Transgenic Expression of Lytic Peptides in Food and Feed Crops to Control Phytopathogens and Preharvest Mycotoxin Contamination

被引:0
作者
Rajasekaran, K. [1 ]
Jaynes, J. M.
Cary, J. W. [1 ]
机构
[1] Agr Res Serv, So Reg Res Ctr, USDA, New Orleans, LA 71024 USA
来源
MYCOTOXIN PREVENTION AND CONTROL IN AGRICULTURE | 2009年 / 1031卷
关键词
CONFERS ENHANCED RESISTANCE; BACTERIAL DISEASE RESISTANCE; ANTIMICROBIAL PEPTIDE; SYNTHETIC PEPTIDE; CATIONIC PEPTIDE; MAGAININ ANALOG; FIRE BLIGHT; CECROPIN-B; GENE; PLANTS;
D O I
暂无
中图分类号
S [农业科学];
学科分类号
09 ;
摘要
Transgenic crops are widely cultivated in several countries to control crop losses due to insects and weeds. However, disease resistant transgenic crops that can withstand infections due to fungal and bacterial pathogens are not yet available due to several reasons. The primary reasons are 1) host plant-pathogen interaction is a very complex phenomenon and it is often crop/variety or pathogen/strain specific.; 2) natural antimicrobial proteins and peptides are subject to digestion by protcases, lack specificity and may be toxic to non-target plant and animal species; 3) large scale production of antimicrobial proteins and peptides are very expensive and 4) microbial pathogens can develop resistance to natural proteins and peptides. Recent advances in combinatorial chemistry and automated peptide synthesis have paved the way for rational design of stable, potent, and novel synthetic peptides with target-specific biological activity. Some of these lytic synthetic peptides have been already expressed in transgenic plants with varying degrees of success towards control of phytopathogens including some fungal pathogens that produce mycotoxins. This review gives a brief account of recent developments regarding the use of lytic peptides in transgcnic crops to control yield losses due to pathogens and mycotoxin contamination.
引用
收藏
页码:119 / 142
页数:24
相关论文
共 83 条
[51]   Improvement of cyclic decapeptides against plant pathogenic bacteria using a combinatorial chemistry approach [J].
Monroc, Sylvie ;
Badosa, Esther ;
Besalu, Emili ;
Planas, Marta ;
Bardaji, Eduard ;
Montesinos, Emili ;
Feliu, Lidia .
PEPTIDES, 2006, 27 (11) :2575-2584
[52]  
NIELSEN KL, 1958, COLL MATH
[53]  
NORELLI JL, 1994, J CELL BIOCHEM, P89
[54]   Crop losses to pests [J].
Oerke, E. -C. .
JOURNAL OF AGRICULTURAL SCIENCE, 2006, 144 :31-43
[55]   Transgenic plants expressing cationic peptide chimeras exhibit broad-spectrum resistance to phytopathogens [J].
Osusky, M ;
Zhou, GQ ;
Osuska, L ;
Hancock, RE ;
Kay, WW ;
Misra, S .
NATURE BIOTECHNOLOGY, 2000, 18 (11) :1162-1166
[56]   Transgenic potatoes expressing a novel cationic peptide are resistant to late blight and pink rot [J].
Osusky, M ;
Osuska, L ;
Hancock, RE ;
Kay, WW ;
Misra, S .
TRANSGENIC RESEARCH, 2004, 13 (02) :181-190
[57]   An amphibian antimicrobial peptide variant expressed in Nicotiana tabacum confers resistance to phytopathogens [J].
Ponti, D ;
Mangoni, ML ;
Mignogna, G ;
Simmaco, M ;
Barra, D .
BIOCHEMICAL JOURNAL, 2003, 370 (01) :121-127
[58]  
Potrykus I., 1995, GENE TRANSFER PLANTS
[59]   Recent developments toward achieving fungal disease resistance in transgenic plants [J].
Punja, Zarnir K. .
CANADIAN JOURNAL OF PLANT PATHOLOGY, 2006, 28 :S298-S308
[60]  
Punja ZK., 2004, Fungal disease resistance in plants: biochemistry, molecular biology, and genetic engineering