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Article

New Cerebroside and Nucleoside Derivatives from a Red Sea Strain of the Marine Cyanobacterium Moorea producens

by
Diaa T.A. Youssef
1,*,
Sabrin R.M. Ibrahim
2,3,
Lamiaa A. Shaala
4,5,
Gamal A. Mohamed
1,6 and
Zainy M. Banjar
7
1
Department of Natural Products, Faculty of Pharmacy, King Abdulaziz University, Jeddah 21589, Saudi Arabia
2
Department of Pharmacognosy and Pharmaceutical Chemistry, College of Pharmacy, Taibah University, Al Madinah Al Munawwarah 30078, Saudi Arabia
3
Department of Pharmacognosy, Faculty of Pharmacy, Assiut University, Assiut 71526, Egypt
4
Natural Products Unit, King Fahd Medical Research Center, King Abdulaziz University, Jeddah 21589, Saudi Arabia
5
Suez Canal University Hospital, Suez Canal University, Ismailia 41522, Egypt
6
Department of Pharmacognosy, Faculty of Pharmacy, Al-Azhar University, Assiut Branch, Assiut 71524, Egypt
7
Department of Clinical Biochemistry, Faculty of Medicine, King Abdulaziz University, Jeddah 21589, Saudi Arabia
*
Author to whom correspondence should be addressed.
Molecules 2016, 21(3), 324; https://doi.org/10.3390/molecules21030324
Submission received: 16 January 2016 / Revised: 1 March 2016 / Accepted: 1 March 2016 / Published: 9 March 2016
(This article belongs to the Collection Bioactive Compounds)

Abstract

:
In the course of our ongoing efforts to identify marine-derived bioactive compounds, the marine cyanobacterium Moorea producens was investigated. The organic extract of the Red Sea cyanobacterium afforded one new cerebroside, mooreaside A (1), two new nucleoside derivatives, 3-acetyl-2′-deoxyuridine (2) and 3-phenylethyl-2′-deoxyuridine (3), along with the previously reported compounds thymidine (4) and 2,3-dihydroxypropyl heptacosanoate (5). The structures of the compounds were determined by different spectroscopic studies (UV, IR, 1D, 2D NMR, and HRESIMS), as well as comparison with the literature data. Compounds 15 showed variable cytotoxic activity against three cancer cell lines.

1. Introduction

Nucleosides and cerebrosides are found in both terrestrial and marine organisms. Cerebrosides are composed of a hydrophobic part named ceramide, which is linked to one sugar moiety [1]. Cerebrosides play an important role in major cellular processes including growth, morphogenesis and cell differentiation. They also affect cell signaling by controlling the assembly and specific activities of plasma membrane proteins [2,3]. Nucleosides are derivatives of glycosylamines, which are central metabolites in all life forms [4]. Nucleotides, the building block of DNA and RNA are composed mainly of nucleosides with at least one phosphate group. Nucleoside-derived compounds are used effectively in treatment of tumors, viral infections and malignant neoplasms [5,6].
Marine cyanobacteria are vital producers of diverse chemical entities with significant bioactivities [7,8,9,10]. The genus Moorea (formerly Lygnbya) [11] has been proven to be a rich source for novel bioactive compounds of different classes [11,12]. Cyanobacteria derived compounds display a wide range of biological activities including those that are antimicrobial, antiproliferative, anticancer, antifeedant, antifungal, and anti-inflammatory [13,14,15,16,17]. Previous work on the Red Sea cyanobactrium Moorea producens revealed the presence of nitrogen-containing compounds, polyketides and peptides [16,17]. In continuation of our ongoing interest to allocate new bioactive compounds from Red Sea marine cyanobacteria [16,17,18,19], we here focus on the Red Sea strain of the cyanobacterium Moorea producens. In this paper, we reported the isolation and structure determination of a new cerebroside, mooreaside A (1), two new nucleoside derivatives, 3-acetyl-2′-deoxyuridine (2) and 3-phenylethyl-2′-deoxyuridine (3), along with the known compounds thymidine (4) and 2,3-dihydroxypropyl heptacosanoate (5) from the organic extract of the marine cyanobacterium Moorea producens. The structures of the compounds were determined using different spectroscopic techniques. The cytotoxic activity of the compounds against three cancer cell lines will be discussed.

2. Results and Discussion

2.1. Purification of Compounds 15

Samples of M. producens were extracted with a mixture of MeOH/CH2Cl2 (2:1). The organic extract was subjected to chromatographic separation on normal SiO2, Sephadex LH-20, and RP-18 columns to provide three new compounds 13 and two known compounds 4 and 5 (Figure 1). The isolated compounds were evaluated for their cytotoxic activity.

2.2. Structure Elucidation of Compound 1

Compound 1 (Figure 1) was obtained as a colorless amorphous powder. Its molecular formula was suggested as C48H93NO8 on the basis of the HRESIMS quasi-molecular ion peak at m/z 812.6982 [M + H]+ and 1H- (Figures S1–S3) and 13C-NMR (Figures S4 and S5) spectral analyses, requiring three degrees of unsaturation. Its IR spectrum showed characteristic absorption bands at 3435 (hydroxyl), 3320 and 1635 (amide), 3005 and 960 (olefinic), and 1150 (C–O) cm−1, suggesting the cerebroside nature of 1 [20,21,22,23]. The 1H-NMR spectrum of 1 showed two signals at δH 5.35 (dt, J = 15.3, 7.6 Hz, H-5) and 5.37 (dt, J = 15.3, 7.1 Hz, H-6) in 1H-NMR spectrum characteristic for the presence of a di-substituted olefinic moiety (Table 1) which was supported y COSY correlation (Figure S6). These protons correlated to the carbon signals at δC 129.9 and 128.8, respectively, in the HSQC spectrum (Figure S7). The trans (E) configuration of the double bond was proven by the large vicinal coupling constant value (J5,6 = 15.3 Hz) and the chemical shifts of the carbons next to the double bond at δH 32.2 (C-4) and 32.0 (C-7) [24,25,26]. The location of the olefinic moiety at C-6/C-7 was established based on the HMBC cross peaks from H-5 to C-3, C-4, and C-7 and from H-6 to C-4, C-5, and C-7 (Figure S8). In the 1H, 13C, and multiplicity-edited HSQC spectra, the signals at δH 4.28 (d, J = 7.7 Hz, H-1′′)/δC 104.0 (C-1′′) revealed the presence of a β-glucopyranoside moiety. This was also confirmed by the ESIMS fragment ion peak at m/z 633 [MH − Glc]+. The attachment of the glucose moiety at C-1 was established by the downfield shift of C-1 (δC 68.5) and HMBC correlation of H-1′′ (δH 4.28) with C-1. Moreover, the 1H-NMR spectrum of 1 showed signals at δH 3.61 (m, H-3), 3.97 (m, H-2), 3.91 and 3.74 (each m, H-1) attributable to oxymethine, NH-bonded methine, and oxymethylene groups, respectively. They correlated with the carbon signals at 73.4 (C-3), 59.3 (C-2), and 68.5 (C-1) in the HSQC spectrum. 1H-1H COSY cross peaks were observed between the NH proton (δH 7.51) and H-2, which coupled to H-1 and H-3, suggesting the presence of hydroxyl group in the long chain base. This was further confirmed by the HMBC correlations of H-1 to C-2 and C-3, H-2 to C-1, C-3, and C-4, H-3 to C-1 and C-2, and 2-NH to C-2 and C-3 (Figure 2). Comparing 13C-NMR spectrum of 1 with those of glucosyl-erythro-ceramide and glucosyl-threo-ceramide, proved the erythro configuration at C-2 and C-3 in the sphingosine part of 1 [27,28,29,30,31,32]. The length of the fatty acid chain (C-1′→C-25′) and base chain (C-1→C-17) was determined by the ESIMS. The EIMS spectrum of 1 showed characteristic fragment ion peaks at m/z 380 [CH3(CH2)23CONH]+, 365 [CH3(CH2)23CO]+, 337 [CH3(CH2)23]+, 225 [CH3(CH2)10-CH=CH-CH2(CHOH)]+, 181 [CH3(CH2)10-CH=CH]+, and 155 [CH3(CH2)10]+ (Figure 3), supporting the chain lengths of 1. Methanolysis of 1 gave long chain base (LCB) and fatty methyl ester (FAME). The FAME in the n-hexane layer was identified as pentacosanoic acid methyl ester based on the GCMS molecular ion peak at m/z 396 [M]+. The LCB showed an EIMS molecular ion peak at m/z 285 [M]+, corresponding to (2S,3R,E)-2-aminoheptadec-5-ene-1,3-diol. Based on the above evidence and discussion, compound 1 was assigned as N-((2S,3R,5E)-3-hydroxy-1-O-((β-d-glucopyranosyl)heptadec-5-en-2-yl)pentacosanamide. Compound 1 was generically named mooreaside A.

2.3. Structure Elucidation of Compound 2

Compound 2 (Figure 1) was obtained as a white powder. Its HRESIMS gave a quasi-molecular ion peak at m/z 271.0927 [M + H]+, consistent with a molecular formula C11H14N2O6, requiring six degrees of unsaturation. The IR spectrum of 2 showed absorption bands at 3394 (hydroxyl) and 1693 (amide carbonyl) cm−1. These data in conjunction with characteristic UV absorption bands at λmax 253 and 268 nm along with 1H NMR spectrum (Figures S9–S11) suggested the presence of uracil moiety in 2. The 13C (Figure S12) and multiplicity-edited HSQC (Figure S13) spectra of 2 showed signals for 11 carbons including one methyls, two methylenes, five methines, and three quaternary carbonyls at δC 151.7 (C-2), 162.8 (C-4), and 183.4 (C-8). The 1H-1H COSY spectrum (Table 2) showed two ortho-coupled protons at δH 5.69 (d, J = 8.5 Hz, H-5) and 7.98 (d, J = 8.5 Hz, H-6). These protons correlated to the carbon signals at δC 102.6 and 142.5, respectively in the HSQC, indicating the presence of uracil moiety in 2. This was confirmed by the HMBC (Figure S14) cross peaks from H-5 to C-4 and C-6 and from H-6 to C-2 and C-4. Moreover, the 1H- and 13C-NMR signals at δH 6.27 (t, J = 6.8 Hz, H-1′)/δC 86.6 (C-1′), 2.28 (m, H2-2′)/41.4 (C-1′), 4.38 (m, H-3′)/72.2 (C-3′), 3.89 (m, H-4′)/89.0 (C-4′), and 3.75 (m, H-5′a) and 3.71 (m, H-5′b)/62.8 (C-5′) supported the presence of 2′-deoxyribose moiety [33] in 2. The connectivity of this moiety at N-1 of the uracil moiety was established by the HMBC cross peaks from H-6 to C-1′ and from H-1′ to C-2 and C-6. Furthermore, signals for an acetyl group at δH 1.95 (3H, s, H-2′′)/δC 23.5 (C-2′′) and 183.4 (qC, C-1′′) were observed [34]. This was confirmed by the ESIMS fragment ion peak at m/z 228 [MH – COCH3]+. Based on the 13C chemical shifts, the acetyl group was assigned at N-3 of the uracil moiety, completing the molecular formula of 2 and the degrees of unsaturation. Consequently, 2 was assigned as 3-acetyl-2′-deoxyuridine and is reported here as a new natural product.

2.4. Structure Elucidation of Compound 3

Compound 3 (Figure 1) was obtained as white amorphous powder with a molecular formula C17H20N2O5 as determined from its HRESIMS quasi-molecular ion peak at m/z 333.1446 [M + H]+, requiring nine degrees of unsaturation. The 1D and 2D-NMR (Figures S15–S20) spectral data (Table 2) of 3 were quite similar to those of 2 except the absence of the signals associated with acetyl group at N-3. Instead, new signals at δHC 7.35 (2H, d, J = 8.5 Hz, H-5′′,7′′)/130.0 (C-5′′,7′′), 7.27 (2H, brd, J = 8.5 Hz, H-4′′,8′′)/129.8 (C-4′′,8′′), 7.25 (1H, t, J = 8.5 Hz, H-6′′)/128.3 (C-6′′), 2.95 (2H, t, J = 7.6 Hz, H-2′′)/34.7 (C-2′′), and 3.16 (2H, t, J = 7.6 Hz, H-1′′)/34.7 (C-1′′) were observed. The signals suggested the presence of a N-bonded phenylethyl moiety. This was established by 1H-1H COSY cross peaks, and further confirmed by HMBC correlations (Figure 2) from H-2′′ to C-4′′/C-8′′ and C-1′′, and from H-1′′ to C-2′′ and C-3′′. The HMBC cross peaks of H-1′′/C-2 and H-1′′/C-4 supported the placement of phenylethyl moiety at N-3. Moreover, the ESIMS of 2 gave a characteristic fragment ion peak at m/z 228 [MH − CH2CH2C6H5]+, indicating the loss of a phenylethyl moiety [35]. Thus, compound 3 was assigned as 3-phenylethyl-2′-deoxyuridine and is considered a new natural product.
The known compounds were identified as thymidine (4) [36] and 2,3-dihydroxypropyl heptacosanoate (5) [37,38] by analysis of their spectroscopic data and comparison with those in the literature.
The compounds were evaluated for their cytotoxic activities against three cancer cell lines, including colorectal carcinoma (HCT-116, ATCC CCL-247), hepatocellular carcinoma (HepG2, ATCC HB-8065), and breast cancer (MCF-7, ATCC HTB-22). Compounds 13 showed moderate activity towards MCF-7 cancer cell line. Meanwhile, they were inactive towards HCT-116 and HepG2 cancer cell lines (Table 3).

3. Experimental Section

3.1. General Experimental Procedures

Optical rotations were measured on a JASCO DIP-370 digital polarimeter (Jasco Co., Tokyo, Japan) at 25 °C at the sodium D line (589 nm). UV spectra were recorded on a Hitachi 300 spectrometer (Hitachi High-Technologies Corporation, Kyoto, Japan). The IR spectra were acquired with a Shimadzu Infrared-400 spectrophotometer (Shimadzu, Kyoto, Japan). EIMS was recorded on a JEOL the mass route JMS.600H mass spectrometer (JEOL USA, Inc., Peabody, MA, USA). HRESIMS spectra were performed on a Micromass Qtof 2 mass spectrometer (Bruker, Rheinstetten, Germany). GCMS analysis was performed on GCMS Hewlett-Packard 5890 GC (Hewlett-Packard, Wilmington, DE, USA) equipped with a mass-selective detector MSD 5970 MS, a split injector and a fused-silica HP-5 column (25 m × 0.2 mm; i.d. 0.33 mm film); column temp. 230 °C, carrier N2, flow rate 30 mL/min. NMR spectra were determined on Bruker Ascend™ 850 (850 MHz) (Bruker BioSpin, Billerica, MA, USA) using CD3OD and CDCl3 as solvent. The HPLC separation was performed on a RP-18, 250 × 10 mm, 5 μm Phenomenex Luna column using H2O/ACN as mobile phase, detected at 220 nm with a flow rate of 2.0 mL/min. Column chromatographic separations were performed on SiO2 60 (0.04–0.063 mm, Merck, Darmstadt, Germany), Sephadex LH-20 (0.25–0.1 mm, Merck), and RP-18 (0.04–0.063 mm, Merck). Pre-coated SiO2 60 F254 plates (Merck) were used for TLC. Compounds were detected by UV absorption at λmax 255 and 366 nm followed by spraying with p-anisaldehyde/H2SO4 reagent and heating at 110 °C for 1–2 min.

3.2. Biological Materials

The marine cyanobacterium Moorea producens was collected from the Red Sea by hand at 1 m depth near Jeddah, Saudi Arabia. The cyanobacterium was identified by Dr. Ali Gab-Alla, Faculty of Science of Suez Canal University. A voucher sample was kept at Department of Natural Products and Alternative Medicine, Faculty of Pharmacy, King Abdulaziz University under the registration code No. 2013-LM5.

3.3. Extraction and Purifications of Compounds 15

The freeze-dried cyanobacterium M. producens (35 g) was extracted at room temperature with a mixture of MeOH/CH2Cl2 (2:1, 1 L × 4). The combined extracts were evaporated under reduced pressure to give a greenish organic extract. The extract (980 mg) was subjected to flash SiO2 column using n-hexane/EtOAc/MeOH gradients to give 7 fractions (F1–F7). Fraction F2 (n-hexane/EtOAc 8:2, 65 mg) was chromatographed over SiO2 column (35 g × 50 cm × 2 cm) using n-hexane/EtOAc (97:3 to 90:10) to give impure 5, which was purified by C18 semi-preparative HPLC column using 30% ACN to give 5 (5.3 mg). Fraction F4 (55 mg, EtOAc) was chromatographed over SiO2 column (30 g × 50 cm × 2 cm) using CHCl3/MeOH (95:5 to 85:15) elution afforded impure 1, which further purified on C18 HPLC semi-preparative column using 55% ACN to give pure 1 (9.6 mg). Sephadex LH-20 column chromatography (50 g × 50 cm × 3 cm) of fraction F6 (68 mg) using MeOH as solvent system gave impure 2 and 3. Final purification of the two compounds was achieved on RP-18 column (60 g × 50 cm × 3 cm) using MeOH/H2O (50:50 to 90:10) elution to give 2 (4.3 mg) and 3 (3.2 mg). HPLC purification of F7 (35 mg) on C18 HPLC semi-preparative column using 60% ACN gave 4 (3.5 mg).
Mooreaside A (1): Colorless amorphous powder; [ α ] D 25 + 4.8 (c 0.2, MeOH); IR (film) νmax 3435, 3320, 3005, 1635, 1150, 960 cm−1; HRESIMS m/z 728.6031 (calcd for C42H82NO8, 728.6040 [M + H]+); NMR spectral data, see Table 1.
3-Acetyl-2′-deoxyuridine (2): White powder; [ α ] D 25 + 18.6 (c 1.0, MeOH); UV (MeOH) λmax (log ε) 253 (2.36), 268 (2.89) nm; IR (film) νmax 3294, 2956, 1693 cm−1; HRESIMS m/z 271.0927 [M + H]+ (calcd for C11H15N2O6, 271.0930 [M + H]+); NMR spectral data, see Table 2.
3-Phenylethyl-2′-deoxyuridine (3): White amorphous powder; [ α ] D 25 + 14.1 (c 0.2, MeOH); UV (MeOH) λmax (log ε) 257 (2.42), 269 (2.87) nm; IR (film) νmax 3289, 2959, 1694, 970, 746 cm−1; HRESIMS m/z 333.1446 [M + H]+ (calcd C17H21N2O5, 333.1450); NMR spectral data, see Table 2.

3.4. Evaluation of the Cytotoxicity of the Compounds

The isolated compounds (15) were evaluated for their cytotoxic activity against colorectal carcinoma (HCT-116), hepatocellular carcinoma (HepG2), and breast cancer (MCF-7). The cells were obtained commercially from ATCC. The cytotoxicity was evaluated by the sulforhodamine B (SRB) assay, as described previously [39]. Doxorubicin was used as positive control drug (Table 3).

3.5. Methanolysis

Compound 1 (4.5 mg) was treated with 6 mL of 1N HCl in MeOH at 90 °C for 15 h in a sealed ampoule. The reaction mixture was diluted by adding 20 mL of distilled water, then extracted with n-hexane (3 × 15 mL) to give a corresponding FAME, which was identified by GCMS. The aqueous layer was evaporated to dryness and subjected to Sephadex LH-20 using CHCl3:MeOH (10:90) to give LCB and sugar. The base was analyzed by EIMS [22].

4. Conclusions

In conclusion, the investigation of the Red Sea strain of the marine cyanobacterium Moorea producens led to the isolation of a new cerebroside (1) and two new nucleoside derivatives (2 and 3), along with two known compounds (4 and 5). Their structures were determined using extensive spectroscopic studies. Compounds 13 showed moderate cytotoxic activity against breast cancer cell lines.

Supplementary Materials

The following are available online at https://www.mdpi.com/1420-3049/21/3/324/s1, Figure S1: 1D and 2D NMR spectra of compounds 13.

Acknowledgments

This project was funded by the National Plan for Science, Technology and Innovation (MAARIFAH)—King Abdulaziz City for Science and Technology—the Kingdom of Saudi Arabia–award number (11-BIO1555-03). The authors also, acknowledge with thanks Science and Technology Unit, King Abdulaziz University for technical support.

Author Contributions

Diaa T.A. Youssef and Lamiaa A. Shaala conceived and designed the experiments; Lamiaa A. Shaala, Gamal A. Mohamed and Sabrin R.M. Ibrahim performed the experiments; Zainy M. Banjar performed the anticancer evaluation of the compounds; Diaa T.A. Youssef, Sabrin R.M. Ibrahim, Gamal A. Mohamed and Lamiaa A. Shaala analyzed the data; Diaa T.A. Youssef and Sabrin R.M. Ibrahim. wrote the paper; Diaa T.A. Youssef edited the paper.

Conflicts of Interest

The authors declare no conflict of interest.

References

  1. Elkhayat, E.S.; Mohamed, G.A.; Ibrahim, S.R.M. Ceramides, activity and structure elucidation. Curr. Bioact. Compd. 2013, 8, 370–409. [Google Scholar] [CrossRef]
  2. Hakomori, S. Structure and function of sphingoglycolipids in transmembrane signalling and cell-cell interactions. Biochem. Soc. Trans. 1993, 3, 583–595. [Google Scholar] [CrossRef]
  3. Kasahara, K.; Sanai, Y. Functional roles of glycosphingolipids in signal transduction via lipids rafts. Glycoconjugate J. 2000, 17, 153–162. [Google Scholar] [CrossRef]
  4. Huang, R.; Chen, Y.; Zeng, Z.; Gao, C.; Su, X.; Peng, Y. Marine nucleosides: Structure, bioactivity, synthesis and biosynthesis. Mar. Drugs 2014, 12, 5817–5838. [Google Scholar] [CrossRef] [PubMed]
  5. Sereda, M.J. Purines 2010: Adenine nucleosides and nucleotides in biomedicine. IDrugs 2010, 13, 534–538. [Google Scholar] [PubMed]
  6. Cooperwood, J.S.; Gumina, G.; Boudinot, F.D.; Chu, C.K. Nucleoside and nucleotide prodrugs. In Recent Advances in Nucleosides: Chemistry and Chemotherapy; Elsevier: Amsterdam, The Netherlands, 2002; pp. 91–147. [Google Scholar]
  7. Gerwick, W.H.; Coates, R.C.; Engene, N.; Gerwick, L.G.; Grindberg, R.; Jones, A.; Sorrels, C. Giant marine cyanobacteria produce exciting potential pharmaceuticals. Microbe 2008, 3, 277–284. [Google Scholar]
  8. Nunnery, J.K.; Mevers, E.; Gerwick, W.H. Biologically active secondary metabolites from marine cyanobacteria. Curr. Opin. Biotechnol. 2010, 21, 1–7. [Google Scholar] [CrossRef] [PubMed]
  9. Tidgewell, K.; Clark, B.R.; Gerwick, W.H. The natural products chemistry of cyanobacteria. In Comprehensive Natural Products II Chemistry and Biology; Mander, L., Lui, H.-W., Eds.; Elsevier: Oxford, UK, 2010; Volume 2, pp. 141–188. [Google Scholar]
  10. Tan, L.T. Filamentous tropical marine cyanobacteria: A rich source of natural products for anticancer drug discovery. J. Appl. Phycol. 2010, 5, 659–676. [Google Scholar] [CrossRef]
  11. Engene, N.; Choi, H.; Esquenazi, E.; Rottacker, E.C.; Ellisman, M.H.; Dorrestein, P.C.; Gerwick, W.H. Underestimated biodiversity as a major explanation for the perceived rich secondary metabolite capacity of the cyanobacterial genus Lyngbya. Environ. Microbiol. 2011, 13, 1601–1610. [Google Scholar] [CrossRef] [PubMed]
  12. Blunt, J.W.; Copp, B.R.; Keyzers, R.A.; Munro, M.H.G.; Prinsep, M.R. Marine natural products. Nat. Prod. Rep. 2015, 32, 116–211. [Google Scholar] [CrossRef] [PubMed]
  13. Burja, A.M.; Banaigs, B.; Abou-Mansour, E.; Burgess, J.G.; Wright, P.C. Marine cyanobacteria—A prolific source of natural products. Tetrahedron 2001, 57, 9347–9377. [Google Scholar] [CrossRef]
  14. Villa, F.A.; Gerwick, L. Marine natural product drug discovery: Leads for treatment of inflammation, cancer, infections, and neurological disorders. Immunopharmacol. Immunotoxicol. 2010, 32, 228–237. [Google Scholar] [CrossRef] [PubMed]
  15. Jones, A.C.; Monroe, E.A.; Podell, S.; Hess, W.R.; Klages, S.; Esquenazi, E.; Niessen, S.; Hoover, H.; Rothmann, M.; Lasken, R.S.; et al. Genomic insights into the physiology and ecology of the marine filamentous cyanobacterium Lyngbya majuscula. Proc. Natl. Acad. Sci. USA 2011, 108, 8815–8820. [Google Scholar] [CrossRef] [PubMed]
  16. Shaala, L.A.; Youssef, D.T.A.; McPhail, K.L.; Elbandy, M. Malyngamide 4, a new lipopeptide from the Red Sea marine cyanobacterium Moorea producens (formerly Lyngbya majuscula). Phytochem. Lett. 2013, 6, 183–188. [Google Scholar] [CrossRef]
  17. Youssef, D.T.A.; Shaala, L.A.; Mohamed, G.A.; Ibrahim, S.R.M.; Banjar, Z.M.; Badr, J.M.; McPhail, K.L.; Risinger, A.L.; Mooberry, S.L. 2,3-Seco-2,3-dioxo-lyngbyatoxin A from a Red Sea strain of the marine cyanobacterium Moorea producens. Nat. Prod. Res. 2014, 29, 703–709. [Google Scholar] [CrossRef] [PubMed]
  18. Thornburg, C.C.; Cowley, E.S.; Sikorska, J.; Shaala, L.A.; Ismael, J.E.; Youssef, D.T.A.; McPhail, K.L. Apratoxin H and apratoxin A sulfoxide from the Red Sea cyanobacterium Moorea producens. J. Nat. Prod. 2013, 76, 1781–1788. [Google Scholar] [CrossRef] [PubMed]
  19. Thornburg, C.C.; Thimmaiah, M.; Shaala, L.A.; Hau, A.M.; Malmo, J.M.; Ishmael, J.E.; Youssef, D.T.A.; McPhail, K.L. Cyclic depsipeptides, grassypeptolides D and E and Ibu-epidemethoxylyngbyastatin 3, from a Red Sea Leptolyngbya cyanobacterium. J. Nat. Prod. 2011, 74, 1677–1685. [Google Scholar] [CrossRef] [PubMed]
  20. Ibrahim, S.R.M.; Mohamed, G.A.; Fouad, M.A.; Elkhayat, E.S.; Proksch, P. Iotrochotamides I and II new ceramides from the Indonesian sponge Iotrochota purpurea. Nat. Prod. Res. 2009, 23, 86–92. [Google Scholar] [CrossRef] [PubMed]
  21. Ibrahim, S.R.M.; Mohamed, G.A.; Elkhayat, E.S.; Gouda, Y.G.; Proksch, P. Strepsiamide A–C, new ceramides from the marine sponge Strepsichordaia lendenfeldi. Nat. Prod. Commun. 2008, 3, 205–209. [Google Scholar]
  22. Murshid, S.S.A.; Badr, J.M.; Youssef, D.T.A. Penicillosides A and B: New cerebrosides from the marine-derived fungus Penicillium species. Rev. Bras. Farmacogn. 2016, 26, 29–33. [Google Scholar] [CrossRef]
  23. Mohamed, G.A.; Abd-Elrazek, A.E.E.; Hassanean, H.A.; van Soest, R.M.; Youssef, D.T.A. New compounds from the Red Sea marine sponge Echinoclathria gibbosa. Phytochem. Lett. 2014, 9, 51–58. [Google Scholar] [CrossRef]
  24. Shibuya, H.; Kawashima, K.; Sakagami, M.; Kawanishi, H.; Shimomura, M.; Ohashi, K.; Kitagawa, I. Sphingolipids and glycerolipids. I. Chemical structures and ionophoretic activities of soyacerebrosides I and II from soybean. Chem. Pharm. Bull. 1990, 38, 2933–2938. [Google Scholar] [CrossRef] [PubMed]
  25. Sitrin, R.D.; Chan, G.; Dingerdissen, J.; DeBrosse, C.; Mehta, R.; Roberts, G.; Rottschaefer, S.; Staiger, D.; Valenta, J.; Snader, K.M. Isolation and structure determination of Pachybasium cerebrosides which potentiate the antifungal activity of aculeacin. J. Antibiot. 1988, 41, 469–480. [Google Scholar] [CrossRef] [PubMed]
  26. Kawatake, S.; Nakamura, K.; Inagaki, M.; Higuchi, R. Isolation and structure determination of six glucocerebrosides from the starfish Luidia maculata. Chem. Pharm. Bull. 2002, 50, 1091–1096. [Google Scholar] [CrossRef] [PubMed]
  27. Kang, S.S.; Kim, J.S.; Xu, Y.N.; Kim, Y.H. Isolation of a new cerebroside from the root bark of Aralia elata. J. Nat. Prod. 1999, 62, 1059–1060. [Google Scholar] [CrossRef] [PubMed]
  28. Chen, X.; Wu, Y.L.; Chen, D. Structure determination and synthesis of a new cerebroside isolated from the traditional Chinese medicine Typhonium giganteum Engl. Tetrahedron Lett. 2002, 43, 3529–3532. [Google Scholar] [CrossRef]
  29. Jung, J.H.; Lee, C.O.; Kim, Y.C.; Kang, S.S. New bioactive cerebrosides from Arisaema amurense. J. Nat. Prod. 1996, 59, 319–322. [Google Scholar] [CrossRef] [PubMed]
  30. Sarmientos, F.; Schwarzmann, G.; Sandhoff, K. Direct evidence by carbon-13 NMR spectroscopy for the erythro configuration of the sphingoid moiety in Gaucher cerebroside and other natural sphingolipids. Eur. J. Bichem. 1985, 146, 59–64. [Google Scholar] [CrossRef]
  31. Kodato, S.; Nakagawa, M.; Hino, T. Synthesis of cerebroside B1b with antiulcerogenic activity II. Total synthesis and determination of absolute configuration of cerebroside B1b and its stereoisomers. Tetrahedron 1989, 45, 7263–7280. [Google Scholar] [CrossRef]
  32. Zhao, H.; Zhao, S.; Guilliaume, D.; Sun, C. New cerebrosides from Euryale ferox. J. Nat. Prod. 1994, 7, 138–141. [Google Scholar] [CrossRef]
  33. Chang, C.; Gomes, J.D.; Byrn, S.R. Chemical modification of deoxyribonucleic acids: A direct study by carbon-13 nuclear magnetic resonance spectroscopy. J. Org. Chem. 1983, 48, 5151–5160. [Google Scholar] [CrossRef]
  34. Li, K.; Li, Q.; Ji, N.; Liu, B.; Zhang, W.; Cao, X. Deoxyuridines from the marine sponge associated Actinomycete Streptomyces microflavus. Mar. Drugs 2011, 9, 690–695. [Google Scholar] [CrossRef] [PubMed]
  35. Yu, L.; Li, Z.; Peng, C.; Li, Z.; Guo, Y. Neobacillamide A, a novel thiazole-containing alkaloid from the marine bacterium Bacillus vallismortis C89, associated with South China Sea sponge Dysidea avara. Helv. Chim. Acta 2009, 92, 607–612. [Google Scholar] [CrossRef]
  36. Yan, H.; Gao, S.; Li, C.; Li, X.; Wang, B. Chemical constituents of a marine-derived endophytic fungus Penicillium commune G2M. Molecules 2010, 15, 3270–3275. [Google Scholar] [CrossRef] [PubMed]
  37. Prinsen, P.; Gutiérrez, A.; Faulds, C.B.; del Río, J.C. Lipophilic extractives from the cortex and pith of elephant grass (Pennisetum purpureum Schumach.). J. Agric. Food Chem. 2012, 60, 6408–6417. [Google Scholar] [CrossRef] [PubMed] [Green Version]
  38. Prinsen, P.; Gutiérrez, A.; Faulds, C.B.; del Río, J.C. Comprehensive study of valuable lipophilic phytochemicals in Wheat Bran. J. Agric. Food Chem. 2014, 62, 1664–1673. [Google Scholar] [CrossRef] [PubMed]
  39. Vichai, V.; Kirtikara, K. Sulforhodamine B colorimetric assay for cytotoxicity screening. Nat Protoc. 2006, 1, 1112–1116. [Google Scholar] [CrossRef] [PubMed]
  • Sample Availability: Samples of the compounds are not available from the authors.
Figure 1. Structures of compounds 15.
Figure 1. Structures of compounds 15.
Molecules 21 00324 g001
Figure 2. Key 1H-1H COSY and HMBC correlations of compounds 13.
Figure 2. Key 1H-1H COSY and HMBC correlations of compounds 13.
Molecules 21 00324 g002
Figure 3. Key MS fragments of 1.
Figure 3. Key MS fragments of 1.
Molecules 21 00324 g003
Table 1. NMR spectral data of compound 1 (CDCl3, 850 and 213 MHz).
Table 1. NMR spectral data of compound 1 (CDCl3, 850 and 213 MHz).
No.δH [mult., J (Hz)]δC (mult.)HMBC
13.91 m, 3.74 m68.5 CH22, 3, 1′′
23.97 m59.3 CH1, 3, 4, 1′
33.61 m73.4 CH1, 2
42.08 m32.2 CH22, 5, 6
55.35 dt (15.3, 7.6)129.9 CH3, 4, 7
65.37 dt (15.3, 7.1)128.8 CH4, 5, 7
72.01 m32.0 CH25, 6
8–151.27–1.2330.3–29.0 CH2-
161.29 m22.6 CH215, 17
170.87 t (6.7)14.1 CH314, 16
1′-173.8 C-
2′2.33 t (7.6)34.4 CH21′, 4′
3′1.61 m24.8 CH21′, 2′, 4′
4′1.28 m28.7 CH2-
5′–17′1.27–1.23 m30.3–29.0 CH2-
18′1.30 m22.7 CH217′, 19′
19′0.89 t (6.8)14.1 CH316′, 18′
1′′4.28 d (7.7)104.0 CH1, 2′′, 3′′
2′′3.65 m70.2 CH3′′, 4′′
3′′3.63 m71.7 CH1′′, 2′′, 4′′
4′′4.02 m69.5 CH5′′, 6′′
5′′3.56 m74.6 CH4′′, 6′′
6′′4.38 m, 4.22 m62.7 CH21′′, 5′′
2-NH7.52 d (8.5)-2, 3, 1′
Table 2. NMR spectral data of compounds 2 and 3 (CD3OD, 850 and 213 MHz).
Table 2. NMR spectral data of compounds 2 and 3 (CD3OD, 850 and 213 MHz).
23
No.δH [mult., J Hz)]δC (mult.)HMBCNo.δH [mult., J (Hz)]δC (mult.)HMBC
2-151.7 C 2-151.7 C-
4-162.8 C 4-162.8 C-
55.69 d (8.5)102.6 CH4, 655.69 d (8.5)102.6 CH6
67.98 d (8.5)142.5 CH2, 4, 5, 1′67.98 d (8.5)142.5 CH2, 4, 5
1′6.27 t (6.8)86.6 CH2, 6, 2′1′6.26 t (6.8)86.2 CH2′, 3′
2′2.28 m41.4 CH21′, 3′2′2.21 m41.2 CH21′, 3′
3′4.38 m72.2 CH 3′4.36 m72.3 CH
4′3.89 m89.0 CH 4′3.91 m88.8 CH
5′3.75 m, 3.71 m62.8 CH2 5′3.75 m, 3.71 m62.8 CH2
1′′-183.4 C 1′′3.16 t (7.6)42.0 CH22, 4, 2′′, 3′′
2′′1.95 s23.5 CH31′′2′′2.95 t (7.6)34.7 CH23′′, 4′′, 8′′
3′′-137.9 C-
4′′, 8′′7.27 brd (6.8)129.8 CH2′′, 6′′
5′′, 7′′7.35 m130.0 CH3′′, 4′′, 8′′
6′′7.27 m128.3 CH
Table 3. Cytotoxic activities of compounds 15.
Table 3. Cytotoxic activities of compounds 15.
CompoundIC50 (μg/mL)
Colorectal Carcinoma (HCT-116)Hepatocellular Carcinoma (HepG2)Breast Cancer (MCF-7)
1>50>5020.5
2>50>5018.2
3>50>5022.8
4NTNTNT
5NTNTNT
Doxorubicin0.7890.6210.415
NT = Not tested.

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Youssef, D.T.A.; Ibrahim, S.R.M.; Shaala, L.A.; Mohamed, G.A.; Banjar, Z.M. New Cerebroside and Nucleoside Derivatives from a Red Sea Strain of the Marine Cyanobacterium Moorea producens. Molecules 2016, 21, 324. https://doi.org/10.3390/molecules21030324

AMA Style

Youssef DTA, Ibrahim SRM, Shaala LA, Mohamed GA, Banjar ZM. New Cerebroside and Nucleoside Derivatives from a Red Sea Strain of the Marine Cyanobacterium Moorea producens. Molecules. 2016; 21(3):324. https://doi.org/10.3390/molecules21030324

Chicago/Turabian Style

Youssef, Diaa T.A., Sabrin R.M. Ibrahim, Lamiaa A. Shaala, Gamal A. Mohamed, and Zainy M. Banjar. 2016. "New Cerebroside and Nucleoside Derivatives from a Red Sea Strain of the Marine Cyanobacterium Moorea producens" Molecules 21, no. 3: 324. https://doi.org/10.3390/molecules21030324

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