Literature DB >> 11071264

Antibacterial peptides isolated from insects.

L Otvos1.   

Abstract

Insects are amazingly resistant to bacterial infections. To combat pathogens, insects rely on cellular and humoral mechanisms, innate immunity being dominant in the latter category. Upon detection of bacteria, a complex genetic cascade is activated, which ultimately results in the synthesis of a battery of antibacterial peptides and their release into the haemolymph. The peptides are usually basic in character and are composed of 20-40 amino acid residues, although some smaller proteins are also included in the antimicrobial repertoire. While the proline-rich peptides and the glycine-rich peptides are predominantly active against Gram-negative strains, the defensins selectively kill Gram-positive bacteria and the cecropins are active against both types. The insect antibacterial peptides are very potent: their IC50 (50% of the bacterial growth inhibition) hovers in the submicromolar or low micromolar range. The majority of the peptides act through disintegrating the bacterial membrane or interfering with membrane assembly, with the exception of drosocin, apidaecin and pyrrhocoricin which appear to deactivate a bacterial protein in a stereospecific manner. In accordance with their biological function, the membrane-active peptides form ordered structures, e.g. alpha-helices or beta-pleated sheets and often cast permeable ion-pores. Their cytotoxic properties were exploited in in vivo studies targeting tumour progression. Although the native peptides degrade quickly in biological fluids other than insect haemolymph, structural modifications render the peptides resistant against proteases without sacrificing biological activity. Indeed, a pyrrhocoricin analogue shows lack of toxicity in vitro and in vivo and protects mice against experimental Escherichia coli infection. Careful selection of lead molecules based on the insect antibacterial peptides may extend their utility and produce viable alternatives to the conventional antimicrobial compounds for mammalian therapy.

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Year:  2000        PMID: 11071264     DOI: 10.1002/1099-1387(200010)6:10<497::AID-PSC277>3.0.CO;2-W

Source DB:  PubMed          Journal:  J Pept Sci        ISSN: 1075-2617            Impact factor:   1.905


  60 in total

1.  N-terminal fatty acid substitution increases the leishmanicidal activity of CA(1-7)M(2-9), a cecropin-melittin hybrid peptide.

Authors:  C Chicharro; C Granata; R Lozano; D Andreu; L Rivas
Journal:  Antimicrob Agents Chemother       Date:  2001-09       Impact factor: 5.191

2.  Differential salivary gland transcript expression profile in Ixodes scapularis nymphs upon feeding or flavivirus infection.

Authors:  Kristin L McNally; Dana N Mitzel; Jennifer M Anderson; José M C Ribeiro; Jesus G Valenzuela; Timothy G Myers; Alvaro Godinez; James B Wolfinbarger; Sonja M Best; Marshall E Bloom
Journal:  Ticks Tick Borne Dis       Date:  2012-01-02       Impact factor: 3.744

3.  Comparison of in vitro antibacterial activities of two cationic peptides CM15 and CM11 against five pathogenic bacteria: Pseudomonas aeruginosa, Staphylococcus aureus, Vibrio cholerae, Acinetobacter baumannii, and Escherichia coli.

Authors:  M Moosazadeh Moghaddam; F Abolhassani; H Babavalian; R Mirnejad; K Azizi Barjini; J Amani
Journal:  Probiotics Antimicrob Proteins       Date:  2012-06       Impact factor: 4.609

4.  Inhibition of plant-pathogenic bacteria by short synthetic cecropin A-melittin hybrid peptides.

Authors:  Rafael Ferre; Esther Badosa; Lidia Feliu; Marta Planas; Emili Montesinos; Eduard Bardají
Journal:  Appl Environ Microbiol       Date:  2006-05       Impact factor: 4.792

5.  Dominulin A and B: two new antibacterial peptides identified on the cuticle and in the venom of the social paper wasp Polistes dominulus using MALDI-TOF, MALDI-TOF/TOF, and ESI-ion trap.

Authors:  Stefano Turillazzi; Guido Mastrobuoni; Francesca R Dani; Gloriano Moneti; Giuseppe Pieraccini; Giancarlo la Marca; Gianluca Bartolucci; Brunella Perito; Duccio Lambardi; Vanni Cavallini; Leonardo Dapporto
Journal:  J Am Soc Mass Spectrom       Date:  2006-01-30       Impact factor: 3.109

6.  Defensins and other antimicrobial peptides at the ocular surface.

Authors:  Alison M McDermott
Journal:  Ocul Surf       Date:  2004-10       Impact factor: 5.033

7.  Antimicrobial defences increase with sociality in bees.

Authors:  Adam Stow; David Briscoe; Michael Gillings; Marita Holley; Shannon Smith; Remko Leys; Tish Silberbauer; Christine Turnbull; Andrew Beattie
Journal:  Biol Lett       Date:  2007-08-22       Impact factor: 3.703

8.  Synergistic effects of the membrane actions of cecropin-melittin antimicrobial hybrid peptide BP100.

Authors:  Rafael Ferre; Manuel N Melo; Ana D Correia; Lidia Feliu; Eduard Bardají; Marta Planas; Miguel Castanho
Journal:  Biophys J       Date:  2009-03-04       Impact factor: 4.033

Review 9.  Diversity in penaeidin antimicrobial peptide form and function.

Authors:  Brandon J Cuthbertson; Leesa J Deterding; Jason G Williams; Kenneth B Tomer; Kizee Etienne; Perry J Blackshear; Erika E Büllesbach; Paul S Gross
Journal:  Dev Comp Immunol       Date:  2007-08-03       Impact factor: 3.636

10.  A new class (penaeidin class 4) of antimicrobial peptides from the Atlantic white shrimp (Litopenaeus setiferus) exhibits target specificity and an independent proline-rich-domain function.

Authors:  Brandon J Cuthbertson; Erika E Büllesbach; Julie Fievet; Evelyne Bachère; Paul S Gross
Journal:  Biochem J       Date:  2004-07-01       Impact factor: 3.857

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