An Update of Lectins from Marine Organisms: Characterization, Extraction Methodology, and Potential Biofunctional Applications
Abstract
:1. Introduction
2. Marine Organism-Derived Lectins
2.1. Rhamnose Binding Lectins (RBLs)
2.2. Fucose-Binding Lectins (FTLs)
2.3. C-Type Lectins
2.4. Galectins
2.5. Galactose Binding Lectins
2.6. Mannose-Binding Lectins
2.7. Lactose-Binding Lectins
3. Extraction and Purification of Lectins
3.1. Extraction of Lectins from Fish Muscle
3.2. Extraction of Lectins from Fish Skin Mucus
3.3. Lectin Extraction and Purification from Crustaceans by Affinity Chromatography
3.4. Extraction of Lectins from Bivalves via Divinyl Sulphone Activation Method
3.5. Quantification of Lectins
4. Physiological Functions of Lectins in Host Body
5. Other Biological Activities of Lectins
5.1. Antibacterial Activity
Biological Activity | Model System | Source of Lectin | Test Types | Applied Strain | Optimum Dose | Findings | References |
---|---|---|---|---|---|---|---|
Antibacterial | Microorganisms and bay scallops | Bay scallop (Argopecten irradians) C type lectin (Ai Lec) | RT-PCR |
| 50 μg/mL | Ai Lec was involved in the immune response to Gram-positive and Gram-negative microbial infection, especially Vibrio anguillarum and Micrococcus luteus in bay scallop. | [36] |
Microorganism and demosponge | Demosponge (Suberites domuncula) Suberites lectin | PCR |
| 10 μg/mL | The lectin showed antibacterial activity against Gram-positive (Staphylococcus aureus) and Gram-negative bacteria (Escherichia coli). | [131] | |
Microorganism and manila clam | Manila clam (Ruditapes philippinarum) Manila clam lectin (MCL-4) | Inverted microscope |
| 25 μg/mL | MCL-4 had bacteriostatic properties and may contribute to the host defense mechanisms against invading microorganisms in Manila clam | [151] | |
Microorganism and rabbit erythrocyte | Cobia (Rachycentron canadum) Tetrameric lection | Ion chromatography |
| 250 μg/mL | The lectin showed antibacterial activity toward E. coli. | [10] | |
Microorganism and human erythrocytes | Marine sponge (Cliona varians) CvL lectin | Affinity chromatography |
| 25 μg/mL | CvL lectin showed intense antibacterial activity against Bacillus subtilis. | [150] | |
Antiviral | Cell line, virus, and fish | Flounder (Paralichthys olivaceus) Galectin-1 | qRt-PCR |
| 50 μg/mL | Galectin-1 from flounder was able to neutralize the lymphocystis disease virus (LCDV) and exhibited anti-inflammatory activity against LCDV. | [152] |
Shrimp | Shrimp (Penaeus monodon) C-type lectin | PCR |
| - | A lectin domain containing PmAV protein isolated from shrimp was effective against white spot syndrome virus (WSSV) | [153] | |
Virus and cell lines | Marine worm (Chaetopterus variopedatus) β-galactose-specific lectin (CVL) | qRt-PCR |
| 25–100 μg/mL | CVL blocked the cell–cell fusion process of the human immunodeficiency virus infected and uninfected cells with an EC50 of 0.07 μM and has the potential to be an anti-HIV-1 agent. | [154] | |
Virus and cell lines | Sea worm (Serpula vermicularis) GlcNAc-specific lection (SVL) | ELISA |
| 30 μg/mL | SVL showed potential activity against human immunodeficiency virus (HIV-1) by producing viral p24 antigen, with EC50 values of 0.23 and 0.15 μg/mL. | [155] | |
Antifungal | Microbial cells | Chinese amphioxus (Branchiostoma belcheri) C-type lectin (AmphiCTL1) | Q-PCR |
| 200 μg/mL | AmphiCTL-1 lectin showed potential activity against Saccharomyces cerevisiae. | [153] |
Microbial cells | Orange-spotted grouper (Epinephelus coioides) C-type lectin (Ec-CTL) | Q-PCR |
| 10 μg | This lectin showed potent activity against S. cerevisiae. | [156] | |
Microbial cells | Lamprey (Lampetra japonica) Serum lectin (NPGBP) | RT-PCR |
| 10 mg/mL | The lectin showed agglutinating activities against Candida albicans. | [157] | |
Anticancer or antitumour | Virus and cell lines | Marine worm (Chaetopterus variopedatus) β-galactose-specific lectin (CVL) | qRt-PCR | - | 25–100 μg/mL | CVL blocked the cell–cell fusion process of the human immunodeficiency virus infected and uninfected cells with an EC50 of 0.07 μM and has the potential to be an anti-HIV-1 agent. | [154] |
Virus and cell lines | Sea worm (Serpula vermicularis) GlcNAc-specific lection (SVL) | ELISA | - | 30 μg/mL | SVL showed potential activity against human immunodeficiency virus (HIV-1) by producing viral p24 antigen, with EC50 values of 0.23 and 0.15 μg/mL. | [155] | |
Tumor cell line | Chinook salmon (Oncorhynchus tshawytscha) Roe lectin | Microplate reader | - | - | The lectin showed intense antiproliferative activity towards human breast cancer MCF-7 cells and hepatoma Hep G2 cells. | [158] | |
Cancer cell lines | Marine sponge (Cliona varians) CvL lectin | Flow cytometry | - | 70–100 μg/mL | CvL lectin showed potential activity on K562 and Jurkat cancer cell lines. | [159] | |
Cancer cells | Wheat germ (Triticum vulgaris) WGA lectin | Electrode array | - | 100 μg/mL | A label-free electrochemical impedance spectroscopy (EIS) biosensor could be promising for the label-free profiling of the glycan expression of cancer-related glycoproteins in the early stage of a cancer diagnosis. | [160] |
5.2. Anti-Viral Activity
5.2.1. Coronavirus
5.2.2. Lectins as Potential Inhibitors of SARS-CoV-2
5.3. Anti-Fungal Activity
5.4. Activity Related to Homeostatic Maintenance of Intestinal Microbiota
5.5. Anti-Cancer or Anti-Tumor Activities
5.6. Lectins as an Immunity Enhancer
5.7. Other Potential Applications
6. Consumer Expectations in the Safety of Lectin-Based Food Products
7. Conclusions
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Acknowledgments
Conflicts of Interest
References
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Types of Organisms | Lectin Family | Specificity | Tissue Expression | Features/Functions | References |
---|---|---|---|---|---|
Turbot (Scophthalmus maximus L.) | RBL | l-rhamnose or d-galactose | Egg cortex and ovary cells |
| [27] |
Purplish bifurcate mussel (Mytilisepta virgata) | RBL | Sevil, a glycan binding lectin | Mantles and gills |
| [28] |
Sea urchin (Anthocidaris crassispina) | RBL (SUEL-type) | d-Galactose | Eggs |
| [29] |
Southern catfish (Silurus meridionalis) | RBL | l-rhamnose | Gill, barbel |
| [30] |
Nile tilapia (Oreochromis niloticus) | RBL | l-rhamnose | Liver, gills, intestines |
| [31] |
Catfish (Silurus asotus) | RBL | α-galactoside | Eggs |
| [32,33,34] |
Turbot (Scophthalmus maximus L.) | RBL | l-rhamnose | Egg, ovaries |
| [27] |
Chum salmon (Oncorhynchus keta) | RBL | l-rhamnose | Eggs |
| [35] |
Shishamo smelt (Osmerus lanceolatus) | RBL | l-rhamnose | Eggs |
| [34] |
Bay scallop (Argopecten irradians) | CTL | Galactose | Muscle, gonad, hepatopancreas, mantle margine, and gill |
| [36] |
Horsemussels (Modiolus kurilensis) | CTL | Glycan | Hemolymph |
| [37] |
Clam (Glycymeris yessoensis) | CTL | Peptidoglycan, LPS, β-1,3-glucan and mannan | Hemolymph |
| [38] |
Kadal Shrimp (Metapenaeus dobsoni) | CTL | Glycan | Hemolymph |
| [39] |
Molluscan snail (Hemifusus pugilinus) | CTL | Mannose | Haemolymph |
| [40] |
Manila clam (Venerupis philippinarum) | CTL | Glucan | Gill tissues and hepatopancreas |
| [41] |
Sea urchin (Pseudocentrotus depressus) | CTL | Mannose | Crushed body |
| [42] |
Sea urchin (Pseudocentrotus depressus) | CTL | Glycan | Tube feet |
| [43] |
Mud crab (Scylla paramamosain) | CTL | Glucan | Hemocytes, midgut, muscle, stomach, hapatopancreas, testis, ovaries, and heart |
| [44] |
Brittle star (Ophioplocus japonicus) | CTL | Glucose/xylose | Whole body |
| [45] |
Goldfish (Carassius auratus) | CTL | Mannose | Liver, spleen, kidney |
| [46] |
Turbot (Scophthalmus maximus) Black rockfish (Sebastes schlegelii) (SsLTL) | LTL | d-mannose | Skin, gill, and intestine |
| [47,48,49] |
Giant prawn (Macrobrachium rosenbergii) | LTL | Mannose | Hemocytes, intestine, and hepatopancreas |
| [50] |
Sea bass (Dicentrarchus labrax L.) | FTL | Fucose-binding | Liver, larvae, eggs, intestine |
| [51,52] |
Striped beakfish (rock bream) (Oplegnathus fasciatus) | FTL | Fucose-binding | Intestines |
| [53] |
Striped Bass (Morone saxatilis) | FTL | Fucose-binding | Liver |
| [54] |
sea bass (Dicentrarchus labrax) | FTL | l-rhamnose | Liver and intestine |
| [55] |
Steelhead trout (Oncorhynchus mykiss) | FTL | l-rhamnose | Eggs |
| [56] |
Sea bass (Dicentrarchus labrax) | FTL | l-fucose-binding | Intestine, liver |
| [57] |
Atlantic Salmon (Salmo salar) | Galectin | Glycans | Gill epithelial cell |
| [58] |
Striped snakehead (Channa striatus) | Galectin | Galactosidase | Liver |
| [9] |
Korean rose bitterling (Rhodeus uyekii) | Galectin | β-galactoside | Liver, brain, kidney, ovary, gills, spleen |
| [59] |
Turbot (Scophthalmus maximus L.) | Galectin | β-galactoside | Skin and brain |
| [60] |
Euryhaline rotifers (Brachionus Plicatilis and Proales similis) | Galectins | Carbohydrate-binding domains with long N-terminal region (i.e., ~100 amino acids) β-galactosyl binding lectins |
| [61] | |
Sea Hare (Aplysia kurodai) | GBL | d-galacturonic acid and d-galactose | Eggs |
| [62] |
Pikeperch (Sander lucioperca), rainbow trout (Oncorhynchus mykiss), and maraena whitefish (Coregonus maraena) | Siglecs (Siglec1, Siglec15, CD22, and myelin-associated glycoprotein (MAG)) | Sialic-acid-binding | Head kidney, liver, gills, spleen, heart, and muscle |
| [63] |
Marine sponge (Aplysina fulva) | AFL | Galactose | Crude extract |
| [64] |
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Ahmmed, M.K.; Bhowmik, S.; Giteru, S.G.; Zilani, M.N.H.; Adadi, P.; Islam, S.S.; Kanwugu, O.N.; Haq, M.; Ahmmed, F.; Ng, C.C.W.; et al. An Update of Lectins from Marine Organisms: Characterization, Extraction Methodology, and Potential Biofunctional Applications. Mar. Drugs 2022, 20, 430. https://doi.org/10.3390/md20070430
Ahmmed MK, Bhowmik S, Giteru SG, Zilani MNH, Adadi P, Islam SS, Kanwugu ON, Haq M, Ahmmed F, Ng CCW, et al. An Update of Lectins from Marine Organisms: Characterization, Extraction Methodology, and Potential Biofunctional Applications. Marine Drugs. 2022; 20(7):430. https://doi.org/10.3390/md20070430
Chicago/Turabian StyleAhmmed, Mirja Kaizer, Shuva Bhowmik, Stephen G. Giteru, Md. Nazmul Hasan Zilani, Parise Adadi, Shikder Saiful Islam, Osman N. Kanwugu, Monjurul Haq, Fatema Ahmmed, Charlene Cheuk Wing Ng, and et al. 2022. "An Update of Lectins from Marine Organisms: Characterization, Extraction Methodology, and Potential Biofunctional Applications" Marine Drugs 20, no. 7: 430. https://doi.org/10.3390/md20070430
APA StyleAhmmed, M. K., Bhowmik, S., Giteru, S. G., Zilani, M. N. H., Adadi, P., Islam, S. S., Kanwugu, O. N., Haq, M., Ahmmed, F., Ng, C. C. W., Chan, Y. S., Asadujjaman, M., Chan, G. H. H., Naude, R., Bekhit, A. E. -D. A., Ng, T. B., & Wong, J. H. (2022). An Update of Lectins from Marine Organisms: Characterization, Extraction Methodology, and Potential Biofunctional Applications. Marine Drugs, 20(7), 430. https://doi.org/10.3390/md20070430