Literature DB >> 11409968

Broad-spectrum antimicrobial activity in vitro of the synthetic peptide D4E1.

K Rajasekaran1, K D Stromberg, J W Cary, T E Cleveland.   

Abstract

Broad-spectrum antimicrobial activity of a synthetic peptide, D4E1, is documented in this paper. D4E1 inhibited the growth of several fungal phytopathogens belonging to four classes-Ascomycetes, Basidiomycetes, Deuteromycetes, and Oomycetes, and two bacterial pathogens, Pseudomonas syringae pv. tabaci and Xanthomonas campestris pv. malvacearum race 18. The minimum inhibitory concentration (MIC) of D4E1 required to completely inhibit the growth of all fungi studied ranged from 4.67 to 25 microM. Fungal pathogens highly sensitive to D4E1 include Thielaviopsis basicola, Verticillium dahliae, Fusarium moniliforme, Phytophthora cinnamomi, and Phytophthora parasitica. Comparatively, the least sensitive fungal pathogens were Alternaria alternata, Colletotrichum destructivum, and Rhizoctonia solani. The two bacterial pathogens, P. syringae pv. tabaci and X. campestris pv. malvacearum race 18, were most sensitive to D4E1 with MIC values of 2.25 and 1.25 microM, respectively. Microscopic analysis of D4E1 effects on fungal morphology of Aspergillus flavus and R. solani revealed abnormal hyphal growth and discontinuous cytoplasm. After 8 h of exposure to 25 microM D4E1, A. flavus spore germination was reduced by 75%. The suitability of peptide D4E1 to enhance disease resistance in transgenic crop plants is discussed.

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Year:  2001        PMID: 11409968     DOI: 10.1021/jf010154d

Source DB:  PubMed          Journal:  J Agric Food Chem        ISSN: 0021-8561            Impact factor:   5.279


  8 in total

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2.  Prevention of preharvest aflatoxin contamination through genetic engineering of crops.

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4.  Development of a GFP-expressing Aspergillus flavus strain to study fungal invasion, colonization, and resistance in cottonseed.

Authors:  Kanniah Rajasekaran; Jeffrey W Cary; Peter J Cotty; Thomas E Cleveland
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5.  Synthetic antimicrobial agents inhibit aflatoxin production.

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Review 6.  Developing resistance to aflatoxin in maize and cottonseed.

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Review 7.  Genetically engineered bananas resistant to Xanthomonas wilt disease and nematodes.

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8.  In Vitro Evaluation of Five Antimicrobial Peptides against the Plant Pathogen Erwinia amylovora.

Authors:  Rafael J Mendes; Laura Regalado; João P Luz; Natália Tassi; Cátia Teixeira; Paula Gomes; Fernando Tavares; Conceição Santos
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  8 in total

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