Recent Advances in Marine Algae Polysaccharides: Isolation, Structure, and Activities
Abstract
:1. Introduction
2. Extraction of Polysaccharides from Marine Algae
3. Purification Procedure
4. Structural and Physical Properties of Marine Algae Polysaccharides
5. Quality Control
6. Biological Activity of Polysaccharides from Marine Algae
6.1. Immunomodulatory Activity
6.2. Antitumor Activity
6.3. Antiviral Activity
6.4. Antioxidant Activity
6.5. Hypolipidemic Activity
7. Future Perspective
Acknowledgments
Author Contributions
Conflicts of Interest
References
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Species | Polysaccharide Type | Molecular Weight (Da) | Monosaccharide | Backbone | Biological Activities | Reference |
---|---|---|---|---|---|---|
Red algae | - | - | - | - | - | - |
Mastocarpus stellatus | Carrageenan | 1248 k | Gal:Glc:Xyl:Man = 87.8:5.4:4.4:2.4 | β-1,3-Gal and α-1,4-Gal | Anticoagulant | [59,60] |
Chondrus armatus | Carrageenan | 88 k | Gal | β-1,3-Gal and α-1,4-Gal | Antiviral | [61] |
Nemalion helminthoides | Sulphated mannan | 43.8 k | Man:Xyl:Sulphate = 1:0.01:0.64 | α-1,3-Man | Immunomodulatory | [62] |
Ahnfeltiopsis flabelliformis | Sulphated galactan | - | Gal:3,6-AnGal:Glc:Xyl:SO3Na = 34.9:15.0:2.0:2.1:18.7 | β-1,3-Gal and α-1,4-Gal | Anticoagulant | [63] |
Porphyra haitanensis | porphyran | 277 k | Gal | β-1,3-Gal | Antitumor | [64] |
Gracilaria fisheri | Sulphated galactan | - | Gal | β-1,3-Gal and α-1,4-Gal | Antioxidant | [65] |
Cryptonemia seminervis | Sulphated galactan | 51.6 k | Gal, trace in Glc, Ara | β-1,3-Gal and α-1,4-Gal | Anti-metapneumovirus | [66] |
Gelidium crinale | Sulphated galactan | 300–600 k | Gal | α-1,3-Gal and α-1,4-Gal | Antiinflammatory | [67] |
Brown algae | - | - | - | - | - | - |
Alaria marginata | Galactofucan | - | Fuc:Gal:Xyl = 47.5:47.3:5.2 | →3)-α-l-Fuc-(2,4-SO3−)-(1→ | Anticancer | [32] |
Hizikia fusiforme | - | - | Fuc:Gal:Xyl:Glc = 1.00:0.50:0.24:0.21 | - | Immunomodulatory | [68] |
Cystoseira sedoides | Fucoidan | 642 k | Fuc and Uronic acid | α-1,3 or α-1,4-Fuc | Antiinflammatory | [69] |
Coccophora langsdorfii | Fucoidan | - | Fuc | α-1,3 and α-1,4-Fuc | Anticancer | [70] |
Eisenia bicyclis | Laminaran | 19–27 k | Glc | β-1,3 and β-1,6-Glc | Anticancer | [71] |
Scytothamnus australis | Sulphated fucan | - | Fuc:Xyl:Glc = 40.8:1.5:1 | α-1,3-Fuc | Anti-HSV1 | [72] |
Sargassum fusiforme | Laminaran | 27.6 k | Glc:Gal = 1.13:0.38 | β-1,3-Glc, β-1,6-Glc | - | [73] |
Laminaria japonica | Laminaran | - | Man:Ara:Glc:Gal:Fuc = 3.27:8.61:4.23:12.12:46.93 | - | Antioxidant | [74] |
Green algae | - | - | - | - | - | - |
Enteromorpha linza | Rhamnan sulphate | 108.4 k | Rha:Xyl:Man:Glc:Gal = 3.6:1.0:0.31:0.28:0.19 | 1,4-Rha | Antioxidant | [75] |
Codium divaricatum | Sulphated galactan | 37.9 k | Gal:Glc = 97.8:2.16 | 1,3- β-Gal | Anti-coagulant | [53] |
Capsosiphon fulvescens | Ulvan | - | Rha:Xyl:Man = 45.0:44.1:10.2 | 4)-β-Xyl-(1→4)-α-Rha-(1→ | Anticoagulant | [49] |
Ulva armoricana | Ulvan | 140–500 k | Rha:Gal:Glc:Xyl = 40.0:6.7:26.2:4.4 | - | Antiviral | [25] |
Ulva pertusa | Ulvan | 28.2 k | - | - | Antiradiation | [76] |
Monostroma angicava | Rhamnan sulphate | 88.1 k | Rha | α-1,2-Rha, α-1,3-Rha | Anticoagulant | [58] |
Gayralia oxysperma | Rhamnan sulphate | 109 k | Rha:Xyl:Glc = 76.0:17.3:4.4 | α-1,3-Rha | Antitumor | [77] |
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Xu, S.-Y.; Huang, X.; Cheong, K.-L. Recent Advances in Marine Algae Polysaccharides: Isolation, Structure, and Activities. Mar. Drugs 2017, 15, 388. https://doi.org/10.3390/md15120388
Xu S-Y, Huang X, Cheong K-L. Recent Advances in Marine Algae Polysaccharides: Isolation, Structure, and Activities. Marine Drugs. 2017; 15(12):388. https://doi.org/10.3390/md15120388
Chicago/Turabian StyleXu, Shu-Ying, Xuesong Huang, and Kit-Leong Cheong. 2017. "Recent Advances in Marine Algae Polysaccharides: Isolation, Structure, and Activities" Marine Drugs 15, no. 12: 388. https://doi.org/10.3390/md15120388