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Antibacterial properties of lucifensin in Lucilia sericata maggots after septic injury

. 2014 May ; 4 (5) : 358-61.

Status PubMed-not-MEDLINE Language English Country China Media print

Document type Journal Article

OBJECTIVE: To investigate the antibacterial properties of lucifensin in maggots of Lucilia sericata after septic injury. METHODS: In our preliminary study we have shown that injuring the maggots with a needle soaked in lipopolysaccharide solution induced within 24 h lucifensin expression in the fat body and in the grease coupler of the salivary glands. It is assumed that lucifensin is secreted solely from this tissue into the haemolymph (similar to other insect defensins) and not into secreted/excreted products. We used high-performance liquid chromatography fractionation and radial diffusion assay to investigate the antibacterial properties of haemolymph extracted from larvae after septic injury. RESULTS: After septic injury, production of lucifensin in the haemolymph is increased. This led to higher antibacterial activity of such haemolymph in comparison to non-stimulated larvae. COCLUSIONS: These results suggest that beside the previously demonstrated role of lucifensin in the debridement therapy, lucifensin is simultaneously important as a part of the systematic immune response.

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Cerovský V, Zdárek J, Fucík V, Monincová L, Voburka Z, Bém R. Lucifensin, the long-sought antimicrobial factor of medicinal maggots of the blowfly Lucilia sericata. Cell Mol Life Sci. 2010;67:455–466. PubMed PMC

Valachová I, Bohová J, Pálošová Z, Takáč P, Kozánek M, Majtán J. Expression of lucifensin in Lucilia sericata medicinal maggots in infected environments. Cell Tissue Res. 2013;353:165–171. PubMed

Nigam Y, Dudley E, Bexfield A, Bond AE, Evans J, James J. The physiology of wound healing by the medicinal maggot, Lucilia sericata. In: Simpson SJ, Casas J, editors. Advances in Insect Physiology. Amsterdam, Netherlands: Elsevier Ltd; 2010. pp. 39–81.

Kawabata T, Mitsui H, Yokota K, Ishino K, Oguma K, Sano S. Induction of antibacterial activity in larvae of the blowfly Lucilia sericata by an infected environment. Med Vet Entomol. 2010;24:375–381. PubMed

Barnes KM, Gennard DE. The effect of bacterially-dense environments on the development and immune defences of the blowfly Lucilia sericata. Physiol Entomol. 2011;36:96–100.

Huberman L, Gollop N, Mumcuoglu KY, Breuer E, Bhusare SR, Shai Y, et al. Antibacterial substances of low molecular weight isolated from the blowfly, Lucilia sericata. Med Vet Entomol. 2007;21:127–131. PubMed

White SH, Wimley WC, Selsted ME. Structure, function, and membrane integration of defensins. Curr Opin Struct Biol. 1995;5:521–527. PubMed

Bulet P, Stöcklin R. Insect antimicrobial peptides: structures, properties and gene regulation. Protein Pept Lett. 2005;12:3–11. PubMed

Cociancich S, Ghazi A, Hetru C, Hoffmann JA, Letellier L. Insect defensin, an inducible antibacterial peptide, forms voltage-dependent channels in Micrococcus luteus. J Biol Chem. 1993;268:19239–19245. PubMed

Otvos L., Jr Antibacterial peptides isolated from insects. J Pept Sci. 2000;6:497–511. PubMed

Wong JH, Xia L, Ng TB. A review of defensins of diverse origins. Curr Protein Pept Sci. 2007;8:446–459. PubMed

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