Polyoxygenated Klysimplexane- and Eunicellin-Based Diterpenoids from the Gorgonian Briareum violaceum
Abstract
:1. Introduction
2. Results and Discussion
3. Materials and Methods
3.1. General Experimental Procedures
3.2. Animal Material
3.3. Extraction and Isolation
3.4. Cytotoxicity Assay
4. Conclusions
Supplementary Materials
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Conflicts of Interest
Sample Availability
References
- Carroll, A.R.; Copp, B.R.; Davis, R.A.; Keyzers, R.A.; Prinsep, M.R. Marine natural products. Nat. Prod. Rep. 2020, 37, 175–223. [Google Scholar] [CrossRef] [PubMed]
- Berrue, F.; Kerr, R.G. Diterpenes from gorgonian corals. Nat. Prod. Rep. 2009, 26, 681–710. [Google Scholar] [CrossRef] [PubMed]
- Xu, J.-H.; Lai, K.-H.; Su, Y.-D.; Chang, Y.-C.; Peng, B.-R.; Backlund, A.; Wen, Z.-H.; Sung, P.-J. Briaviolides K–N, New Briarane-Type Diterpenoids from Cultured Octocoral Briareum violaceum. Mar. Drugs 2018, 16, 75. [Google Scholar] [CrossRef] [PubMed] [Green Version]
- Chen, N.-F.; Su, Y.-D.; Hwang, T.-L.; Liao, Z.-J.; Tsui, K.-H.; Wen, Z.-H.; Wu, Y.-C.; Sung, P.-J. Briarenols C–E, New Polyoxygenated Briaranes from the Octocoral Briareum excavatum. Mol. 2017, 22, 475. [Google Scholar] [CrossRef] [Green Version]
- Huynh, T.-H.; Fang, L.-S.; Chen, Y.-H.; Peng, B.-R.; Chen, Y.-Y.; Zheng, L.-G.; Wu, Y.-J.; Wen, Z.-H.; Chen, J.-J.; Lin, T.-C.; et al. Briarenols I—K, New Anti-inflammatory 8,17-Epoxybriaranes from the Octocoral Briareum excavatum (Briareidae). Mol. 2020, 25, 1405. [Google Scholar] [CrossRef] [Green Version]
- Pech-Puch, D.; Joseph-Nathan, P.; Burgueño-Tapia, E.; González-Salas, C.; Martínez-Matamoros, D.; Pereira, D.M.; Pereira, R.B.; Jiménez, C.; Rodríguez, J. Absolute configuration by vibrational circular dichroism of anti-inflammatory macrolide briarane diterpenoids from the Gorgonian Briareum asbestinum. Sci. Rep. 2021, 11, 1–14. [Google Scholar] [CrossRef]
- Huynh, T.H.; Chien, S.Y.; Tanaka, J.; Wen, Z.H.; Wu, Y.C.; Wu, T.Y.; Sung, P.J. 8-Hydroxybriaranes from octocoral Briareum stechei (Briareidae) (Kukenthal, 1908). Mar. Drugs 2021, 19, 136. [Google Scholar] [CrossRef]
- Ospina, C.A.; Rodriguez, A.D.; Ortega-Barria, E.; Capson, T.L. Briarellins J-P and polyanthellin A: New eunicellin-based diterpenes from the gorgonian coral Briareum polyanthes and their antimalarial activity. J. Nat. Prod. 2003, 66, 357–363. [Google Scholar] [CrossRef]
- Gomez-Reyes, J.F.; Salazar, A.; Guzman, H.M.; Gonzalez, Y.; Fernandez, P.L.; Ariza-Castolo, A.; Gutierrez, M. seco-Briarellinone and briarellin S, two new eunicellin-based diterpenoids from the Panamanian octocoral Briareum asbestinum. Mar. Drugs 2012, 10, 2608–2617. [Google Scholar] [CrossRef]
- Cheng, Y.; Ahmed, A.F.; Orfali, R.S.; Dai, C.-F.; Sheu, J.-H. Briarenones A‒C, New Briarellin Diterpenoids from the Gorgonian Briareum violaceum. Mar. Drugs 2019, 17, 120. [Google Scholar] [CrossRef] [Green Version]
- Gutiérrez, M.; Santamaría, R.; Gómez-Reyes, J.F.; Guzmán, H.M.; Ávila-Román, J.; Motilva, V.; Talero, E. New Eunicellin-type diterpenes from the Panamanian octocoral Briareum Asbestinum. Mar. Drugs 2020, 18, 84. [Google Scholar] [CrossRef] [Green Version]
- Rodríguez, A.D.; Cóbar, O.M. Structures and bioactivities of new asbestinin diterpenoids from the caribbean gorgonian octocoral Briareum asbestinum. Tetrahedron 1993, 49, 319–328. [Google Scholar] [CrossRef]
- Dookran, R.; Maharaj, D.; Mootoo, B.S.; Ramsewak, R.; McLean, S.; Reynolds, W.F.; Tinto, W.F. Briarane and asbestinane diterpenes from Briareum asbestinum. Tetrahedron 1994, 50, 1983–1992. [Google Scholar] [CrossRef]
- Ospina, C.A.; Rodríguez, A.D. Bioactive compounds from the gorgonian Briareum polyanthes. Correction of the structures of four asbestinane-type diterpenes. J. Nat. Prod. 2006, 69, 1721–1727. [Google Scholar] [CrossRef]
- Chang, Y.C.; Huang, I.C.; Chiang, M.Y.; Hwang, T.L.; Kung, T.H.; Lin, C.S.; Sheu, J.H.; Sung, P.J. Briaviodiol A, a new Cembranoid from a soft coral Briareum violacea. Chem. Pharm. Bull. 2010, 58, 1666–1668. [Google Scholar] [CrossRef] [Green Version]
- Huang, P.C.; Lin, W.S.; Peng, B.R.; Chang, Y.C.; Fang, L.S.; Li, G.Q.; Hwang, T.L.; Wen, Z.H.; Sung, P.J. New furanocembranoids from Briareum violaceum. Mar. Drugs 2019, 17, 214. [Google Scholar] [CrossRef] [Green Version]
- Su, Y.-D.; Su, J.-H.; Hwang, T.-L.; Wen, Z.-H.; Sheu, J.-H.; Wu, Y.-C.; Sung, P.-J. Briarane Diterpenoids Isolated from Octocorals between 2014 and 2016. Mar. Drugs 2017, 15, 44. [Google Scholar] [CrossRef] [Green Version]
- Wei, W.-C.; Lin, S.-Y.; Chen, Y.-J.; Wen, C.-C.; Huang, C.-Y.; Palanisamy, A.; Yang, N.-S.; Sheu, J.-H. Topical application of marine briarane-type diterpenes effectively inhibits 12-O-tetradecanoylphorbol-13-acetate-induced inflammation and dermatitis in murine skin. J. Biomed. Sci. 2011, 18, 94. [Google Scholar] [CrossRef] [Green Version]
- Chen, Y.Y.; Zhang, Y.L.; Lee, G.H.; Tsou, L.K.; Zhang, M.M.; Hsieh, H.P.; Chen, J.J.; Ko, C.Y.; Wen, Z.H.; Sung, P.J. Briarenols W‒Z: Chlorine-containing polyoxygenated briaranes from octocoral Briareum stechei (Kukenthal, 1908). Mar. Drugs 2021, 19, 77. [Google Scholar] [CrossRef]
- Lin, Y.Y.; Lin, S.C.; Feng, C.W.; Chen, P.C.; Su, Y.D.; Li, C.M.; Yang, S.N.; Jean, Y.H.; Sung, P.J.; Duh, C.Y.; et al. Anti-inflammatory and analgesic effects of the marine-derived compound excavatolide B isolated from the culture-type Formosan gorgonian Briareum excavatum. Mar. Drugs 2015, 13, 2559–2579. [Google Scholar] [CrossRef] [Green Version]
- Coval, S.J.; Cross, S.; Bernardinelli, G.; Jefford, C.W. Brianthein V, a new cytotoxic and antiviral diterpene isolated from Briareum asbestinum. J. Nat. Prod. 1988, 51, 981–984. [Google Scholar] [CrossRef]
- Sheu, J.H.; Sung, P.J.; Su, J.H.; Wang, G.H.; Duh, C.Y.; Shen, Y.C.; Chiang, Y.; Chen, I.T. Excavatolides U‒Z, new briarane diterpenes from the gorgonian Briareum excavatum. J. Nat. Prod. 1999, 62, 1415–1420. [Google Scholar] [CrossRef] [PubMed]
- Sheu, J.H.; Sung, P.J.; Huang, L.I.; Lee, S.F.; Wu, T.; Chang, B.Y.; Duh, C.Y.; Fang, L.S.; Soong, K.; Lee, T.J. New cytotoxic briaran diterpenes from the Formosan gorgonian Briareum sp. J. Nat. Prod. 1996, 59, 935–938. [Google Scholar] [CrossRef] [PubMed]
- Yeh, T.T.; Wang, S.K.; Dai, C.F.; Duh, C.Y. Briacavatolides A‒C, new briaranes from the Taiwanese octocoral Briareum excavatum. Mar. Drugs 2012, 10, 1019–1026. [Google Scholar] [CrossRef]
- Chen, B.W.; Chao, C.H.; Su, J.H.; Tsai, C.W.; Wang, W.H.; Wen, Z.H.; Huang, C.Y.; Sung, P.J.; Wu, Y.C.; Sheu, J.H. Klysimplexins I‒T, eunicellin-based diterpenoids from the cultured soft coral Klyxum simplex. Org. Biomol. Chem. 2011, 9, 834–844. [Google Scholar] [CrossRef]
- Rodríguez, A.D.; Cóbar, O.M. Studies on the minor constituents of the Caribbean gorgonian octocoral Briareum asbestinum Pallas. Isolation and structure determination of the eunicellin-based diterpenoids briarellins E‒I. Chem. Pharm. Bull. 1995, 43, 1853–1858. [Google Scholar] [CrossRef] [Green Version]
- Kalinowski, H.O.; Berger, S.; Braun, S. Carbon-13 NMR Spectroscopy; John Wiley & Sons: Chichester, UK, 1988. [Google Scholar]
- Nakayama, G.R.; Caton, M.C.; Nova, M.P.; Parandoosh, Z. Assessment of the Alamar Blue assay for cellular growth and viability in vitro. J. Immunol. Methods 1997, 204, 205–208. [Google Scholar] [CrossRef]
- O’Brien, J.; Wilson, I.; Orton, T.; Pognan, F. Investigation of the Alamar Blue (resazurin) fluorescent dye for the assessment of mammalian cell cytotoxicity. Eur. J. Biochem. 2000, 267, 5421–5426. [Google Scholar] [CrossRef]
# | 1 a | 2 b | 3 b | 4 c |
---|---|---|---|---|
1 | 43.5 (CH)d) | 41.6 (CH) | 45.2 (CH) | 50.1 (CH) |
2 | 44.3 (CH) | 45.6 (CH) | 42.3 (CH) | 125.5 (CH) |
3 | 28.5 (CH) | 144.1 (C) | 27.9 (CH) | 137.7 (C) |
4 | 32.3 (CH2) | 36.6 (CH2) | 31.2 (CH2) | 38.1 (CH2) |
5 | 25.4 (CH2) | 33.3 (CH2) | 24.8 (CH2) | 39.0 (CH2) |
6 | 81.9 (CH) | 81.5 (CH) | 81.4 (CH) | 76.2 (CH) |
7 | 44.5 (C) | 46.4 (C) | 43.8 (CH) | 162.8 (C) |
8 | 80.2 (CH) | 78.4 (CH) | 79.8 (CH) | 70.7 (CH) |
9 | 79.8 (CH) | 78.2 (CH) | 78.8 (CH) | 80.9 (CH) |
10 | 78.9 (C) | 76.0 (C) | 77.2 (C) | 78.3 (C) |
11 | 32.9 (CH) | 32.1 (CH) | 32.3 (CH) | 33.2 (CH) |
12 | 30.6 (CH2) | 33.6 (CH2) | 33.8 (CH2) | 33.8 (CH2) |
13 | 25.8 (CH2) | 22.0 (CH2) | 25.3 (CH2) | 26.1 (CH2) |
14 | 70.9 (C) | 43.9 (CH) | 128.3 (C) | 44.4 (CH) |
15 | 64.2 (C) | 28.5 (CH) | 128.0 (C) | 31.4 (CH) |
16 | 23.6 (CH3) | 23.3 (CH3) | 20.9 (CH3) | 22.0 (CH3) |
17 | 20.8 (CH3) | 21.9 (CH3) | 20.4 (CH3) | 22.5 (CH3) |
18 | 17.2 (CH3) | 111.8 (CH2) | 15.2 (CH3) | 18.3 (CH3) |
19 | 10.9 (CH3) | 9.2 (CH3) | 9.9 (CH3) | 113.8 (CH2) |
20 | 17.9 (CH3) | 17.2 (CH3) | 17.1 (CH3) | 17.8 (CH3) |
No | 1 a | 2 b | 3 b | 4 c |
---|---|---|---|---|
1 | 1.64 d (12.0) d | 2.08 m | 2.81 d(7.5) | 2.52 dd (10.0, 3.0) |
2 | 1.23 dd (12.0, 3.6) | 2.32 d (12.5) | 1.62 m | 5.35 d (10.0) |
3 | 1.40 m | - | 1.54 m | - |
4α | 1.21 m | 2.23 dd (7.5, 5.0) | 1.52 m | 2.15 m |
4β | 1.28 m | 2.00 m | 1.52 m | 2.26 m |
5α | 1.80 m | 1.93 dd (12.0, 5.0) | 1.61–1.64 m | 1.91 m |
5β | 1.80 m | 2.34 m | 1.61-1.64 m | 2.04 m |
6 | 3.54 dd (8.0, 8.0) | 3.80 dd (11.5, 5.0) | 3.61 dd (11.0,4.5) | 4.08 d (7.5) |
8 | 3.44 d (11.2) | 3.84 d (11.0) | 3.64 d (11.0) | 4.21 d (4.5) |
9 | 3.49 d (11.2) | 3.56 d (11.0) | 3.66 d (11.0) | 3.46 d (5.5) |
11 | 1.79 m | 1.99 m | 2.14 m | 1.89 m |
12α | 1.79 m | 1.32 m | 1.55 m | 1.41 m |
12β | 1.81 m | 1.54 m | 1.14 m | 1.46 m |
13α | 1.06 m | 1.56 m | 2.47 m | 1.59 m |
13β | 1.22 m | 1.56 m | 1.64 m | 1.59 m |
14 | - | 1.73 m | - | 1.54 m |
15 | - | 2.11 m | - | 1.25 m |
16 | 1.08 3H, s | 0.92 3H, d (6.5) | 1.81 3H, s | 0.82 3H, d (6.0) |
17 | 0.94 3H, s | 0.73 3H, d (6.5) | 1.74 3H, s | 0.81 3H, d (6.0) |
18 | 0.68 3H, d (7.2) | 5.02 s 4.81 s | 0.80 3H, d (7.5) | 1.57 3H, s |
19 | 1.09 3H, s | 0.93 3H, s | 1.11 3H, s | 5.43 d (1.2) 5.37 d (1.2) |
20 | 1.28 3H, d (5.6) | 1.04 3H, d (6.5) | 1.07 3H, d (6.0) | 0.92 3H, d (6.6) |
6-OH | 4.12, br s | - | 3.62 br s | |
8-OH | 2.94, br s | - | 4.26 br d (4.5) | |
9-OH | 2.32, br s | 2.91 br s* | 4.00 d (5.5) | |
10-OH | 4.54, br s | 3.18 br s* | 3.57, s |
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Ahmed, A.F.; Cheng, Y.; Dai, C.-F.; Sheu, J.-H. Polyoxygenated Klysimplexane- and Eunicellin-Based Diterpenoids from the Gorgonian Briareum violaceum. Molecules 2021, 26, 3276. https://doi.org/10.3390/molecules26113276
Ahmed AF, Cheng Y, Dai C-F, Sheu J-H. Polyoxygenated Klysimplexane- and Eunicellin-Based Diterpenoids from the Gorgonian Briareum violaceum. Molecules. 2021; 26(11):3276. https://doi.org/10.3390/molecules26113276
Chicago/Turabian StyleAhmed, Atallah F., Yang Cheng, Chang-Feng Dai, and Jyh-Horng Sheu. 2021. "Polyoxygenated Klysimplexane- and Eunicellin-Based Diterpenoids from the Gorgonian Briareum violaceum" Molecules 26, no. 11: 3276. https://doi.org/10.3390/molecules26113276
APA StyleAhmed, A. F., Cheng, Y., Dai, C. -F., & Sheu, J. -H. (2021). Polyoxygenated Klysimplexane- and Eunicellin-Based Diterpenoids from the Gorgonian Briareum violaceum. Molecules, 26(11), 3276. https://doi.org/10.3390/molecules26113276