The diversity of ant microbial secondary metabolites produced by fungal endophytes: an interdisciplinary perspective

被引:165
作者
Mousa, Walaa Kamel [1 ,2 ]
Raizada, Manish N. [1 ]
机构
[1] Univ Guelph, Dept Plant Agr, Guelph, ON N1G 2W1, Canada
[2] Mansoura Univ, Dept Pharmacognosy, Mansoura, Egypt
关键词
pathogen; mycology; natural products; anti-microbial; antifungal; BIOACTIVE METABOLITES; LOLINE ALKALOIDS; SPRUCE BUDWORM; BREFELDIN-A; ANTIFUNGAL ACTIVITY; GRASS-ENDOPHYTE; ACREMONIUM-ZEAE; PHOMOPSIS SP; PERICONIA SP; PACIFIC YEW;
D O I
10.3389/fmicb.2013.00065
中图分类号
Q93 [微生物学];
学科分类号
071005 ; 100705 ;
摘要
Endophytes are microbes that inhabit host plants without causing disease and are reported to be reservoirs of metabolites that combat microbes and other pathogens. Here we review diverse classes of secondary metabolites, focusing on anti-microbial compounds, synthesized by fungal endophytes including terpenoids, alkaloids, phenylpropanoids, aliphatic compounds, polyketides, and peptides from the interdisciplinary perspectives of biochemistry, genetics, fungal biology, host plant biology, human and plant pathology. Several trends were apparent. First, host plants are often investigated for endophytes when there is prior indigenous knowledge concerning human medicinal uses (e.g., Chinese herbs). However, within their native ecosystems, and where investigated, endophytes were shown to produce compounds that target pathogens of the host plant. In a few examples, both fungal endophytes and their hosts were reported to produce the same compounds. Terpenoids and polyketides are the most purified anti-microbial secondary metabolites from endophytes, while flavonoids and lignans are rare. Examples are provided where fungal genes encoding anti-microbial compounds are clustered on chromosomes. As different genera of fungi can produce the same metabolite, genetic clustering may facilitate sharing of anti-microbial secondary metabolites between fungi. We discuss gaps in the literature and how more interdisciplinary research may lead to new opportunities to develop bio-based commercial products to combat global crop and human pathogens.
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页数:18
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共 123 条
[1]   Bioactive metabolites from the endophytic fungus Ampelomyces sp isolated from the medicinal plant Urospermum picroides [J].
Aly, Amal H. ;
Edrada-Ebel, RuAngelie ;
Wray, Victor ;
Mueller, Werner E. G. ;
Kozytska, Svitlana ;
Hentschel, Ute ;
Proksch, Peter ;
Ebel, Rainer .
PHYTOCHEMISTRY, 2008, 69 (08) :1716-1725
[2]   Fungal endophytes from higher plants: a prolific source of phytochemicals and other bioactive natural products [J].
Aly, Amal H. ;
Debbab, Abdessamad ;
Kjer, Julia ;
Proksch, Peter .
FUNGAL DIVERSITY, 2010, 41 (01) :1-16
[3]   BIOLOGICAL-CONTROL OF RHIZOCTONIA STEM CANKER AND BLACK SCURF OF POTATO [J].
BEAGLERISTAINO, JE ;
PAPAVIZAS, GC .
PHYTOPATHOLOGY, 1985, 75 (05) :560-564
[5]   CYTOCHALASANS - NEW CLASS OF BIOLOGICALLY-ACTIVE MICROBIAL METABOLITES [J].
BINDER, M ;
TAMM, C .
ANGEWANDTE CHEMIE-INTERNATIONAL EDITION, 1973, 12 (05) :370-380
[6]   Production of loline alkaloids by the grass endophyte, Neotyphodium uncinatum, in defined media [J].
Blankenship, JD ;
Spiering, MJ ;
Wilkinson, HH ;
Fannin, FF ;
Bush, LP ;
Schardl, CL .
PHYTOCHEMISTRY, 2001, 58 (03) :395-401
[7]   LaeA, a regulator of morphogenetic fungal virulence factors [J].
Bok, JW ;
Balajee, SA ;
Marr, KA ;
Andes, D ;
Nielsen, KF ;
Frisvad, JC ;
Keller, NP .
EUKARYOTIC CELL, 2005, 4 (09) :1574-1582
[8]   Molecular diagnostics of some trichodorid nematodes and associated Tobacco rattle virus [J].
Boutsika, K ;
Phillips, MS ;
MacFarlane, SA ;
Brown, DJF ;
Holeva, RC ;
Blok, VC .
PLANT PATHOLOGY, 2004, 53 (01) :110-116
[9]   CR377, a new pentaketide antifungal agent isolated from an endophytic fungus [J].
Brady, SF ;
Clardy, J .
JOURNAL OF NATURAL PRODUCTS, 2000, 63 (10) :1447-1448
[10]   METABOLITES TOXIC TO SPRUCE BUDWORM FROM BALSAM FIR NEEDLE ENDOPHYTES [J].
CALHOUN, LA ;
FINDLAY, JA ;
MILLER, JD ;
WHITNEY, NJ .
MYCOLOGICAL RESEARCH, 1992, 96 :281-286