Ten-Year Research Update Review: Antiviral Activities from Marine Organisms

被引:45
作者
Riccio, Gennaro [1 ]
Ruocco, Nadia [1 ]
Mutalipassi, Mirko [1 ]
Costantini, Maria [1 ]
Zupo, Valerio [1 ]
Coppola, Daniela [1 ,2 ]
de Pascale, Donatella [1 ,3 ]
Lauritano, Chiara [1 ]
机构
[1] CAP, Marine Biotechnol Dept, Stn Zool Anton Dohrn, I-80121 Naples, Italy
[2] CNR, Inst Biosci & BioResources IBBR, Via Pietro Castellino 111, I-80131 Naples, Italy
[3] CNR, Inst Biochem & Cell Biol IBBC, Via Pietro Castellino 111, I-80131 Naples, Italy
基金
欧盟地平线“2020”;
关键词
marine organisms; antiviral; marine natural products; viruses; HEPATITIS-C VIRUS; VIRAL DIARRHEA VIRUS; SPONGE PETROMICA-CITRINA; SEA-DERIVED FUNGUS; SOFT CORAL; NATURAL-PRODUCTS; MUD CRAB; POLYHYDROXYLATED STEROIDS; SULFATED POLYSACCHARIDES; SECONDARY METABOLITES;
D O I
10.3390/biom10071007
中图分类号
Q5 [生物化学]; Q7 [分子生物学];
学科分类号
071010 ; 081704 ;
摘要
Oceans cover more than 70 percent of the surface of our planet and are characterized by huge taxonomic and chemical diversity of marine organisms. Several studies have shown that marine organisms produce a variety of compounds, derived from primary or secondary metabolism, which may have antiviral activities. In particular, certain marine metabolites are active towards a plethora of viruses. Multiple mechanisms of action have been found, as well as different targets. This review gives an overview of the marine-derived compounds discovered in the last 10 years. Even if marine organisms produce a wide variety of different compounds, there is only one compound available on the market, Ara-A, and only another one is in phase I clinical trials, named Griffithsin. The recent pandemic emergency caused by SARS-CoV-2, also known as COVID-19, highlights the need to further invest in this field, in order to shed light on marine compound potentiality and discover new drugs from the sea.
引用
收藏
页码:1 / 36
页数:36
相关论文
共 258 条
[1]   The Pharmacological Potential of Non-ribosomal Peptides from Marine Sponge and Tunicates [J].
Agrawal, Shivankar ;
Adholeya, Alok ;
Deshmukh, Sunil K. .
FRONTIERS IN PHARMACOLOGY, 2016, 7
[2]   Antiviral Potential of Algae Polysaccharides Isolated from Marine Sources: A Review [J].
Ahmadi, Azin ;
Moghadamtousi, Soheil Zorofchian ;
Abubakar, Sazaly ;
Zandi, Keivan .
BIOMED RESEARCH INTERNATIONAL, 2015, 2015
[3]   Anti-H5N1 virus metabolites from the Red Sea soft coral, Sinularia candidula [J].
Ahmed, Safwat ;
Ibrahim, Amany ;
Arafa, Abdel Satar .
TETRAHEDRON LETTERS, 2013, 54 (19) :2377-2381
[4]   Antioxidant activities of phlorotannins purified from Ecklonia cava on free radical scavenging using ESR and H2O2-mediated DNA damage [J].
Ahn, Gin-Nae ;
Kim, Kil-Nam ;
Cha, Seon-Heui ;
Song, Choon-Bok ;
Lee, Jehee ;
Heo, Moon-Soo ;
Yeo, In-Kyu ;
Lee, Nam-Ho ;
Jee, Young-Heun ;
Kim, Jin-Soo ;
Heu, Min-Soo ;
Jeon, You-Jin .
EUROPEAN FOOD RESEARCH AND TECHNOLOGY, 2007, 226 (1-2) :71-79
[5]  
Al-Nahas MO, 2011, AFR J MICROBIOL RES, V5, P3823
[6]   Sulphated Polysaccharides from Ulva clathrata and Cladosiphon okamuranus Seaweeds both Inhibit Viral Attachment/Entry and Cell-Cell Fusion, in NDV Infection [J].
Alberto Aguilar-Briseno, Jose ;
Elizabeth Cruz-Suarez, Lucia ;
Sassi, Jean-Francois ;
Ricque-Marie, Denis ;
Zapata-Benavides, Pablo ;
Mendoza-Gamboa, Edgar ;
Rodriguez-Padilla, Cristina ;
Maria Trejo-Avila, Laura .
MARINE DRUGS, 2015, 13 (02) :697-712
[7]   Marine Microalgae with Anti-Cancer Properties [J].
Andrade, Kevin A. Martinez ;
Lauritano, Chiara ;
Romano, Giovanna ;
Ianora, Adrianna .
MARINE DRUGS, 2018, 16 (05)
[8]   BROMINATED TYROSINE METABOLITES FROM AN UNIDENTIFIED SPONGE [J].
ARABSHAHI, L ;
SCHMITZ, FJ .
JOURNAL OF ORGANIC CHEMISTRY, 1987, 52 (16) :3584-3586
[9]  
Bahroodi S., 2018, INFECT EPIDEMIOLOGY, V4, P153
[10]  
BALSEIRO P, 2011, PLOS ONE, V0006