (2.3 mg, tR 15.9 min) was obtained from Fr. D3F3 (90.1 mg) by semipreparative HPLC (90% MeCN/H2O, C18 column, 3 mL/min). Fr. D3F4 (72.0 mg) was subjected to semipreparative HPLC (90% MeCN/H2O, YMC-pack ODS-A column, 3 mL/min) to obtain 10 (5.1 mg, tR 14.8 min), 9 (2.5 mg, tR 16.5 min), 8 (3.5 mg, tR 19.5 min), and 4 (15.3 mg, tR 20.9 min).
(+)-Asperbisabol A (1a): colorless oil; [ α ] D 20 = +37.00 (c 0.1, MeCN); UV (MeCN): λmax (logε) 209 (1.61), 283 (0.16) nm; ECD (MeCN): λext (Δε) 197 (−4.47), 210 (−14.34), 236 (+6.77), 323 (+3.29) nm; HRESIMS at m/z 501.2254 [M + Na]+ (calcd. for C29H34O6Na, 501.2248) and m/z 477.2279 [M − H] (calcd. for C29H33O6, 477.2283); 1H and 13C NMR data, see Table 1.
(−)-Asperbisabol A (1b): colorless oil; [ α ] D 20 = −26.00 (c 0.1, MeCN); ECD (MeCN): λext (Δε) 197 (+3.11), 209 (+10.82), 236 (−4.74), 323 (−2.34) nm; UV, NMR, and HRESIMS are the same as those of 1a.
Asperbisabol B (2): colorless oil; UV (MeCN): [ α ] D 20 = +3.00 (c 0.1, MeCN); λmax (logε) 195 (3.88), 214 (2.62), 245 (0.69), 286 (0.32) nm; ECD (MeCN): λext (Δε) 192 (+9.21), 213 (−5.55), 297 (+1.75) nm; HRESIMS at m/z 537.3210 [M + Na]+ (calcd. for C31H46O6Na, 537.3187); 1H and 13C NMR data, see Table 1.
Asperbisabol C (3): colorless oil; [ α ] D 20 = +4.00 (c 0.3, MeCN); UV (MeCN): λmax (logε) 224 (3.20), 246 (3.34), 288 (1.48) nm; ECD (MeCN): λext (Δε) 197 (+0.28), 213 (−2.32), 239 (+0.06), 301 (+0.91) nm; HRESIMS at m/z 521.2689 [M + K]+ (calcd. for C30H42O5K, 521.2664); 1H and 13C NMR data, see Table 1.
(R)-3-Hydroxy-4-(2-hydroxy-6-methylheptan-2-yl)benzaldehyde (12): colorless oil; UV (MeCN): λmax (logε) 195 (0.92), 222 (0.65), 254 (0.43) nm; ECD (MeCN): λmax (Δε) 194 (−5.26), 212 (+7.89), 240 (−1.44), 256 (+0.71), 282 (−2.72) nm; 1H and 13C NMR data, see Table S9.

3.5. ECD Calculation for Assigning the Absolute Configurations of 1a and 1b

The absolute configurations of 1a and 1b were determined by quantum chemical calculations of their theoretical ECD spectra. (4′R,5′R)-1, one of the enantiomers for 1, was arbitrarily chosen for theoretical studies. Conformational analyses were first carried out via Monte Carlo searching using molecular mechanism with MMFF force field in the Spartan 18 program. The results showed 20 lowest energy conformers for 1 within an energy window of 2.0 Kcal/mol. These conformers were reoptimized using DFT at the B3LYP/6-31G(d) level in gas phase using the Gaussian 09 program. 11 conformers of 1 (Figure S51) with the relative Gibbs free energies (ΔG) in the range of 0–1.5 Kcal/mol were refined and considered for next step. All the reoptimized conformers were applied for theoretical ECD calculation. The energies, oscillator strengths, and rotational strengths of the first 30 electronic excitations were calculated using the TD-DFT methodology at the M062X/TZVP level in PCM (acetonitrile). The ECD spectra were simulated by the overlapping Gaussian function (σ = 0.40 eV), in which velocity rotatory strengths of the first 18 exited states for 1 were adopted. To get the final ECD spectrum of each compound, the simulated spectra of the lowest energy conformers were averaged according to the Boltzmann distribution theory and their relative Gibbs free energy (ΔG). The theoretical ECD curve of (4′S,5′S)-1 was obtained by directly reversing that of (4′R,5′R)-1.

3.6. Neuroprotective Bioassays

Compounds 1a, 1b, and 214 as well as the positive control edaravone (Aladdin, Shanghai, China) were dissolved in DMSO (Sigma-Aldrich, Shanghai, China) as a stock, and the tested compounds was further diluted by DMEM medium (Gibco, Beijing, China) into three gradient concentrations (2.5, 5, and 10 μM). PC12 cells were digested and seeded into 96-well plates at a density of 5 ×103 cells per well and cultured in DMEM medium with 5% CO2 for 24 h. Then the cell culture medium was replaced by DMEM medium containing different concentrations of compounds for pretreatment for 2 h and then treated with 700 μM SNP (Sigma-Aldrich, Shanghai, China) for another 24 h. About 10 µL of MTT (Beyotime Institute of Biotechnology, Shanghai, China) (5 mg/mL) was added into each well and incubated at 37 °C for 3.5 h. Afterwards, the supernatant was removed and the crystals were dissolved in 100 µL DMSO. The optical absorbance at 570 nm was read with an EPOCH 2 microplate reader (BioTek Devices, San Mateo, CA, USA). The experiments were repeated three times.

4. Conclusions

In conclusion, a total of 16 natural products including four new ones (1a, 1b, 2, and 3) were isolated from the marine-derived fungus Aspergillus versicolor A18. Their structures were identified as diphenyl ether-coupled aromatic bisabolanes (1a/1b and 510), homodimers of aromatic bisabolanes (24), aromatic bisabolanes (1113), and diphenyl ethers (14 and 15). The pair of enantiomeric diphenyl ether-coupled aromatic bisabolanes, (+/−)-asperbisabol A (1a/1b), represented a rare heterodimers characteristic of a spiroketal core moiety, which expanded the structural diversity of this type of bisabolane sesquiterpenoids. Compounds 1a, 6, and 810 showed more potent neuroprotective activity than that of the positive control edaravone, which shed light on the bioactivity evaluation of aromatic bisabolanes.

Supplementary Materials

The following supporting information can be downloaded at: https://0-www-mdpi-com.brum.beds.ac.uk/article/10.3390/md20050322/s1. Tables S1–S5 and S7: The 2D NMR correlations of compounds 1–5 and 8. Tables S6 and S8–S10: The 1D NMR data assignments of compounds 6, 7, and 9–15. Figure S1: ECD spectra of 2–4 and 12. Figures S2–S23: NMR and HRESIMS spectra of 1–3. Figures S24–S56: NMR spectra of 4–15. Figure S57, Tables S11 and S12: The ECD calculation section.

Author Contributions

Investigation, H.-Z.W., J.-Y.Z., F.-Y.Y. and Z.-Y.T.; software, Y.C.; fungus resources, X.-Q.T. and C.-Q.F.; writing—original draft preparation, H.-Z.W.; writing—review and editing, G.-H.T. and C.-Q.F.; supervision, G.-H.T.; project administration, G.-H.T. and C.-Q.F.; funding acquisition, S.Y., C.-Q.F. and G.-H.T. All authors have read and agreed to the published version of the manuscript.

Funding

This work was supported by the Southern Marine Science and Engineering Guangdong Laboratory (Zhuhai) (No. SML2021SP301), Shanghai Sailing Program (No. 20YF1459800), the National Natural Science Foundation of China (Nos. 81973203 and 81973195), the Guangdong Basic and Applied Basic Research Foundation, China (No. 2020A1515010841), the Open Program of Shenzhen Bay Laboratory (No. SZBL2021080601007), and the Key-Area Research and Development Program of Guangdong Province, China (No. 2020B1111110003).

Data Availability Statement

Not applicable.

Conflicts of Interest

The authors declare no conflict of interest.

References

  1. Sun, C.; Zhang, Z.; Ren, Z.; Yu, L.; Zhou, H.; Han, Y.; Mudassir, S.; Che, Q.; Zhang, G.; Li, D.; et al. Antibacterial Cyclic Tripeptides from Antarctica-Sponge-Derived Fungus Aspergillus insulicola HDN151418. Mar. Drugs 2020, 18, 532. [Google Scholar] [CrossRef] [PubMed]
  2. Sun, L.-L.; Shao, C.-L.; Chen, J.-F.; Guo, Z.-Y.; Fu, X.-M.; Chen, Y.-Y.; Li, R.; de Voogd, N.J.; She, Z.-G.; Lin, Y.-C.; et al. New Bisabolane Sesquiterpenoids from a Marine-Derived Fungus Aspergillus sp. Isolated from The Sponge Xestospongia testudinaria. Bioorg. Med. Chem. Lett. 2012, 22, 1326–1329. [Google Scholar] [CrossRef] [PubMed]
  3. Li, X.-D.; Li, X.-M.; Xu, G.-M.; Zhang, P.; Wang, B.-G. Antimicrobial Phenolic Bisabolanes and Related Derivatives from Penicillium aculeatum SD-321, a Deep Sea Sediment-Derived Fungus. J. Nat. Prod. 2015, 78, 844–849. [Google Scholar] [CrossRef] [PubMed]
  4. Prompanya, C.; Dethoup, T.; Bessa, L.J.; Pinto, M.M.M.; Gales, L.; Costa, P.M.; Silva, A.M.S.; Kijjoa, A. New Isocoumarin Derivatives and Meroterpenoids from the Marine Sponge-Associated Fungus Aspergillus similanensis sp. nov. KUFA 0013. Mar. Drugs 2014, 12, 5160–5173. [Google Scholar] [CrossRef] [PubMed]
  5. Wu, T.; Salim, A.A.; Capon, R.J. Millmerranones A−F: A Meroterpene Cyclic Carbonate and Related Metabolites from the Australian Fungus Aspergillus sp. CMB-MRF324. Org. Lett. 2021, 23, 8424–8428. [Google Scholar] [CrossRef] [PubMed]
  6. Wei, X.; Su, J.-C.; Hu, J.-S.; He, X.-X.; Lin, S.-J.; Zhang, D.-M.; Ye, W.-C.; Chen, M.-F.; Lin, H.-W.; Zhang, C.-X. Probing Indole Diketopiperazine-Based Hybrids as Environmental Induced Products from Aspergillus sp. EGF 15-0-3. Org. Lett. 2022, 24, 158–163. [Google Scholar] [CrossRef] [PubMed]
  7. Ye, G.; Huang, C.; Li, J.; Chen, T.; Tang, J.; Liu, W.; Long, Y. Isolation, Structural Characterization and Antidiabetic Activity of New Diketopiperazine Alkaloids from Mangrove Endophytic Fungus Aspergillus sp. 16-5c. Mar. Drugs 2021, 19, 402. [Google Scholar] [CrossRef]
  8. Qin, X.; Huang, J.; Zhou, D.; Zhang, W.; Zhang, Y.; Li, J.; Yang, R.; Huang, X. Polyketide Derivatives, Guhypoxylonols A–D from a Mangrove Endophytic Fungus Aspergillus sp. GXNU-Y45 That Inhibit Nitric Oxide Production. Mar. Drugs 2022, 20, 5. [Google Scholar] [CrossRef]
  9. Shu, H.-Z.; Peng, C.; Bu, L.; Guo, L.; Liu, F.; Xiong, L. Bisabolane-Type Sesquiterpenoids: Structural Diversity and Biological Activity. Phytochemistry 2021, 192, 112927. [Google Scholar] [CrossRef]
  10. Zhao, Z.-M.; Sun, Z.-H.; Chen, M.-H.; Liao, Q.; Tan, M.; Zhang, X.-W.; Zhu, H.-D.; Pi, R.-B.; Yin, S. Neuroprotective Polyhydroxypregnane Glycosides from Cynanchum otophyllum. Steroids 2013, 78, 1015–1020. [Google Scholar] [CrossRef]
  11. Tang, G.-H.; Chen, Z.-W.; Lin, T.-T.; Tan, M.; Gao, X.-Y.; Bao, J.-M.; Cheng, Z.-B.; Sun, Z.-H.; Huang, G.; Yin, S. Neolignans from Aristolochia fordiana Prevent Oxidative Stress-Induced Neuronal Death through Maintaining the Nrf2/HO-1 Pathway in HT22 Cells. J. Nat. Prod. 2015, 78, 1894–1903. [Google Scholar] [CrossRef] [PubMed]
  12. Xia, C.-L.; Tang, G.-H.; Guo, Y.-Q.; Xu, Y.-K.; Huang, Z.-S.; Yin, S. Mulberry Diels-Alder Type Adducts from Morus alba as Multi-Targeted Agents for Alzheimer’s Disease. Phytochemistry 2019, 157, 82–91. [Google Scholar] [CrossRef] [PubMed]
  13. Tang, Z.-Y.; Pan, Y.-H.; Zhang, J.-S.; Yin, S.; Tang, G.-H. Prenylated Xanthones from the Pericarps of Garcinia mangostana. Acta Sci. Nat. Univ. Sunyatseni 2020, 59, 21–32. [Google Scholar]
  14. Wang, J.; Lu, Z.; Liu, P.; Wang, Y.; Li, J.; Hong, K.; Zhu, W. Cytotoxic Polyphenols from the Fungus Penicillium expansum 091006 Endogenous with the Mangrove Plant Excoecaria agallocha. Planta Med. 2012, 78, 1861–1866. [Google Scholar]
  15. Lu, Z.; Zhu, H.; Fu, P.; Wang, Y.; Zhang, Z.; Lin, H.; Liu, P.; Zhuang, Y.; Hong, K.; Zhu, W. Cytotoxic Polyphenols from the Marine-Derived Fungus Penicillium expansum. J. Nat. Prod. 2010, 73, 911–914. [Google Scholar] [CrossRef]
  16. Liu, L.; Liu, R.; Buddha, B.B.; Bao, L.; Han, J.; Wang, L.; Liu, H. New Phenolic Bisabolane Sesquiterpenoid Derivatives with Cytotoxicity from Aspergillus tennesseensis. J. Antibiot. 2018, 71, 538–542. [Google Scholar] [CrossRef]
  17. Sumarah, M.W.; Kesting, J.R.; Sorensen, D.; Miller, J.D. Antifungal Metabolites from Fungal Endophytes of Pinus strobus. Phytochemistry 2011, 72, 1833–1837. [Google Scholar] [CrossRef]
  18. Nukina, M.; Sato, Y.; Ikeda, M.; Sassa, T. Sydonol, and New Fungal Morphogenic Substance Produced by an Unidentified Aspergillus sp. Agric. Biol. Chem. 1981, 45, 789–790. [Google Scholar] [CrossRef]
  19. Wu, J.-S.; Yao, G.-S.; Shi, X.-H.; Rehman, U.R.; Xu, Y.; Fu, X.-M.; Zhang, X.-L.; Liu, Y.; Wang, C.-Y. Epigenetic Agents Trigger the Production of Bioactive Nucleoside Derivatives and Bisabolane Sesquiterpenes from the Marine-Derived Fungus Aspergillus versicolor. Front. Microbiol. 2020, 11, 85. [Google Scholar] [CrossRef] [Green Version]
  20. Lan, W.-J.; Liu, W.; Liang, W.-L.; Xu, Z.; Le, X.; Xu, J.; Lam, C.-K.; Yang, D.-P.; Li, H.-J.; Wang, L.-Y. Pseudaboydins A and B: Novel Isobenzofuranone Derivatives from Marine Fungus Pseudallescheria boydii Associated with Starfish Acanthaster planci. Mar. Drugs 2014, 12, 4188–4199. [Google Scholar] [CrossRef] [Green Version]
  21. Julianti, E.; Abrian, I.A.; Wibowo, M.S.; Azhari, M.; Tsurayya, N.; Izzati, F.; Juanssilfero, A.B.; Bayu, A.; Rahmawati, S.I.; Putra, M.Y. Secondary Metabolites from Marine-Derived Fungi and Actinobacteria as Potential Sources of Novel Colorectal Cancer Drugs. Mar. Drugs 2022, 20, 67. [Google Scholar] [CrossRef] [PubMed]
  22. Li, H.; Fan, C.-Q.; Chen, S.; Zhou, J.; Zhou, J.-F.; Lu, Y.-N.; Ma, L.-Y.; Tian, X.-Q. Microbial Diversity and Activity of Some Fungi in the Surface Seawater of Northern South China Sea. Mar. Fish. 2022. [Google Scholar] [CrossRef]
Figure 1. Chemical structures of compounds 115.
Figure 1. Chemical structures of compounds 115.
Marinedrugs 20 00322 g001
Figure 2. Key 1H–1H COSY and HMBC correlations of 13.
Figure 2. Key 1H–1H COSY and HMBC correlations of 13.
Marinedrugs 20 00322 g002
Figure 3. Key NOESY correlations of 1.
Figure 3. Key NOESY correlations of 1.
Marinedrugs 20 00322 g003
Figure 4. Experimental ECD spectra of 1a (red solid line) and 1b (blue solid line) and B3LYP/6-31G(d) calculated ECD spectra of (4′R,5′R)-1 (red dash line) and (4′S,5′S)-1 (blue dash line).
Figure 4. Experimental ECD spectra of 1a (red solid line) and 1b (blue solid line) and B3LYP/6-31G(d) calculated ECD spectra of (4′R,5′R)-1 (red dash line) and (4′S,5′S)-1 (blue dash line).
Marinedrugs 20 00322 g004
Figure 5. Neuroprotective activity assay: (A) Effects of compounds 1a, 1b, and 214 (10 μM) on SNP-induced neurotoxicity in PC12 cells; (B) effects of active compounds 1a, 6, and 811 on SNP-induced neurotoxicity in PC12 cells in the range of 2.5–10 μM. *** p < 0.01 compared with the SNP group; ** p < 0.05 compared with the SNP group.
Figure 5. Neuroprotective activity assay: (A) Effects of compounds 1a, 1b, and 214 (10 μM) on SNP-induced neurotoxicity in PC12 cells; (B) effects of active compounds 1a, 6, and 811 on SNP-induced neurotoxicity in PC12 cells in the range of 2.5–10 μM. *** p < 0.01 compared with the SNP group; ** p < 0.05 compared with the SNP group.
Marinedrugs 20 00322 g005
Table 1. 1H NMR and 13C NMR data for compounds 13 in CDCl3 (δ in ppm).
Table 1. 1H NMR and 13C NMR data for compounds 13 in CDCl3 (δ in ppm).
Position1 a2 b3 a
δC, TypeδH (J in Hz)δC, TypeδH (J in Hz)δC, TypeδH (J in Hz)
1129.9, C 128.0, C 131.1, C
2151.6, C 156.1, C 152.2, C
3117.4, CH6.64, s116.4, CH6.92, s 115.0, CH6.98, s
4134.3, C 137.3, C 136.2, C
5122.4, CH6.62, d (7.7)119.1, CH6.89, d (7.9)119.9, CH6.93, d (7.8)
6127.9, CH6.93, d (7.7)127.7, CH7.00, d (7.9)128.6, CH7.07, d (7.8)
7131.7, C 82.9, C 131.6, C
8132.0, CH5.53, t (7.0)40.2, CH21.82, m
1.93, m
132.3, CH5.56, t (7.1)
926.5, CH22.20, q (8.0)21.8, CH21.33, m26.5, CH22.22, q (7.5)
1038.7, CH21.32, q (7.5)39.1, CH21.14, m38.7, CH21.33, m
1127.9, CH1.60, m27.9, CH1.50, m27.9, CH1.60, m
1222.6, CH30.91, d (6.6)22.7, CH30.83, d (6.6)22.7, CH30.93, d (6.6)
1322.6, CH30.91, d (6.6)22.8, CH30.84, d (6.6)22.7, CH30.93, d (6.6)
1418.0, CH31.94, s22.4, CH31.58, s18.0, CH31.98, s
1540.3, CH22.94, d (13.4)
3.31, d (13.4)
66.2, CH25.27, s66.4, CH25.27, s
1′157.1, C 134.5, C 134.5, C
2′124.0, CH6.10, s156.3, C 156.3, C
3′197.6, C 119.2, CH7.56, s119.0, CH7.55, s
4′81.8, C 130.7, C 130.7, C
5′118.9, C 120.8, CH7.52, d (8.2)120.8, CH7.52, d (8.2)
6′42.0, CH23.01, d (19.1)
3.14, d (19.0)
126.4, CH7.05, d (8.2)126.4, CH7.04, d (8.1)
7′24.3, CH32.10, s79.2, C 79.2, C
8′132.2, C 43.1, CH21.81, m
1.90, m
43.1, CH21.79, m
1.91, m
9′102.4, CH6.33, s21.8, CH21.29, m21.8, CH21.28, m
10′148.6, C 39.3, CH21.14, m39.1, CH21.14, m
11′132.2, C 27.9, CH1.50, m27.9, CH1.49, m
12′138.1, C 22.7, CH30.83, d (6.6)22.7, CH30.82, d (6.6)
13′111.3, CH6.26, s22.7, CH30.83, d (6.6)22.7, CH30.83, d (6.6)
14′21.5, CH32.23, s29.3, CH31.66, s29.3, CH31.66, s
15′ 166.3, C 166.3, C
2-OH 5.51, s 8.88, s
2′-OH 9.30, s 9.30, s
4′-OH 3.52, s
10′-OH 4.78, s
7-OMe 50.6, CH33.22, s
a Measured at 500 MHz. b Measured at 400 MHz.
Publisher’s Note: MDPI stays neutral with regard to jurisdictional claims in published maps and institutional affiliations.

Share and Cite

MDPI and ACS Style

Weng, H.-Z.; Zhu, J.-Y.; Yuan, F.-Y.; Tang, Z.-Y.; Tian, X.-Q.; Chen, Y.; Fan, C.-Q.; Tang, G.-H.; Yin, S. Homo/Hetero-Dimers of Aromatic Bisabolane Sesquiterpenoids with Neuroprotective Activity from the Fungus Aspergillus versicolor A18 from South China Sea. Mar. Drugs 2022, 20, 322. https://0-doi-org.brum.beds.ac.uk/10.3390/md20050322

AMA Style

Weng H-Z, Zhu J-Y, Yuan F-Y, Tang Z-Y, Tian X-Q, Chen Y, Fan C-Q, Tang G-H, Yin S. Homo/Hetero-Dimers of Aromatic Bisabolane Sesquiterpenoids with Neuroprotective Activity from the Fungus Aspergillus versicolor A18 from South China Sea. Marine Drugs. 2022; 20(5):322. https://0-doi-org.brum.beds.ac.uk/10.3390/md20050322

Chicago/Turabian Style

Weng, Han-Zhuang, Jun-Yu Zhu, Fang-Yu Yuan, Zhuo-Ya Tang, Xiao-Qing Tian, Ye Chen, Cheng-Qi Fan, Gui-Hua Tang, and Sheng Yin. 2022. "Homo/Hetero-Dimers of Aromatic Bisabolane Sesquiterpenoids with Neuroprotective Activity from the Fungus Aspergillus versicolor A18 from South China Sea" Marine Drugs 20, no. 5: 322. https://0-doi-org.brum.beds.ac.uk/10.3390/md20050322

Note that from the first issue of 2016, this journal uses article numbers instead of page numbers. See further details here.

Article Metrics

Back to TopTop