Marine-derived Phoma-the gold mine of bioactive compounds

被引:21
作者
Rai, Mahendra [1 ]
Gade, Aniket [1 ]
Zimowska, Beata [2 ]
Ingle, Avinash P. [1 ,3 ]
Ingle, Pramod [1 ]
机构
[1] SGB Amravati Univ, Dept Biotechnol, Amravati 444602, Maharashtra, India
[2] Univ Life Sci Lublin, Inst Plant Pathol & Mycol, Dept Plant Protect, 7 K St Leszczynskiego St, PL-20068 Lublin, Poland
[3] Univ Sao Paulo, Engn Sch Lorena, Dept Biotechnol, Sao Paulo, Brazil
关键词
Phoma; Marine; Secondary metabolites; Bioactive compounds; Biological and pharmacological activities; EXIGUA VAR. EXIGUA; LEPTOSPHAERIA-MACULANS; NATURAL-PRODUCTS; MOLECULAR PHYLOGENY; BIOLOGICAL-ACTIVITY; ENDOPHYTIC FUNGUS; BLACKLEG FUNGUS; PAF ANTAGONIST; METABOLITES; PHYTOTOXIN;
D O I
10.1007/s00253-018-9329-2
中图分类号
Q81 [生物工程学(生物技术)]; Q93 [微生物学];
学科分类号
071005 ; 0836 ; 090102 ; 100705 ;
摘要
The genus Phoma contains several species ubiquitously present in soil, water, and environment. There are two major groups of Phoma, viz., terrestrial and marine. After 1981 researchers all over the world have focused on marine-derived Phoma for their bioactive compounds. The marine Phoma are very rich sources for novel bioactive secondary metabolites, which could potentially be used as drugs. Recently, a large number of structurally unique metabolites with potential biological and pharmacological activities have been isolated from the marine Phoma species particularly Phoma herbarum, P. sorghina, and P. tropica. These metabolites mainly include diterpenes, enolides, lactones, quinine, phthalate, and anthraquinone. Most of these compounds possess antimicrobial, anticancer, radical scavenging, and cytotoxic properties. The present review has been focused on the general background of Phoma, current approaches used for its identification and their limitations, difference between terrestrial and marine Phoma species. In addition, this review summarizes the novel bioactive compounds derived from marine Phoma and their biological activities.
引用
收藏
页码:9053 / 9066
页数:14
相关论文
共 120 条
[1]   Genetic differentiation of Phoma exigua varieties by means of AFLP fingerprints [J].
Abeln, ECA ;
Stax, AM ;
de Gruyter, J ;
van der AA, HA .
MYCOLOGICAL RESEARCH, 2002, 106 :419-427
[2]   STRUCTURES OF CYTOCHALASINS A AND B [J].
ALDRIDGE, DC ;
ARMSTRONG, JJ ;
SPEAKE, RN ;
TURNER, WB .
JOURNAL OF THE CHEMICAL SOCIETY C-ORGANIC, 1967, (17) :1667-+
[3]  
Aveskamp MM, 2008, FUNGAL DIVERS, V31, P1
[4]   Highlights of the Didymellaceae: A polyphasic approach to characterise Phoma and related pleosporalean genera [J].
Aveskamp, M. M. ;
de Gruyter, J. ;
Woudenberg, J. H. C. ;
Verkley, G. J. M. ;
Crous, P. W. .
STUDIES IN MYCOLOGY, 2010, (65) :1-60
[5]  
Aveskamp MM, 2009, MOL PLANT PATHOL, V10, P403, DOI [10.1111/J.1364-3703.2009.00540.X, 10.1111/j.1364-3703.2009.00540.x]
[6]   NONSPECIFIC PHYTOTOXIC EFFECTS OF SIRODESMINS ON HOST AND NONHOST PLANTS OF LEPTOSPHAERIA-MACULANS [J].
BADAWY, HMA ;
HOPPE, HH .
JOURNAL OF PHYTOPATHOLOGY-PHYTOPATHOLOGISCHE ZEITSCHRIFT, 1989, 127 (02) :137-145
[7]   PRODUCTION OF PHYTOTOXIC SIRODESMINS BY AGGRESSIVE STRAINS OF LEPTOSPHAERIA-MACULANS DIFFERING IN INTERACTIONS WITH OIL SEED RAPE GENOTYPES [J].
BADAWY, HMA ;
HOPPE, HH .
JOURNAL OF PHYTOPATHOLOGY-PHYTOPATHOLOGISCHE ZEITSCHRIFT, 1989, 127 (02) :146-157
[8]   The effects of Phoma macrostoma on nontarget plant and target weed species [J].
Bailey, K. L. ;
Pitt, W. M. ;
Falk, S. ;
Derby, J. .
BIOLOGICAL CONTROL, 2011, 58 (03) :379-386
[9]   Social and economic drivers shaping the future of biological control: A Canadian perspective on the factors affecting the development and use of microbial biopesticides [J].
Bailey, K. L. ;
Boyetchko, S. M. ;
Laengle, T. .
BIOLOGICAL CONTROL, 2010, 52 (03) :221-229
[10]   Natural products vs. combinatorials:: A case study [J].
Baker, D ;
Mocek, U ;
Garr, C .
BIODIVERSITY: NEW LEADS FOR THE PHARMACEUTICAL AND AGROCHEMICAL INDUSTRIES, 2000, (257) :66-72