Antiviral Cyanometabolites—A Review
Global processes, such as climate change, frequent and distant travelling and population growth, increase the risk of viral infection spread. Unfortunately, the number of effective and accessible medicines for the prevention and treatment of these infections is limited. Therefore, in recent years, e...
| Published in: | Biomolecules |
|---|---|
| Main Authors: | Hanna Mazur-Marzec, Marta Cegłowska, Robert Konkel, Krzysztof Pyrć |
| Format: | Article |
| Language: | English |
| Published: |
MDPI AG
2021-03-01
|
| Subjects: | |
| Online Access: | https://www.mdpi.com/2218-273X/11/3/474 |
Similar Items
Genome Mining of <i>Pseudanabaena galeata</i> CCNP1313 Indicates a New Scope in the Search for Antiproliferative and Antiviral Agents
by: Michał Grabski, et al.
Published: (2024-08-01)
by: Michał Grabski, et al.
Published: (2024-08-01)
Antiviral Potential of Algal Metabolites—A Comprehensive Review
by: António Pagarete, et al.
Published: (2021-02-01)
by: António Pagarete, et al.
Published: (2021-02-01)
Algal and Cyanobacterial Lectins and Their Antimicrobial Properties
by: José Abel Fernández Romero, et al.
Published: (2021-12-01)
by: José Abel Fernández Romero, et al.
Published: (2021-12-01)
Structural Diversity and Biological Activity of Cyanopeptolins Produced by <i>Nostoc edaphicum</i> CCNP1411
by: Robert Konkel, et al.
Published: (2023-09-01)
by: Robert Konkel, et al.
Published: (2023-09-01)
Man-Specific Lectins from Plants, Fungi, Algae and Cyanobacteria, as Potential Blockers for SARS-CoV, MERS-CoV and SARS-CoV-2 (COVID-19) Coronaviruses: Biomedical Perspectives
by: Annick Barre, et al.
Published: (2021-06-01)
by: Annick Barre, et al.
Published: (2021-06-01)
Biochemical characterization of a novel purified lectin extracted from Pleurotus ostreatus mushroom for its antiviral activity
by: Yousra A. El-Maradny, et al.
Published: (2025-07-01)
by: Yousra A. El-Maradny, et al.
Published: (2025-07-01)
Polysaccharides and Lectins: A Natural Complementary Approach against the SARS-CoV-2 Pandemic
by: Radu Lefter, et al.
Published: (2024-04-01)
by: Radu Lefter, et al.
Published: (2024-04-01)
Enveloped Viruses: Pathogenetic Targets for Cyanobacterial Lectins
by: N. N. BESEDNOVA, et al.
Published: (2022-09-01)
by: N. N. BESEDNOVA, et al.
Published: (2022-09-01)
Eighteen New Aeruginosamide Variants Produced by the Baltic Cyanobacterium <i>Limnoraphis</i> CCNP1324
by: Marta Cegłowska, et al.
Published: (2020-08-01)
by: Marta Cegłowska, et al.
Published: (2020-08-01)
Specific Chemical and Genetic Markers Revealed a Thousands-Year Presence of Toxic Nodularia spumigena in the Baltic Sea
by: Marta Cegłowska, et al.
Published: (2018-04-01)
by: Marta Cegłowska, et al.
Published: (2018-04-01)
Characterization of a Novel Mannose-Binding Lectin with Antiviral Activities from Red Alga, <i>Grateloupia chiangii</i>
by: Hyun-Ju Hwang, et al.
Published: (2020-02-01)
by: Hyun-Ju Hwang, et al.
Published: (2020-02-01)
Genome-wide analysis of lectins in cyanobacteria: from evolutionary mode to motif patterns
by: Tongli Xu, et al.
Published: (2023-11-01)
by: Tongli Xu, et al.
Published: (2023-11-01)
Cyanopeptolins with Trypsin and Chymotrypsin Inhibitory Activity from the Cyanobacterium Nostoc edaphicum CCNP1411
by: Hanna Mazur-Marzec, et al.
Published: (2018-06-01)
by: Hanna Mazur-Marzec, et al.
Published: (2018-06-01)
Antiviral Properties of Basidiomycetes Metabolites
by: A. V. Avtonomova, et al.
Published: (2020-05-01)
by: A. V. Avtonomova, et al.
Published: (2020-05-01)
A Designed “Nested” Dimer of Cyanovirin-N Increases Antiviral Activity
by: Brian W. Woodrum, et al.
Published: (2016-06-01)
by: Brian W. Woodrum, et al.
Published: (2016-06-01)
Nostocyclopeptides as New Inhibitors of 20S Proteasome
by: Anna Fidor, et al.
Published: (2021-10-01)
by: Anna Fidor, et al.
Published: (2021-10-01)
Aeruginosin 525 (AER525) from Cyanobacterium <i>Aphanizomenon</i> Sp. (KUCC C2): A New Serine Proteases Inhibitor
by: Donata Overlingė, et al.
Published: (2024-11-01)
by: Donata Overlingė, et al.
Published: (2024-11-01)
Antiviral Activities of Algal-Based Sulfated Polysaccharides
by: Jonathan Ardhianto Panggabean, et al.
Published: (2022-02-01)
by: Jonathan Ardhianto Panggabean, et al.
Published: (2022-02-01)
Phytoplankton of the Curonian Lagoon as a New Interesting Source for Bioactive Natural Products. Special Impact on Cyanobacterial Metabolites
by: Donata Overlingė, et al.
Published: (2021-08-01)
by: Donata Overlingė, et al.
Published: (2021-08-01)
Recent advances of edible marine algae-derived sulfated polysaccharides in antiviral treatments: challenges vs. opportunities
by: Xiaoying Dong, et al.
Published: (2025-03-01)
by: Xiaoying Dong, et al.
Published: (2025-03-01)
Algal-Derived Hydrocolloids with Potential Antiviral Activity: A Mechanistic Approach
by: Cláudia S. G. P. Pereira, et al.
Published: (2022-09-01)
by: Cláudia S. G. P. Pereira, et al.
Published: (2022-09-01)
Hemorrhagic Fevers: Antiviral Effects and Molecular Targets of Biologically Active Polysaccharides and Lectins from Marine Aquatic Organisms
by: N. N. Besednova, et al.
Published: (2022-08-01)
by: N. N. Besednova, et al.
Published: (2022-08-01)
Potential Antiviral Properties of Industrially Important Marine Algal Polysaccharides and Their Significance in Fighting a Future Viral Pandemic
by: Renu Geetha Bai, et al.
Published: (2021-09-01)
by: Renu Geetha Bai, et al.
Published: (2021-09-01)
Antiviral Activity and Mechanisms of Seaweeds Bioactive Compounds on Enveloped Viruses—A Review
by: Silvia Lomartire, et al.
Published: (2022-06-01)
by: Silvia Lomartire, et al.
Published: (2022-06-01)
Supramolecular Binding with Lectins: A New Route for Non-Covalent Functionalization of Polysaccharide Matrices
by: Devis Montroni, et al.
Published: (2022-09-01)
by: Devis Montroni, et al.
Published: (2022-09-01)
Oncolytic Vaccinia Virus Expressing White-Spotted Charr Lectin Regulates Antiviral Response in Tumor Cells and Inhibits Tumor Growth In Vitro and In Vivo
by: Xue Wang, et al.
Published: (2021-05-01)
by: Xue Wang, et al.
Published: (2021-05-01)
Antiviral Action of Sulfated Polysaccharides
by: I. D. Makarenkova, et al.
Published: (2020-05-01)
by: I. D. Makarenkova, et al.
Published: (2020-05-01)
<i>Urtica dioica</i> Agglutinin Prevents Rabies Virus Infection in a Muscle Explant Model
by: Xinyu Wang, et al.
Published: (2023-04-01)
by: Xinyu Wang, et al.
Published: (2023-04-01)
Griffithsin and Carrageenan Combination Results in Antiviral Synergy against SARS-CoV-1 and 2 in a Pseudoviral Model
by: Sahar Alsaidi, et al.
Published: (2021-07-01)
by: Sahar Alsaidi, et al.
Published: (2021-07-01)
Cyanobacterial metabolites as novel drug candidates in corona viral therapies: A review
by: Srinivasan Prabhu, et al.
Published: (2022-09-01)
by: Srinivasan Prabhu, et al.
Published: (2022-09-01)
Elucidating the antiviral potential of polysaccharides
by: Rabab Fatima, et al.
Published: (2023-01-01)
by: Rabab Fatima, et al.
Published: (2023-01-01)
The Antiviral Activities and Mechanisms of Marine Polysaccharides: An Overview
by: Hua-Shi Guan, et al.
Published: (2012-12-01)
by: Hua-Shi Guan, et al.
Published: (2012-12-01)
Mannose-Binding Lectins as Potent Antivirals against SARS-CoV-2
by: Victória Riquena Grosche, et al.
Published: (2023-09-01)
by: Victória Riquena Grosche, et al.
Published: (2023-09-01)
A Review Study on Macrolides Isolated from Cyanobacteria
by: Mengchuan Wang, et al.
Published: (2017-04-01)
by: Mengchuan Wang, et al.
Published: (2017-04-01)
Extracellular Polymeric Substances: Still Promising Antivirals
by: Raquel Bello-Morales, et al.
Published: (2022-06-01)
by: Raquel Bello-Morales, et al.
Published: (2022-06-01)
Natural Compounds as Potential Basis for the Prevention and Treatment of Hepatitis C
by: N. N. Besednova, et al.
Published: (2024-03-01)
by: N. N. Besednova, et al.
Published: (2024-03-01)
Toxic cyanobacteria blooms in the Lithuanian part of the Curonian Lagoon
by: Artūras Razinkovas, et al.
Published: (2009-06-01)
by: Artūras Razinkovas, et al.
Published: (2009-06-01)
Seaweed polysaccharides: Sources, structure and biomedical applications with special emphasis on antiviral potentials
by: Alima Akter, et al.
Published: (2024-12-01)
by: Alima Akter, et al.
Published: (2024-12-01)
<i>Pseudanabaena galeata</i> CCNP1313—Biological Activity and Peptides Production
by: Marta Cegłowska, et al.
Published: (2022-05-01)
by: Marta Cegłowska, et al.
Published: (2022-05-01)
Antioxidant Activity of Mushroom Extracts/Polysaccharides—Their Antiviral Properties and Plausible AntiCOVID-19 Properties
by: Sechul Chun, et al.
Published: (2021-11-01)
by: Sechul Chun, et al.
Published: (2021-11-01)
Similar Items
-
Genome Mining of <i>Pseudanabaena galeata</i> CCNP1313 Indicates a New Scope in the Search for Antiproliferative and Antiviral Agents
by: Michał Grabski, et al.
Published: (2024-08-01) -
Antiviral Potential of Algal Metabolites—A Comprehensive Review
by: António Pagarete, et al.
Published: (2021-02-01) -
Algal and Cyanobacterial Lectins and Their Antimicrobial Properties
by: José Abel Fernández Romero, et al.
Published: (2021-12-01) -
Structural Diversity and Biological Activity of Cyanopeptolins Produced by <i>Nostoc edaphicum</i> CCNP1411
by: Robert Konkel, et al.
Published: (2023-09-01) -
Man-Specific Lectins from Plants, Fungi, Algae and Cyanobacteria, as Potential Blockers for SARS-CoV, MERS-CoV and SARS-CoV-2 (COVID-19) Coronaviruses: Biomedical Perspectives
by: Annick Barre, et al.
Published: (2021-06-01)
